WO2021188178A1 - Implantable drug delivery devices for localized drug delivery - Google Patents
Implantable drug delivery devices for localized drug delivery Download PDFInfo
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- WO2021188178A1 WO2021188178A1 PCT/US2020/066215 US2020066215W WO2021188178A1 WO 2021188178 A1 WO2021188178 A1 WO 2021188178A1 US 2020066215 W US2020066215 W US 2020066215W WO 2021188178 A1 WO2021188178 A1 WO 2021188178A1
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- Prior art keywords
- implant
- prostate
- bicalutamide
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- day
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Classifications
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K31/00—Medicinal preparations containing organic active ingredients
- A61K31/275—Nitriles; Isonitriles
- A61K31/277—Nitriles; Isonitriles having a ring, e.g. verapamil
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K9/00—Medicinal preparations characterised by special physical form
- A61K9/0012—Galenical forms characterised by the site of application
- A61K9/0019—Injectable compositions; Intramuscular, intravenous, arterial, subcutaneous administration; Compositions to be administered through the skin in an invasive manner
- A61K9/0024—Solid, semi-solid or solidifying implants, which are implanted or injected in body tissue
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K31/00—Medicinal preparations containing organic active ingredients
- A61K31/275—Nitriles; Isonitriles
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K47/00—Medicinal preparations characterised by the non-active ingredients used, e.g. carriers or inert additives; Targeting or modifying agents chemically bound to the active ingredient
- A61K47/30—Macromolecular organic or inorganic compounds, e.g. inorganic polyphosphates
- A61K47/34—Macromolecular compounds obtained otherwise than by reactions only involving carbon-to-carbon unsaturated bonds, e.g. polyesters, polyamino acids, polysiloxanes, polyphosphazines, copolymers of polyalkylene glycol or poloxamers
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61K—PREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
- A61K9/00—Medicinal preparations characterised by special physical form
- A61K9/0012—Galenical forms characterised by the site of application
- A61K9/0034—Urogenital system, e.g. vagina, uterus, cervix, penis, scrotum, urethra, bladder; Personal lubricants
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61M—DEVICES FOR INTRODUCING MEDIA INTO, OR ONTO, THE BODY; DEVICES FOR TRANSDUCING BODY MEDIA OR FOR TAKING MEDIA FROM THE BODY; DEVICES FOR PRODUCING OR ENDING SLEEP OR STUPOR
- A61M31/00—Devices for introducing or retaining media, e.g. remedies, in cavities of the body
- A61M31/002—Devices for releasing a drug at a continuous and controlled rate for a prolonged period of time
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P13/00—Drugs for disorders of the urinary system
- A61P13/08—Drugs for disorders of the urinary system of the prostate
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P35/00—Antineoplastic agents
Definitions
- Prostate cancer is by far the most commonly diagnosed cancer among American men and remains the second leading cause of cancer death in men.
- Hormonal therapy of prostate cancer includes a wide variety of treatments designed to affect cells whose normal functioning depends on androgens, which include testosterone and dihydrotestosterone, among others. Prostate cancer cells are generally very susceptible to treatments that lower androgen levels or affect the normal action of these hormones.
- Bicalutamide is an anti-androgen that can be used to treat prostate cancer.
- Bicalutamide is a member of the nonsteroidal antiandrogen group of medications and works by blocking the androgen receptor.
- Bicalutamide has been associated with a number of side effects, which may be due, in part, to the relatively high amounts of bicalutamide that are administered systemically to obtain a therapeutic benefit.
- local administration of smaller amounts of bicalutamide may be able to achieve a therapeutic benefit, and prevent or reduce side effects or toxicity of systemic bicalutamide administration.
- a therapeutically active agent e.g., bicalutamide
- drug implants that can deliver a therapeutically effective amount of a drug directly to a target tissue.
- drug implants that, when implanted into a target tissue, result in a high concentration of drug within the target tissue, and a low concentration of drug in the systemic circulation (e.g., in the blood plasma).
- the ability of the drug implants provided herein to deliver a therapeutically effective amount of the drug directly to the target tissue, while achieving low concentrations of the drug in the systemic circulation may reduce or eliminate toxicity of the drug that would otherwise occur from systemic administration.
- the drug implants described herein ensures that the target tissue receives a therapeutically effective amount of drug.
- the drug implants provided herein are capable of being loaded with a large amount of drug such that the drug implant is capable of sustained release of the drug to the target tissue for extended periods of time.
- an implant comprising bicalutamide dispersed in a polymer matrix, resulting in sustained release of the bicalutamide at a rate of at least 0.1 pg/day for least 6 months after implantation of the implant in a prostate tissue or a tissue near a prostate.
- the bicalutamide is in solid form.
- a volume of the implant is at least 10 mm 3 .
- a length of the implant is at least 1 mm.
- a length of the implant is at least 3 mm.
- a diameter of the implant is at least 0.1 mm.
- a diameter of the implant is at least 0.8 mm.
- the implant lacks at least one of a sheath, a scaffold, a retention member for retaining the implant within a target tissue, or a combination thereof.
- the implant comprises the bicalutamide in an amount of at least 30% w/w.
- a total dose of the bicalutamide per implant is at least 1 mg.
- the polymer matrix comprises silicone.
- the silicone has a Shore A hardness of at least 30 durometer.
- the bicalutamide has a median particle size of less than 10 microns. In some cases, the bicalutamide has a D90 of less than 15 microns.
- the cumulative release of the bicalutamide in an in vitro model is at least one of the following: at least 100 pg on day 1, at least 1,500 pg on day 50, or at least 2,000 pg on day 100.
- the implant is configured for delivery to the prostate tissue or the tissue near the prostate through a lumen of a needle or a catheter.
- the implant consists essentially of the polymer matrix and the bicalutamide dispersed in the polymer matrix.
- a method of treating a subject in need thereof comprising delivering an implant of any one of the preceding to the prostate tissue or the tissue near the prostate of the subject, thereby treating the subject.
- the subject has a proliferative disease of the prostate.
- the proliferative disease of the prostate is prostate cancer or benign prostatic hyperplasia.
- a prostate implant comprising: a polymer matrix; and bicalutamide dispersed in the polymer matrix at an amount of at least 30% w/w.
- the prostate implant releases at least 0.1 pg/day of the bicalutamide at 6 months after implantation in a subject.
- the bicalutamide is in solid form.
- the solid form has a median particle size of less than 10 microns.
- the solid form has a D90 of less than 15 microns.
- the prostate implant has a Shore A hardness of at least 30 durometer.
- the polymer matrix is a silicone.
- the silicone has one or more of the following properties a Shore A hardness of at least 30 durometer and a curing temperature less than a melting point of bicalutamide. In some cases, at least 50% of the bicalutamide remains in the polymer matrix after 100 days of implantation. In some cases, the polymer matrix inhibits modulation of the bicalutamide in the prostate implant. In some cases, the modulation comprises degradation. In some cases, the degradation is determined by measuring an amount of the bicalutamide in an eluent after incubating the prostate implant containing the bicalutamide in a solution comprising 1% SDS containing 0.05 N NaOH for 8 hours at 37 °C.
- a volume of the prostate implant is at least 10 mm 3 .
- a length of the prostate implant is from 1 mm to 30 mm.
- a length of the prostate implant is from 5 mm to 25 mm.
- a diameter of the prostate implant is from 0.1 mm to 1.5 mm.
- the bicalutamide is dispersed in the polymer matrix at an amount of at least 40% w/w.
- at least 50% of an outer surface of the prostate implant is configured to directly contact a prostate tissue or a tissue near a prostate.
- the prostate implant is deliverable using a cannula of a prostate biopsy needle or a Mick ® needle.
- the prostate implant consists essentially of the polymer matrix and the bicalutamide dispersed in the polymer matrix.
- a method of treating a proliferative disease of the prostate of a subject comprising implanting one or more implants into a prostate tissue or a tissue near a prostate, wherein each of the one or more implants comprises a polymer matrix and bicalutamide, and wherein the one or more implants provides a therapeutically effective amount of the bicalutamide to the prostate for at least 6 months.
- the proliferative disease of the prostate is prostate cancer or benign prostatic hyperplasia.
- the bicalutamide is dispersed within the polymer matrix, prior to the implanting.
- the implanting comprises deploying each implant of the one or more implants to the prostate tissue or the tissue near the prostate through a lumen of a needle or a catheter.
- the needle is a Mick ® needle.
- the implanting occurs via transperineal administration.
- the transperineal administration comprises using a template guided needle.
- the polymer matrix inhibits degradation of the bicalutamide.
- the degradation is determined by measuring an amount of the bicalutamide in an eluent after incubating an implant of the one or more implants in a solution comprising 1% SDS containing 0.05 NaOH for 8 hours at 37 °C.
- the polymer matrix is substantially non-biodegradable.
- the polymer matrix comprises silicone.
- a total dose of the bicalutamide administered to the subject is less than a total dose of bicalutamide when administered to a subject by oral administration. In some cases, the total dose of the bicalutamide administered to the subject is less than 100 mg over a period of 6 months.
- the implanting results in a blood plasma concentration of bicalutamide that is less than a blood plasma concentration of bicalutamide obtained when bicalutamide is administered to a subject by oral administration, and wherein the implanting results in a steady state blood plasma concentration of (R)-bicalutamide that is less than 5 pg/mL.
- the implanting comprises transperineal implantation of at least three implants. In some cases, each of the one or more implants has a volume of at least 10 mm 3 .
- a method of treating a proliferative disease of the prostate of a subject comprising implanting one or more implants into a prostate tissue or a tissue near a prostate, wherein each of the one or more implants comprises a polymer matrix and bicalutamide, and wherein the implanting results in a steady state blood plasma concentration of (R)-bicalutamide that is less than 5 pg/mL.
- the implanting comprises deploying each implant of the one or more implants to the prostate tissue or the tissue near the prostate through a lumen of a needle or a catheter.
- a total dose of the bicalutamide administered to the subject is less than a total dose of bicalutamide when administered to a subject by oral administration. In some cases, the total dose of the bicalutamide administered to the subject is less than 100 mg over a period of 6 months.
- an implant comprising a biocompatible, substantially non- biodegradable polymer matrix; and an anti-androgen dispersed throughout the polymer matrix.
- an implant comprising a biocompatible polymer matrix; and a therapeutically active agent dispersed throughout the polymer matrix, wherein the implant delivers a therapeutically effective amount of the therapeutically active agent to a target tissue of a subject for at least 24 months when the implant is disposed in the target tissue of the subject.
- an implant comprising a biocompatible, substantially non- biodegradable polymer matrix; and an anti-androgen in crystalline form.
- an implant comprising a biocompatible, substantially non-biodegradable polymer matrix; and an anti-androgen dispersed throughout the polymer matrix at an amount from 10 to 70% w/w.
- the implant when disposed in the target tissue of the subject, releases at least 0.1 pg/day of the therapeutically active agent or the anti-androgen at 24 months after implantation.
- the therapeutically active agent or the anti-androgen has a median particle size of less than 10 microns.
- the implant has a Shore A hardness of at least 30 durometer when loaded with 60% w/w of a therapeutically active agent.
- at least 99% of the polymer matrix remains in the target tissue of the subject after implantation for at least 600 days.
- the implant is visible by ultrasound when disposed in the target tissue of the subject.
- the therapeutically active agent or the anti-androgen has a melting temperature that is greater than a curing temperature of the polymer matrix. In some cases, the melting temperature is greater than 150 °C. In some cases, the polymer matrix inhibits degradation of the therapeutically active agent or the anti-androgen in the implant. In some cases, the polymer matrix inhibits degradation of the therapeutically active agent or the anti-androgen by an esterase or an amidase. In some cases, the degradation is determined by measuring the amount of the therapeutically active agent or the anti-androgen in an eluent after incubating the implant containing the therapeutically active agent or the anti-androgen in a solution comprising 1% SDS containing 0.05 N NaOH for 8 hours at 37 °C.
- the implant is elongate. In some cases, the implant is cylindrical. In some cases, the implant is tubular. In some cases, a diameter of the implant is less than 1 mm. In some cases, a diameter of the implant is from 0.5 mm to 1.5 mm. In some cases, a diameter of the implant is from 0.7 mm to 1.3 mm. In some cases, a diameter of the implant is from 0.9 mm to 1.1 mm. In some cases, a diameter of the implant is about 1 mm. In some cases, a length of the implant is less than 20 mm. In some cases, a length of the implant is from 5 mm to 25 mm. In some cases, a length of the implant is from 10 mm to 20 mm.
- a length of the implant is from 12 mm to 18 mm. In some cases, a length of the implant is about 15 mm.
- the implant further comprises a coating. In some cases, the coating partially covers the implant. In some cases, the coating substantially covers the implant. In some cases, the coating covers the implant.
- the therapeutically active agent is an anti-androgen. In some cases, the therapeutically active agent or the anti-androgen is bicalutamide. In some cases, the implant is sterile. In some cases, the implant is disposed in a sterilized package.
- the polymer matrix is at least 95% cured, at least 96% cured, at least 97% cured, at least 98% cured, at least 99% cured, or at least 99.9% cured.
- the polymer matrix comprises silicone.
- the silicone is Silbione ® LSR D370 as manufactured by Elkem.
- the silicone is DDU 4870 as manufactured by NuSilTM.
- the implant is configured to be implanted into prostate tissue of a subject. In some cases, the implant lacks a metal.
- a method of manufacturing an implant suitable for implantation into the prostate of a subject comprising: (a) mixing an amount of uncured biocompatible, substantially non-biodegradable polymer with an amount of anti-androgen to form a mixture; (b) molding the mixture to create a molded mixture; and (c) curing the molded mixture by heating the molded mixture for a period of time.
- the amount of anti androgen is between 10% w/w and 70% w/w of the uncured biocompatible, substantially non- biodegradable polymer.
- the anti-androgen is bicalutamide.
- the biocompatible, substantially non-biodegradable polymer is a silicone.
- the silicone is Silbione ® LSR D370 as manufactured by Elkem. In some cases, the silicone is DDU 4870 as manufactured by NuSilTM. In some cases, the curing of (c) further comprises heating the molded mixture at a temperature from about 150 °C to about 200 °C for 3 to 8 minutes. In some cases, the mixture further comprises a solvent. In some cases, the solvent is selected from the group consisting of: pentane, dichloromethane, tetrahydrofuran, heptane, toluene, and hexane. In some cases, the mixture is molded by a transfer molding process. In some cases, the method further comprises performing an analysis on the implant.
- the analysis is selected from the group consisting of: differential scanning calorimetry (DSC), deployment of implant in surrogate tissue, elution testing, viscometry, high pressure liquid chromatography (HPLC), and simulated in vivo stability assay.
- DSC differential scanning calorimetry
- HPLC high pressure liquid chromatography
- a kit comprising: a sterilized package comprising an implant according to any one of the preceding; and instructions for implanting the implant into a target tissue of a subject.
- the implant is configured for delivery into a human prostate, tissue adjacent the human prostate, or both.
- the sterilized package is formed from a foil.
- the kit further comprises one or more surgical tools for implanting the implant into the target tissue of the subject.
- the one or more surgical tools comprises a needle, forceps, a trocar, or a stylet.
- a method of treating a disease in a subject in need thereof comprising: implanting an implant of any one of the preceding into the prostate of the subject, thereby treating the disease.
- a method of treating a disease in a subject in need thereof comprising: implanting a substantially non-biodegradable implant comprising a biocompatible polymer matrix and an anti-androgen drug dispersed throughout the biocompatible polymer matrix into the prostate of the subject, thereby treating the disease.
- the prostate comprises prostate tissue, tissue adjacent the prostate tissue, or both.
- the disease is a proliferative disease or disorder of the prostate (e.g., prostate cancer, benign prostatic hyperplasia).
- the method further comprises disposing a distal end of an elongate tube in the subject’s prostate or tissue adjacent the prostate.
- a portion of the elongate tube is disposed through a first portion of a grid such that a first position of the elongate tube in the subject is determined.
- the elongate tube is a needle or a catheter.
- a trocar is disposed within a lumen of the elongate tube.
- the method further comprises removing the trocar from the lumen of the elongate tube. In some cases, the method further comprises after removing the trocar from the lumen of the elongate tube, positioning the implant within the lumen of the elongate tube. In some cases, the method further comprises pushing a stylet through the lumen of the elongate tube, thereby displacing the implant to the distal end of the elongate tube. In some cases, the method further comprises displacing the elongate tube away from the subject such the implant remains within the subject. In some cases, the stylet is disposed in a portion of the lumen of the elongate tube, a distal end of the stylet adjacent the implant such that the implant remains within the subject. In some cases, a portion of a second elongate tube is disposed through a second portion of the grid such that a position of the second elongate tube in the subject is determined.
- FIG. 1 depicts a non-limiting example of a molded implant according to aspects of the disclosure.
- FIG. 2A, FIG. 2B, FIG. 2C, FIG. 2D, FIG. 2E, and FIG. 2F depict non-limiting examples of differential scanning calorimetry (DSC) thermograms of formulation components and molded rods according to aspects of the disclosure.
- DSC differential scanning calorimetry
- FIG. 3A, FIG. 3B, and FIG. 3C depict non-limiting examples of ultrasound images of an implant in dog prostate (FIG. 3A and FIG. 3B) and a picture of an explant 8 weeks post implantation (FIG. 3C) according to aspects of the disclosure.
- FIG. 4A depicts non-limiting examples of in vitro elution curves for 30% w/w, 45% w/w, and 60% w/w bicalutamide implants according to aspects of the disclosure.
- FIG. 4B depicts non-limiting examples of in vitro elution curves for 30% w/w and 45% w/w bicalutamide with various silicone implants.
- FIG. 4C depicts projected elution curves for bicalutamide-loaded implants up to 24 months.
- FIG. 4D depicts a cumulative release profile of an implant containing 60% w/w bicalutamide in an in vitro model.
- FIG. 4E depicts a release rate profile of an implant containing 60% w/w bicalutamide in an in vitro model.
- FIG. 4F depicts a predicted cumulative release profile of an implant containing 60% w/w bicalutamide in an in vitro model.
- FIG. 4G depicts cumulative release profiles of implants containing 60% w/w bicalutamide in an in vitro model.
- FIG. 4H depicts release rate profiles of implants containing 60% w/w bicalutamide in an in vitro model.
- FIG. 5 depicts a non-limiting example of results obtained from a simulated in vivo stability assay.
- FIG. 6A and FIG. 6B depict non-limiting examples of bicalutamide levels in plasma after implantation of devices of the disclosure into the prostate of canines.
- FIG. 7A and FIG. 7B depict non-limiting examples of bicalutamide levels in tissue after implantation of devices of the disclosure into the prostate of canines.
- FIG. 8 depicts an image and a schematic of implant locations and local distribution of R- bicalutamide (active levels) in the rostral portion of the prostate of canines.
- drug implants that are capable of delivering a therapeutically effective amount of a drug directly to a target tissue.
- drug implants that, when implanted into a target tissue, result in a high concentration of drug within the target tissue, and a low concentration of drug in the systemic circulation (e.g., in the blood plasma).
- the ability of the drug implants provided herein to deliver a therapeutically effective amount of the drug directly to the target tissue, while achieving low concentrations of the drug in the systemic circulation may reduce or eliminate side effects or toxicity of the drug that would otherwise occur from systemic administration.
- the drug implants described herein are capable of being loaded with a large amount of drug such that the drug implant is capable of sustained release of the drug to the target tissue for extended periods of time.
- the therapeutically active agent may be dispersed within a polymer matrix of the implant which may provide particular advantages (e.g., faster elution times, higher drug loading within the implant, etc.).
- the drug implants provided herein may contain bicalutamide at high concentrations such that a therapeutically effective amount of bicalutamide can be administered directly to prostate tissue for long periods of time (6 months or greater) while maintaining low systemic concentrations of bicalutamide.
- the drug implants disclosed herein may comprise a polymer matrix and a therapeutically active agent.
- the therapeutically active agent may be dispersed within the polymer matrix.
- the drug implants may be implanted into a target tissue, and may release a quantity of the therapeutically active agent over time.
- the therapeutically active agent may be a drug or active pharmaceutical ingredient (API) that may be effective to treat a disease or a symptom thereof.
- API active pharmaceutical ingredient
- the therapeutically active agent is bicalutamide
- the disease is a proliferative disease of the prostate (e.g., prostate cancer, benign prostatic hyperplasia).
- methods of treating a disease by delivering a drug implant of the disclosure to a target tissue of a subject in need thereof in order to deliver a therapeutically effective amount of drug for extended periods of time. Additionally, methods of manufacturing drug implants and kits including drug implants are provided.
- the implant comprises a polymer matrix and a therapeutically active agent dispersed therein.
- the therapeutically active agent or drug may be bicalutamide.
- the implants may be suitable for treating a proliferative disease of the prostate (e.g., prostate cancer, benign prostatic hyperplasia).
- the polymer matrix may comprise any polymer material. Generally, the polymer material may be biocompatible.
- biocompatible refers to a property of a material that allows for prolonged contact with a tissue in a subject without causing toxicity or significant damage.
- the polymer material may be “non-biodegradable” or “substantially non- biodegradable”.
- a substantially non-biodegradable implant of the disclosure may have at least 99% of the polymer material remaining two years after implanting the device into a target tissue.
- the polymer matrix may comprise polysiloxane (silicone).
- the silicone may be any biocompatible silicone.
- the silicone may be a medical grade silicone.
- the silicone may be a United States Pharmacopeia (USP) Class V or USP Class VI certified silicone.
- the silicone may be any liquid silicone rubber (LSR).
- the silicone may be a Silbione ® Liquid Silicone Rubber (LSR) as manufactured by Elkem.
- the Silbione ® LSR may be one or more of Silbione ® LSR 4301, Silbione ® LSR 4305, Silbione ® LSR 4310, Silbione ® LSR 4325, Silbione ® LSR 4330, Silbione ® LSR 4340, Silbione ® LSR 4350, Silbione ® LSR 60, Silbione ® LSR 4360, Silbione ® LSR 4370, Silbione ® LSR 4745, Silbione ® LSR 4755, Silbione ® LSR 4765, Silbione ® LSR 4125, Silbione ® LSR 4130, Silbione ® LSR 4140, Silbione ® LSR M301, Silbione ® LSR M305, Silbione ® LSR M310, Silbione ® LSR M325, Silbione ® LSR M330, Silbione ®
- the silicone may be Silbione ® LSR D370. In some cases, the silicone may be a silicone manufactured by NuSilTM. In various aspects, the silicone may be DDU 4870 as manufactured by NuSilTM. In some cases, the silicone may be one or more of the following silicones as manufactured by NuSilTM: MED-4801, MED-4805, MED-4810, MED-5820, MED-5830, MED- 5840, MED-5850, MED-5860, MED-5870, MED-4880, MED50-5338, MED-5440, MED-4842, and MED1-4855.
- Additional non-biodegradable polymers which may be used herein include, without limitation, a silicone material, acrylates, polyethylenes, polyurethane, hydrogel, polyester, polypropylene, polytetrafluoroethylene (PTFE), expanded PTFE (ePTFE), polyether ether ketone (PEEK), nylon, extruded collagen, polymer foam, silicone rubber, polyethylene terephthalate, ultra-high molecular weight polyethylene, polycarbonate urethane, polyurethane, and polyimides.
- a silicone material acrylates, polyethylenes, polyurethane, hydrogel, polyester, polypropylene, polytetrafluoroethylene (PTFE), expanded PTFE (ePTFE), polyether ether ketone (PEEK), nylon, extruded collagen, polymer foam, silicone rubber, polyethylene terephthalate, ultra-high molecular weight polyethylene, polycarbonate urethane, polyurethane, and polyimides.
- the Shore A hardness scale measures the hardness of rubbers. A higher number on the scale refers to a firmer material, whereas a lower number on the scale refers to a softer material.
- the polymer material in the drug implant has a Shore A hardness of at least 30- durometer.
- the polymer material may have a Shore A hardness of at least 30- durometer, at least 40-durometer, at least 50-durometer, at least 60-durometer, or at least 70- durometer.
- the uncured polymer material may have a Shore A hardness of 30- durometer, and the cured polymer material may have a Shore A hardness of 70-durometer.
- the implant may further comprise a therapeutically active agent (also referred to herein as a “drug”).
- the therapeutically active agent is bicalutamide.
- the therapeutically active agent may be dispersed or distributed within the polymer matrix.
- the therapeutically active agent may be dispersed or distributed throughout the polymer matrix.
- the therapeutically active agent may be uniformly or homogeneously dispersed or distributed within the polymer matrix.
- the therapeutically active agent may be heterogeneously dispersed or distributed within the polymer matrix.
- the therapeutically active agent may be dispersed or distributed within the polymer matrix in a gradient.
- the therapeutically active agent may be dispersed or distributed within the polymer matrix at the time of manufacture of the implant (e.g., the therapeutically active agent may be mixed with the polymer material prior to curing of the polymer material as disclosed herein).
- providing the drug dispersed within the polymer matrix may be advantageous over other drug implants (e.g., those in which the drug is encapsulated in a capsule, or in the lumen of a tube).
- having the drug dispersed within the polymer matrix may allow for higher loading of drug in the implant, faster elution rates, and the like.
- the implant may comprise a therapeutically active agent (e.g., bicalutamide) in an amount from about 10% w/w to about 70% w/w.
- a therapeutically active agent e.g., bicalutamide
- the implant may comprise a therapeutically active agent (e.g., bicalutamide) in an amount of about 10% w/w, about 15% w/w, about 20% w/w, about 25% w/w, about 30% w/w, about 35% w/w, about 40% w/w, about 45% w/w, about 50% w/w, about 55% w/w, about 60% w/w, about 65% w/w, or about 70% w/w.
- a therapeutically active agent e.g., bicalutamide
- the implant may comprise a therapeutically active agent (e.g., bicalutamide) in an amount of at least about 10% w/w, at least about 15% w/w, at least about 20% w/w, at least about 25% w/w, at least about 30% w/w, at least about 35% w/w, at least about 40% w/w, at least about 45% w/w, at least about 50% w/w, at least about 55% w/w, at least about 60% w/w, at least about 65% w/w, or at least about 70% w/w.
- a therapeutically active agent e.g., bicalutamide
- the therapeutically active agent is bicalutamide and is present in the implant in an amount of about 10% w/w, about 30% w/w, about 45% w/w, or about 60% w/w.
- the disclosure provides drug implants loaded with high concentrations of bicalutamide (e.g., 60% w/w).
- the implant may contain bicalutamide in an amount of at least 30% w/w.
- the implant may contain bicalutamide in an amount of at least 40% w/w.
- the implant may comprise a therapeutically active agent (e.g., bicalutamide) in an amount from about 5% volume/volume (v/v) to about 60% v/v.
- a therapeutically active agent e.g., bicalutamide
- the implant may comprise a therapeutically active agent (e.g., bicalutamide) in an amount of about 5% v/v, about 10% v/v, about 15% v/v, about 20% v/v, about 25% v/v, about 30% v/v, about 35% v/v, about 40% v/v, about 45% v/v, about 50% v/v, about 55% v/v, or about 60% v/v.
- the implant may comprise a therapeutically active agent (e.g., bicalutamide) in an amount of at least about 5% v/v, at least about 10% v/v, at least about 15% v/v, at least about 20% v/v, at least about 25% v/v, at least about 30% v/v, at least about 35% v/v, at least about 40% v/v, at least about 45% v/v, at least about 50% v/v, at least about 55% v/v, or at least about 60% v/v.
- the therapeutically active agent is bicalutamide and is present in the implant in an amount of at least 30% v/v.
- an implant of the disclosure may include bicalutamide in a total amount of at least 1 mg, for example, from about 1 mg to about 10 mg. In some cases, the total amount of bicalutamide in the implant may be from about 8 mg to about 10 mg.
- the implant may include bicalutamide in a total amount of about 1 mg, about 1.2 mg, about 1.3 mg, about 1.4 mg, about 1.5 mg, about 1.6 mg, about 1.7 mg, about 1.8 mg, about 1.9 mg, about 2.0 mg, about 2.1 mg, about 2.2 mg, about 2.3 mg, about 2.4 mg, about 2.5 mg, about 2.6 mg, about
- the polymer material may be cured with the bicalutamide present therein.
- curing refers to a chemical process that results in the hardening of a polymer material by cross-linking polymer chains. Any method may be used to cure a polymer of the disclosure, including the use of electron beams, heating, and/or the addition of additives.
- the bicalutamide may be mixed with an uncured polymer material prior to curing.
- the polymer matrix may be at least 95% cured, at least 96% cured, at least 97% cured, at least 98% cured, at least 99% cured, at least 99.9% cured, or 100% cured.
- the polymer material has a curing temperature that is lower than the melting temperature of the therapeutically active agent, e.g., to prevent melting and/or degradation of the drug.
- the polymer material may have a curing temperature that is lower than a melting temperature of bicalutamide.
- polymer material may have a curing temperature that is lower than 190 °C, lower than 185 °C, lower than 180 °C, lower than 175 °C, lower than 170 °C, lower than 165 °C, lower than 160 °C, lower than 155 °C, or lower than 150 °C.
- bicalutamide may have a melting temperature of about 180 °C - 190 °C, and the polymer may have a curing temperature of less than about 190 °C (e.g., about 170 °C).
- the bicalutamide may be present in the implant in solid form.
- the solid bicalutamide may be dissolved upon contact with biological fluids (e.g., after implantation into a tissue), and may diffuse out of the implant and into the target tissue.
- the bicalutamide is present in the implant in crystalline form.
- the particle size of the bicalutamide within the implant may be important for drug content uniformity within the implant. Without wishing to be bound by theory, a small particle size may ensure a uniform distribution within the formulation and between implants upon molding of the formulation.
- the bicalutamide present in the implant may have a median particle size (e.g., D50 particle size) of less than 10 pm. In some cases, the bicalutamide present in the implant may have a D90 particle size of less than 15 pm.
- the implant may further comprise additional molecules that are incapable of eluting from the implant. In some cases, these additional molecules may result in higher elution rates of the drug.
- additional molecules that may be present within the implant include sugars (e.g., lactose), salts, fused silica, cellulose, and high molecular weight polyethylene glycol (PEG).
- an implant of the disclosure has mechanical properties such that the implant can be successfully deployed into a target tissue.
- an implant of the disclosure may be sufficiently stiff such that it can be deployed into a target tissue successfully, but not too stiff that it breaks during deployment. It should be understood that the mechanical properties of devices described herein may vary depending on the polymer material used, and may be determined empirically.
- the implant containing the bicalutamide may have a Shore A hardness of at least 30 durometer.
- the implant may have a three-dimensional shape.
- the three- dimensional shape may be any suitable shape.
- the implant may be cylindrical or substantially cylindrical.
- the implant may be tubular or substantially tubular.
- the implant may be elongate (e.g., may have a length greater than a width).
- the implant may be not hollow.
- the implant may be a rod or rod-like.
- the implant may have a diameter. In some cases, a diameter of the implant may be from about 0.1 mm to about 1.5 mm. In some cases, a diameter of the implant may be from about 0.7 mm to about 1.3 mm.
- a diameter of the implant may be from about 0.9 mm to about 1.1 mm. In some cases, a diameter of the implant may be at least about 0.1 mm, for example, at least about 0.1 mm, at least about 0.2 mm, at least about 0.3 mm, at least about 0.4 mm, at least about 0.5 mm, at least about 0.6 mm, at least about 0.7 mm, at least about 0.8 mm, at least about 0.9 mm, at least about 1.0 mm, at least about 1.1 mm, at least about 1.2 mm, at least about 1.3 mm, at least about 1.4 mm, or at least about 1.5 mm.
- a diameter of the implant may be less than about 1 mm, for example, less than about 1 mm, less than about 0.9 mm, less than about 0.8 mm, less than about 0.7 mm, less than about 0.6 mm, less than about 0.5 mm, less than about 0.4 mm, less than about 0.3 mm, less than about 0.2 mm, or less than about 0.1 mm.
- a diameter of the implant may be at least about 0.1 mm.
- a diameter of the implant may be at least about 0.8 mm.
- a diameter of the implant may be about 1 mm.
- the implant may have a length. In some cases, a length of the implant may be from about 1 mm to about 30 mm. In some cases, a length of the implant may be from about 5 mm to about 25 mm. In some cases, a length of the implant may be from about 10 mm to about 20 mm. In some cases, a length of the implant may be from about 12 mm to about 18 mm.
- a length of the implant may be at least about 1 mm, at least about 2 mm, at least about 3 mm, at least about 4 mm, at least about 5 mm, at least about 6 mm, at least about 7 mm, at least about 8 mm, at least about 9 mm, at least about 10 mm, at least about 11 mm, at least about 12 mm, at least about 13 mm, at least about 14 mm, at least about 15 mm, at least about 16 mm, at least about 17 mm, at least about 18 mm, at least about 19 mm, at least about 20 mm, at least about 21 mm, at least about 22 mm, at least about 23 mm, at least about 24 mm, at least about 25 mm, at least about 26 mm, at least about 27 mm, at least about 28 mm, at least about 29 mm, or at least about 30 mm.
- a length of the implant is at least about 1 mm. In some cases, a length of the implant is at least about 3 mm. In some cases, a length of the implant is about 15 mm. In some cases, a length of the implant may be less than about 30 mm, for example, less than about 30 mm, less than about 29 mm, less than about 28 mm, less than about 27 mm, less than about 26 mm, less than about 25 mm, less than about 24 mm, less than about 23 mm, less than about 22 mm, less than about 21 mm, less than about 20 mm, less than about 19 mm, less than about 18 mm, less than about 17 mm, less than about 16 mm, less than about 15 mm, less than about 14 mm, less than about 13 mm, less than about 12 mm, less than about 11 mm, less than about 10 mm, less than about 9 mm, less than about 8 mm, less than about 7 mm, less than about 6 mm, less than about 5 mm
- the implant may have a volume.
- the volume of the implant may be from about 0.1 mm 3 to about 30 mm 3 .
- the volume of the implant may be about 0.1 mm 3 , about 0.5 mm 3 , about 1 mm 3 , about 5 mm 3 , about 10 mm 3 , about 15 mm 3 , about 20 mm 3 , about 25 mm 3 , or about 30 mm 3 .
- the volume of the implant may be about 10 mm 3 .
- the implant may lack a coating, covering, or a sheath.
- a portion of the outer surface of the implant may not be coated or covered such that the outer surface of the uncoated or uncovered portion of the implant is directly exposed to or directly contacts the biological environment (e.g., a target tissue, a biological fluid) after implantation.
- the entire outer surface or substantially the entire outer surface of the implant is uncovered or uncoated such that the entire outer surface or substantially the entire outer surface of the implant is directly exposed to or directly contacts a biological environment after implantation. In other cases, less than the entire outer surface of the implant is directly exposed to or directly contacts a biological environment after implantation.
- At least 10%, at least 15%, at least 20%, at least 25%, at least 30%, at least 35%, at least 40%, at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 91%, at least 92%, at least 93%, at least 94%, at least 95%, at least 96%, at least 97%, at least 98%, or at least 99% of the outer surface of the implant is directly exposed to or directly contacts a biological environment after implantation.
- at least 50% of the outer surface of the implant is directly exposed to or directly contacts a biological environment after implantation.
- the implant may lack a sheath, a scaffold, a retention member, a retention frame, or any other additional means for retaining the implant within the target tissue.
- the implant may consist essentially of the polymer matrix and the therapeutically active agent (e.g., bicalutamide) dispersed therein.
- the implant may comprise a coating.
- the coating may cover the implant.
- the coating may partially cover the implant.
- the coating may substantially cover the implant.
- the implant may comprise a core made of a first polymer material, and a coating of a second polymer material.
- an implant of the disclosure may include a non-silicone core, surrounded by a silicone coating.
- an implant of the disclosure does not comprise a metal.
- the implant may prevent modulation of the bicalutamide contained therein when the implant is implanted into a subject.
- Modulation can include, but is not limited to, degradation, chemical modification, and the like.
- the biological environment of a tissue may include degradants that are capable of degrading the drug (e.g., esterases, amidases).
- the implant may protect the therapeutically active agent from degradation by preventing the degradant from penetrating the implant.
- in vitro stability testing may be performed to determine the protective effect of the implant on the therapeutically active agent contained therein.
- the therapeutically active agent when the therapeutically active agent is bicalutamide, degradation may be determined by measuring the amount of the bicalutamide in an eluent after incubating the implant containing the bicalutamide in a solution comprising 1% SDS containing 0.05 N NaOH for 8 hours at 37 °C (e.g., in vivo stability testing, a non-limiting example of which has been provided in Example 2).
- the therapeutically active agent may be capable of diffusing out of the implant while maintaining in vivo stability within the implant.
- the ability of a degradant to degrade a therapeutically active agent within the implant may be determined by a simulated in vivo stability assay, for example, as described in Example 2.
- an implant of the disclosure comprising a therapeutically active agent may be incubated in a solution comprising a degradant (known to degrade the therapeutically active agent). After a period of incubation, the therapeutically active agent may be extracted from the implant and degradation peaks may be measured (e.g., by high- performance liquid chromatography (HPLC)).
- HPLC high- performance liquid chromatography
- an implant of the disclosure may be configured to be delivered directly to a target tissue of a subject.
- the target tissue may be prostate tissue.
- an implant of the disclosure may be configured to be delivered to a tissue adjacent to or nearby a target tissue.
- the therapeutically active agent may diffuse out of the implant in a controlled manner and act directly on the target tissue.
- an implant of the disclosure may be configured to remain within the target tissue for a period of time.
- an implant of the disclosure may be configured to remain within the target tissue indefinitely (e.g., is never removed).
- two or more implants of the disclosure may be implanted into the target tissue.
- 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20 or more than 20 implants may be implanted in the target tissue.
- the two or more implants may be implanted in different sites of the target tissue (e.g., to deliver drug to different sites of the target tissue).
- the two or more implants may be implanted in close proximity to one another within the target tissue.
- one or more initial implants may be implanted, and additional implants may be later implanted after the drug has been exhausted from the initial implants.
- additional implants may be implanted after a drug has stopped, or substantially stopped, eluting from one or more initial implants.
- an implant of the disclosure may be visible by ultrasound when disposed within the target tissue of the subject. In such cases, the position of the implant may be monitored non-invasively.
- the implant may be sterilized prior to implantation into a subject. In some cases, the implant is sterilized via gamma sterilization.
- an implant of the disclosure may be capable of delivering a sustained release of the therapeutically active agent for a period of time.
- an implant of the disclosure may be capable of sustained release of the therapeutically active agent.
- sustained release refers to the capability of the implant to release an amount of drug for an extended period of time after implantation into a target tissue.
- an implant of the disclosure may be capable of delivering an amount of drug to a target tissue for at least 6 months, at least 9 months, at least 12 months, at least 18 months, or at least 24 months.
- an implant of the disclosure may be capable of delivering at least 0.1 pg/day of bicalutamide for at least 6 months after implantation into prostate tissue or tissue adjacent or near the prostate. In some cases, an implant of the disclosure may be capable of delivering at least 0.1 pg/day of bicalutamide (e.g., to a prostate) for up to 24 months after implantation into prostate tissue or tissue adjacent or near the prostate.
- a non-limiting example of a method for manufacturing a drug implant of the disclosure may be as provided in Example 1.
- the methods may involve mixing an amount of uncured polymer material with an amount of a therapeutically active agent to form a mixture.
- the methods may further involve molding the mixture to create a molded structure.
- the methods may further involve curing the molded mixture by heating the molded mixture for a period of time.
- the uncured polymer material may be any biocompatible silicone provided herein.
- the silicone may be Silbione ® LSR D370 or DDU 4870 (as manufactured by NuSilTM).
- the therapeutically active agent may be an anti-androgen, examples of which have been provided herein.
- the therapeutically active agent may be bicalutamide.
- the therapeutically active agent (e.g., bicalutamide) may be provided in the curing mixture in an amount such that a total amount of active agent in the implant may be from about 10% w/w to about 70% w/w, for example, about 10% w/w, about 15% w/w, about 20% w/w, about 25% w/w, about 30% w/w, about 35% w/w, about 40% w/w, about 45% w/w, about 50% w/w, about 55% w/w, about 60% w/w, about 65% w/w, or about 70% w/w.
- a total amount of active agent in the implant may be from about 10% w/w to about 70% w/w, for example, about 10% w/w, about 15% w/w, about 20% w/w, about 25% w/w, about 30% w/w, about 35% w/w, about 40% w/w, about 45% w/w, about 50% w/w,
- the total amount of active agent in the implant may be at least about 10% w/w, at least about 15% w/w, at least about 20% w/w, at least about 25% w/w, at least about 30% w/w, at least about 35% w/w, at least about 40% w/w, at least about 45% w/w, at least about 50% w/w, at least about 55% w/w, at least about 60% w/w, at least about 65% w/w, or at least about 70% w/w.
- the therapeutically active agent is bicalutamide.
- the bicalutamide may be present within the curing mixture such that a total amount of bicalutamide in the implant is in an amount of at least 10% w/w, at least 30% w/w, at least 40% w/w, at least 45% w/w, or at least 60% w/w.
- the bicalutamide may be provided in the curing mixture in an amount such that a total amount of bicalutamide in the implant may be from about 1 mg to about 10 mg.
- the curing comprises heating the molded mixture at 150 °C to 200 °C, for example, 150 °C, 155 °C, 160 °C, 165 °C, 170 °C, 175 °C, 180 °C, 185 °C, 190 °C, 195 °C, or 200 °C.
- the curing temperature generally depends on the polymer material selected. Generally, the curing temperature of the polymer material is selected such that it is lower than the melting temperature of the therapeutically active agent. In some cases, the curing comprises heating the molded mixture from 3 minutes to 8 minutes, for example, for 3 minutes, 4 minutes,
- the silicone and active agent may be selected based on the curing temperature of the silicone and the melting temperature of the active agent, such that the melting temperature of the active agent may be greater than the curing temperature of the silicone.
- the mixture may further comprise a solvent.
- solvents that may be used include pentane, heptane, toluene, dichloromethane, tetrahydrofuran, and hexane.
- the mixture may be molded by a transfer molding process.
- the methods may further comprise performing one or more analyses on the implant.
- the one or more analyses may be differential scanning calorimetry (DSC), a non-limiting example of which has been provided in Example 2.
- DSC differential scanning calorimetry
- the one or more analyses may be deployment of the implant into surrogate tissue, a non-limiting example of which has been provided in Example 2.
- the one or more analyses may be elution testing, a non-limiting example of which has been provided in Example 2.
- the one or more analyses may be in vivo stability testing, a non-limiting example of which has been provided in Example 2.
- the one or more analyses may be viscometry.
- the one or more analyses may be high pressure liquid chromatography.
- treating may be used interchangeably herein and refer to providing a therapeutic benefit to a subject in need thereof.
- treating a disease or disorder includes ameliorating, abrogating, reducing, relieving, or curing the disease or disorder. Treating a disease or disorder also includes ameliorating, abrogating, reducing, relieving, or curing one or more symptoms associated with a disease or disorder.
- treating includes diminishing or reducing the size of the tumor or tumor volume.
- the subject may have been diagnosed with, may be suspected of having, or may be at risk of having the disease.
- the methods comprise implanting an implant of the disclosure into a target tissue of a subject.
- An implant of the disclosure may be implanted into a target tissue by any method.
- the implant may be implanted into a target tissue by a surgical method or a non-surgical method.
- the implant may be implanted using standard surgical tools, for example, tools commonly used for biopsies or brachy therapy.
- the implant may be implanted into a target tissue by use of, e.g., a needle, forceps, a catheter (e.g., with a lumen).
- the implant may be implanted into a target tissue by deployment from the lumen of a needle or a catheter.
- the implant may be implanted into a target tissue using a cannula of a prostate biopsy needle.
- the implant may be implanted into a target tissue using a Mick ® needle.
- deployment of the implant may be guided by ultrasound.
- the implant may be implanted by transperineal implantation (e.g., by use of a template guided needle).
- the implant may be sterile and disposed within a packaging.
- a method of deploying an implant of the disclosure into a target tissue may involve disposing a distal end of an elongate tube into the target tissue (e.g., the prostate or tissue adjacent the prostate).
- the elongate tube may be a needle having a lumen.
- the elongate tube may have a sharp end such that the distal end of the elongate tube can penetrate the target tissue.
- the distal end of the elongate tube may be disposed through a first portion of a grid (e.g., a guide template) such that a first position of the elongate tube in the subject is determined.
- the grid may allow for proper placement of the implant into the target tissue.
- a trocar is disposed within the lumen of the elongate tube.
- the methods may involve inserting the elongate tube (with or without a trocar disposed within a lumen of the elongate tube) into the target tissue.
- the methods may further involve, when using a trocar, removing the trocar from the lumen of the elongate tube, while maintaining the distal end of the elongate tube within the target tissue.
- the methods may further involve placing an implant of the disclosure within the lumen of the elongate tube.
- the implant may be pushed through the lumen of the elongate tube by a blunt-ended rod (e.g., a stylet) that is sized to fit within the lumen of the elongate tube.
- a blunt-ended rod e.g., a stylet
- the stylet may be used to push the implant from a proximal end of the elongate tube to the distal end of the elongate tube.
- the methods may further involve, while maintaining the stylet in position, removing the elongate tube from the target tissue. As the elongate tube is removed from the target tissue, the stylet may push the implant out of the elongate tube and into the target tissue.
- the methods may further involve removing both the stylet and the elongate tube together from the target tissue.
- the methods may involve implanting more than one implant into a target tissue of the subject.
- the methods may involve implanting a first implant into a first portion of the target tissue, and a second implant into a second portion of the target tissue.
- the first portion of the target tissue and the second portion of the target tissue may be different.
- the first implant may comprise a first therapeutically active agent and the second implant may comprise a second therapeutically active agent.
- the first therapeutically active agent and the second therapeutically active agent may be the same.
- the first therapeutically active agent and the second therapeutically active agent may be different.
- a grid e.g., a guide template
- the first implant and/or the second implant may be positioned with the use of ultrasound guidance.
- the methods may further comprise implanting additional implants into the target tissue.
- the methods may further comprise implanting a third implant into a third portion of the target tissue, implanting a fourth implant into a fourth portion of the target tissue, implanting a fifth implant into a fifth portion of the target tissue, implanting a sixth implant into a sixth portion of the target tissue, implanting a seventh implant into a seventh portion of the target tissue, implanting an eighth implant into an eighth portion of the target tissue, and so forth.
- the third, fourth, fifth, sixth, seventh, eighth, or more, therapeutically active agents may each be the same, different, or combinations thereof.
- at least three implants are implanted into a target tissue.
- At least three implants may be implanted into the prostate or tissue adjacent or near the prostate by transperineal administration.
- one or more implants may be implanted into a prostate or tissue adjacent or near a prostate prior to a surgical procedure to treat prostate cancer.
- one or more implants may be implanted into a prostate or tissue adjacent or near a prostate prior to performing a prostatectomy (e.g., a week before, two weeks before, three weeks before, etc.). In such cases, the prostatectomy may remove the prostate or a portion thereof. In some cases, the prostatectomy may remove one or more of the implants from the subject.
- one or more implants may be implanted into a prostate or tissue adjacent or near a prostate, and may remain in the prostate indefinitely.
- the one or more implants may provide a therapeutically effective amount of bicalutamide to the prostate tissue for a period of time such that the subject is in remission or cured of the prostate cancer.
- the term “subject”, as used herein, generally refers to a vertebrate, such as a mammal, e.g., a human. Mammals include, but are not limited to, murines, simians, humans, research animals, farm animals, sport animals, and pets.
- the methods described herein may be used on tissues derived from a subject and the progeny of such tissues.
- the tissues may be obtained from a subject in vivo. In some cases, the tissues may be cultured in vitro.
- the methods provided herein may be used to treat a subject in need thereof.
- the subject may suffer from a disease.
- the subject may be a human.
- the human may be a patient at a hospital or a clinic.
- the subject may be a non-human animal, for example, a non-human primate, a livestock animal, a domestic pet, or a laboratory animal.
- a non-human animal can be an ape (e.g., a chimpanzee, a baboon, a gorilla, or an orangutan), an old world monkey (e.g., a rhesus monkey), a new world monkey, a dog, a cat, a bison, a camel, a cow, a deer, a pig, a donkey, a horse, a mule, a lama, a sheep, a goat, a buffalo, a reindeer, a yak, a mouse, a rat, a rabbit, or any other non-human animal.
- an ape e.g., a chimpanzee, a baboon, a gorilla, or an orangutan
- an old world monkey e.g., a rhesus monkey
- a new world monkey e.g., a dog, a cat, a bison, a came
- the subject may be of any age. In some cases, the subject may be about 50 years or older. In some cases, the subject may be about 55 years or older. In some cases, the subject may be about 60 years or older. In some cases, the subject may be about 65 years or older. In some cases, the subject may be about 70 years or older. In some cases, the subject may be about 75 years or older. In some cases, the subject may be about 80 years or older. In some cases, the subject may be about 85 years or older. In some cases, the subject may be about 90 years or older. In some cases, the subject may be about 95 years or older. In some cases, the subject may be about 100 years or older.
- the subject may be about 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, 60, 61, 62, 63, 64, 65, 66, 67, 68, 69, 70, 71, 72, 73, 74, 75, 76, 77, 78, 79, 80, 81, 82, 83, 84, 85, 86, 87, 88, 89, 90, 91, 92, 93, 94, 95,
- the subject may be about 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20 or greater than 20 years old.
- the methods provided herein may treat a disease in a subject. In some cases, the methods provided herein may alleviate or reduce a symptom of a disease. In some cases, the methods provided herein may result in a reduction in the severity of one or more symptoms associated with a disease. In some cases, the methods provided herein may slow, halt, or reverse the progression of one or more symptoms associated with a disease. In some cases, the methods provided herein may prevent the development of one or more symptoms associated with a disease. In some cases, the methods provided herein may slow, halt, or reverse the progression of a disease, as measured by the number and severity of symptoms experienced. [0078] In some cases, the disease may be a proliferative disease or disorder.
- the proliferative disease or disorder may be cancer.
- the subject may have a tumor.
- the methods may reduce the size of a tumor.
- the methods may reduce the size of a tumor by at least 10%, at least 15%, at least 20%, at least 25%, at least 30%, at least 35%, at least 40%, at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95%, or by 100%.
- the proliferative disease or disorder may be a proliferative disease or disorder of the prostate.
- the proliferative disease or disorder of the prostate may be prostate cancer.
- Prostate cancer can be adenocarcinoma, sarcoma, neuroendocrine tumors, small cell carcinoma, transitional cell carcinoma, or squamous cell carcinoma.
- the proliferative disease or disorder of the prostate may be benign prostatic hyperplasia.
- the methods may be employed to deliver a therapeutically effective amount of a drug to a target tissue.
- the methods may involve delivering a drug implant to a target tissue (or a tissue adjacent to the target tissue) of the subject. Any tissue may be suitable for delivery of a drug implant of the disclosure.
- the target tissue may be the prostate, tissue adjacent to the prostate, or both.
- Non-limiting examples of target tissue includes breast, pancreas, bladder, brain, skin, kidney, lung, liver, tongue, esophagus, stomach, intestine, gallbladder, heart, pituitary gland, pineal gland, thyroid gland, parathyroid gland, adrenal gland, eye, bone, fallopian tubes, uterus, ovary, sinuses, inner ear (eustachian tube), testes, and neck.
- the methods provide for implanting a drug implant of the disclosure into the target tissue (or an adjacent tissue) of a subject, wherein the implant delivers a therapeutically effective amount of the drug to the target tissue.
- a “therapeutically effective amount” when used in reference to a drug or therapeutically active agent refers to an amount of drug or therapeutically active agent that is capable of eliciting a therapeutic response in a subject.
- the implant may deliver a therapeutically effective amount of drug to a tissue of the subject from 6 months to 24 months.
- the implant may deliver a therapeutically effective amount of drug to a tissue of the subject for 6 months, 7 months, 8 months, 9 months, 10 months, 11 months, 12 months, 13 months, 14 months, 15 months, 16 months, 17 months, 18 months, 19 months, 20 months, 21 months, 22 months, 23 months, or 24 months.
- the implant may deliver a therapeutically effective amount of drug to a tissue of the subject for at least 6 months, at least 7 months, at least 8 months, at least 9 months, at least 10 months, at least 11 months, at least 12 months, at least 13 months, at least 14 months, at least 15 months, at least 16 months, at least 17 months, at least 18 months, at least 19 months, at least 20 months, at least 21 months, at least 22 months, at least 23 months, or at least 24 months.
- a therapeutically effective amount of drug may be at least 0.1 pg/day. In some cases, a therapeutically effective amount of drug may be at least 0.1 pg/day, 0.2 pg/day, 0.3 pg/day, 0.4 pg/day, 0.5 pg/day, 0.6 pg/day, 0.7 pg/day, 0.8 pg/day, 0.9 pg/day, 1 pg/day, 2 pg/day, 3 pg/day, 4 pg/day, 5 pg/day, 6 pg/day, 7 pg/day, 8 pg/day, 9 pg/day, 10 pg/day, 15 pg/day, 20 pg/day, 25 pg/day, 30 pg/day, 35 pg/day, 40 pg/day, 45 pg/day, 50 pg/day, 55 pg/day, 60 p
- the implant may result in cumulative release of the therapeutically active agent from the implant into the target tissue.
- the cumulative release of bicalutamide from the implant in vitro may be at least 100 pg on day 1.
- the cumulative release of bicalutamide from the implant in vitro may be at least 1,500 pg on day 50.
- the cumulative release of bicalutamide from the implant in vitro may be at least 2,000 pg on day 100.
- at least 50% of the total amount of bicalutamide present within the implant at the time of implantation remains in the polymer matrix at 100 days post implantation.
- the implant may be configured to remain within the target tissue for a period of time.
- the implant may be configured to remain within the target tissue for long periods of time (e.g., months to years) or indefinitely (e.g., may never be removed).
- the implant after the implant has delivered all of the therapeutically active agent contained therein to the subject, the implant (devoid of the therapeutically active agent) may remain within the target tissue.
- one or more additional implants may be delivered to the target tissue (without removing the initial implant).
- the implant may be composed of a non-biodegradable and/or non-resorbable polymer material such that the polymer material remains substantially intact within the target tissue for long periods of time or indefinitely.
- the implants of the disclosure are capable of delivering a therapeutically effective amount of bicalutamide to the prostate tissue, or tissue adjacent or near the prostate, for extended periods of time (e.g., at least 6 months). Additionally, the implants of the disclosure are capable of delivering a high concentration of bicalutamide locally to the prostate, while maintaining low systemic concentrations of bicalutamide. In some cases, the implants of the disclosure may reduce or prevent toxicity due to high systemic concentrations of bicalutamide.
- a total dose of bicalutamide administered to the subject by an implant of the disclosure is less than a total dose of bicalutamide when administered to a subject by systemic (e.g., oral) administration.
- Standard oral dosing regimens of bicalutamide include 150 mg/day bicalutamide monotherapy for early stage prostate cancer, and 50 mg/day in combination with other therapies for advanced prostate cancers.
- the implants of the disclosure provide for administration of lower total doses of bicalutamide relative to oral dosing regimens. In some cases, the total amount of bicalutamide administered to a subject is less than 100 mg over a 6 month period.
- implanting a drug implant of the disclosure into the prostate or tissue adjacent or near the prostate results in a blood plasma concentration of bicalutamide that is substantially less than a blood plasma concentration of bicalutamide obtained when bicalutamide is administered to a subject by systemic (e.g., oral) administration.
- the steady state blood plasma concentration of //-enantiomer of bicalutamide has been reported to be about 9 pg/ml.
- an implanting an implant of the disclosure into the prostate or tissue adjacent or near the prostate results in a steady state blood plasma concentration of R- bicalutamide that is less than 9 pg/ml, for example, less than 5 pg/ml.
- kits may comprise one or more implants as described herein.
- a kit may include 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20 or more than 20 implants.
- the one or more implants may comprise a therapeutically active agent contained therein.
- each of the one or more implants may comprise the same therapeutically active agent.
- each of the one or more implants may comprise one or more different therapeutically active agents.
- a kit may comprise one or more surgical tools, such as a needle or forceps.
- a kit may be packaged in a sterilized package.
- the sterilized package comprises a foil.
- a kit may further comprise instructions for implanting the implant into a tissue of a subject.
- ranges and amounts can be expressed as “about” a particular value or range. About also includes the exact amount. Hence “about 5 pL” means “about 5 pL” and also “5 pL.” Generally, the term “about” includes an amount that would be expected to be within experimental error, e.g., within 15%, 10%, or 5%.
- An implant comprising: a biocompatible, substantially non-biodegradable polymer matrix; and an anti-androgen dispersed throughout the polymer matrix.
- An implant comprising: a biocompatible polymer matrix; and a therapeutically active agent dispersed throughout the polymer matrix, wherein the implant delivers a therapeutically effective amount of the therapeutically active agent to a target tissue of a subject for at least 24 months when the implant is disposed in the target tissue of the subject.
- An implant comprising: a biocompatible, substantially non-biodegradable polymer matrix; and an anti-androgen in crystalline form.
- An implant comprising: a biocompatible, substantially non-biodegradable polymer matrix; and an anti-androgen dispersed throughout the polymer matrix at an amount from 10 to 70% w/w.
- the implant of any one of embodiments 1-4 wherein the implant, when disposed in the target tissue of the subject, releases at least 0.1 pg/day of the therapeutically active agent or the anti-androgen at 24 months after implantation.
- the implant of embodiment 12 or 13, wherein the degradation is determined by measuring the amount of the therapeutically active agent or the anti-androgen in an eluent after incubating the implant containing the therapeutically active agent or the anti androgen in a solution comprising 1% SDS containing 0.05 N NaOH for 8 hours at 37 °C.
- the implant of any one of embodiments 1-15, wherein the implant is cylindrical.
- the implant of any one of embodiments 1-17, wherein a diameter of the implant is less than 1 mm.
- the implant of any one of embodiments 1-18, wherein a diameter of the implant is from 0.5 mm to 1.5 mm.
- the implant of any one of embodiments 1-18, wherein a diameter of the implant is from 0.7 mm to 1.3 mm.
- the implant of any one of embodiments 1-18, wherein a diameter of the implant is from 0.9 mm to 1.1 mm.
- the implant of any one of embodiments 1-18, wherein a diameter of the implant is about 1 mm.
- the implant of any one of embodiments 1-22, wherein a length the implant is less than 20 mm.
- a length of the implant is from 5 mm to 25 mm.
- the implant of any one of embodiments 1-22, wherein a length of the implant is from 10 mm to 20 mm.
- the implant of any one of embodiments 1-22, wherein a length of the implant is from 12 mm to 18 mm.
- the implant of any one of embodiments 1-22, wherein a length of the implant is about 15 mm.
- the implant of any one of embodiments 1-27, wherein the implant further comprises a coating.
- the implant of embodiment 28, wherein the coating partially covers the implant.
- the implant of embodiment 28, wherein the coating substantially covers the implant.
- the implant of embodiment 28, wherein the coating covers the implant.
- the implant of any one of embodiments 1-32, wherein the therapeutically active agent or the anti-androgen is bicalutamide.
- the implant of any one of embodiments 1-33, wherein the implant is sterile.
- the implant of any one of embodiments 1-34, wherein the implant is disposed in a sterilized package.
- the implant of any one of embodiments 1-36, wherein the polymer matrix comprises silicone.
- the implant of embodiment 37, wherein the silicone is Silbione ® LSR D370 as manufactured by Elkem.
- the implant of embodiment 37, wherein the silicone is DDU 4870 as manufactured by NuSilTM.
- the implant of any one of embodiments 1-39, wherein the implant is configured to be implanted into prostate tissue of a subject.
- the implant of any one of embodiments 1-40, wherein the implant lacks a metal.
- kits comprising: a sterilized package comprising an implant according to any one of embodiments 1-41 therein; and instructions for implanting the implant into a target tissue of a subject.
- the kit of embodiment 54 wherein the implant is configured for delivery into a human prostate, tissue adjacent the human prostate, or both.
- kits of any one of embodiments 54-56 further comprising one or more surgical tools for implanting the implant into the target tissue of the subject.
- a method of treating a disease in a subject in need thereof comprising: implanting an implant of any one of embodiments 1-41 into the prostate of the subject, thereby treating the disease.
- a method of treating a disease in a subject in need thereof comprising: implanting a substantially non-biodegradable implant comprising a biocompatible polymer matrix and an anti-androgen drug dispersed throughout the biocompatible polymer matrix into the prostate of the subject, thereby treating the disease.
- the method of embodiment 60 wherein the prostate comprises prostate tissue, tissue adjacent the prostate tissue, or both.
- the method of embodiment 63 wherein a portion of the elongate tube is disposed through a first portion of a grid such that a first position of the elongate tube in the subject is determined.
- a trocar is disposed within a lumen of the elongate tube.
- the method of embodiment 66 further comprising removing the trocar from the lumen of the elongate tube.
- the method of embodiment 67 further comprising, after removing the trocar from the lumen of the elongate tube, positioning the implant within the lumen of the elongate tube.
- the method of embodiment 68 further comprising pushing a stylet through the lumen of the elongate tube, thereby displacing the implant to the distal end of the elongate tube.
- the method of embodiment 69 further comprising displacing the elongate tube away from the subject such the implant remains within the subject.
- Manufacture of the implant included two main steps: formulation of the active pharmaceutical ingredient (API) (e.g., bicalutamide) with an elastomer (e.g., heat cured silicone) to ensure uniform mixing of the API within the polymer matrix, and molding of the implants to ensure the product can be deployed to the organ as intended.
- API active pharmaceutical ingredient
- elastomer e.g., heat cured silicone
- the implant formulation included medical grade silicone as an excipient mixed with the API.
- a solvent was used for reducing the viscosity of the silicone, if needed, to incorporate the desired API loading.
- the 60% w/w bicalutamide formulation was made using a centrifugal mixer (FlackTek DAC400 -VAC).
- the required amount of silicone Part A and Part B were added to the mixing cup and an equal weight of a solvent (that dissolves silicone; e.g., pentane) was added.
- the silicone and solvent were speed-mixed until the viscosity of the silicone was reduced such that it flowed.
- the API powder was then incorporated into the mixing cup and speed-mixed until a visibly smooth mixture was obtained with no dry API spots.
- the solvent was then removed under vacuum leaving a paste of silicone and API.
- Table 1 shows the formulation for 60% w/w bicalutamide using Silbione ® LSR D370 as the silicone and pentane as a solvent for a 10-gram mix.
- Table 2 lists a set of solvent removal parameters which can be repeated until the desired amount of solvent is removed as confirmed by weight.
- Example Formulation Composition 60% w/w Bicalutamide Table 2.
- Example Solvent Removal Conditions 60% w/w Bicalutamide Table 2.
- Implant rods were made using an aluminum mold via a transfer molding process. The molds were assembled, and a pre- weighed amount of the formulation was injected into the mold. Post-formulation injection, the rods were cured for a predetermined time (3 to 8 minutes) at a certain temperature (150 to 200°C) based on the silicone supplier’s recommendations for curing. Post-curing, the mold was cooled, and the rods were de-molded for characterization.
- FIG. 1 depicts an example of a molded implant according to Example 1.
- Example 2 Characterization of Bicalutamide Containing Formulation and Implants
- DSC Differential Scanning Calorimetry
- HPLC High Pressure Liquid Chromatography
- FIGS. 2A-2F show a set of DSC thermograms that were generated during development. A comparison of the thermogram of uncured silicone (FIG. 2A) to an in-process formulation mix (FIG. 2C) and the molded rod (FIGS.
- FIG. 2B and 2D shows that the molded rods were fully cured and that the API was mixed into the formulation.
- Elution testing was performed to analyze the in vitro performance of the molded implant. Implants were placed in a 1% w/w sodium lauryl sulfate (SDS) solution and the elution media was replaced at regular intervals. The eluent of API was quantitated at each timepoint via UV/Vis Spectroscopy or HPLC. A comparison of elution curves for a 30% w/w, 45% w/w, and 60% w/w bicalutamide formulation along with the predicted profile out to - 2 years is shown in FIGS. 4A-4C.
- SDS sodium lauryl sulfate
- FIG. 4D depicts the cumulative release (pg/day) of bicalutamide from an implant containing 60% w/w bicalutamide in an in vitro model.
- FIG. 4E depicts the release rate profile of bicalutamide from an implant containing 60% w/w bicalutamide in an in vitro model.
- 4F depicts a predicted cumulative release (ug/day) profile of an implant containing 60% w/w bicalutamide demonstrating that there is enough bicalutamide loaded within the implant to provide a therapeutically effective dose of drug for 2 years.
- the dotted line indicates the total amount of drug loaded in the implant (-8.4 mg).
- FIG. 4G depicts the impact of age, storage conditions, and sterilization on the cumulative release profiles of implants containing 60% w/w bicalutamide in an in vitro model.
- FIG. 4G demonstrates that different storage conditions, sterilization techniques, and age of the implants has no impact on the cumulative release profiles of these implants in an in vitro model.
- FIG. 4H depicts the release rate of bicalutamide from these implants, again demonstrating no effect from different storage conditions, sterilization techniques, or age of the implants in an in vitro model.
- Implants containing 0% w/w, 30% w/w, 45% w/w, and 60% w/w bicalutamide were placed in a 1% SDS solution containing 0.05 N NaOH (a degradant known to degrade bicalutamide) for -8 hours at 37 °C.
- the implant prevented NaOH to penetrate the device thereby protecting the bicalutamide within the implant from degradation.
- Example 3 Analysis of a drug implant of the disclosure implanted into the prostate of canines
- each canine received two active implant devices containing 60% by weight of bicalutamide ( ⁇ 8.4 mg) / Silbione Biomedical LSR D370 silicone in a 15 mm long by 0.95 mm diameter rod.
- An 18- gauge brachytherapy needle (OD 1.27 mm) was used for device implantation.
- Clinical observations and body weight were recorded. Blood was collect at frequent intervals for determination of plasma bicalutamide concentrations and for clinical chemistry evaluation. After 55 days of observation, animals were euthanized and gross necropsy conducted, implanted devices were retrieved, and tissues (including prostate) were collected for histopathological examination and bicalutamide quantitation.
- Plasma total, R-, and S-bicalutamidc levels were comparable across all three study animals, peaking between 12 and 24 ng/mL (FIGS. 6A and 6B). Steady state was reached roughly by day 4 with average median levels of 13.2 ⁇ 1.7, 9.1+1.3, and 5.0+0.5 through day 55 for total, R-, and 5-bicalutamidc, respectively. The ratio of R- to 5-bicalutamide was roughly 2:1. Note that the plasma levels as shown in FIGS. 6A and 6B are in micrograms for the oral dose while the scale is in ng/mL for the device plasma levels.
- Bicalutamide was quantified in major organs and prostate associated tissues harvested during necropsy. Bicalutamide levels were highest in organs of elimination (liver and kidney), as well as tested and lung. Consistent with plasma findings, the ratio of R- to 5-bicalutamidc was -2:1. Compared to plasma levels, average accumulation was only apparent in liver (47+16,
- the study sought to evaluate safety, toxicity, and bicalutamide tissue distribution in canines when two 60% bicalutamide by weight devices were implanted into the prostate. No significant safety or toxicity findings were observed during the live animal portion of the study. Consistently, gross and histopathological analysis of major organs and prostate-associated tissues found no lesions contributable to the study devices, including foreign body response, which might impair bicalutamide delivery to the prostate. Comparison of bicalutamide levels in plasma, organs, and prostate demonstrated significantly greater local (e.g., prostate) exposure was achieved.
- the prostate was divided into three pieces to enable a more thorough assessment of bicalutamide delivery, while preserving the ability to evaluate histopathology. Although limited to a relatively thin transverse section of the prostate, this centrally positioned slice would be in contact or in close proximity to implanted devices and thus enable histopathological analysis of device and delivered bicalutamide impact on tissue. Further, having sent the center transverse section of the prostate for histopathology, its contribution to whole gland prostate bicalutamide level was not included. This likely results in an underestimation of whole gland bicalutamide as this device proximal portion likely had higher average levels than other portions of the gland (e.g., caudal piece), which were more distant from devices.
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Abstract
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Priority Applications (6)
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| AU2020437135A AU2020437135A1 (en) | 2020-03-20 | 2020-12-18 | Implantable drug delivery devices for localized drug delivery |
| US17/911,775 US12576063B2 (en) | 2020-03-20 | 2020-12-18 | Implantable drug delivery devices for localized drug delivery |
| JP2022555987A JP7665645B2 (en) | 2020-03-20 | 2020-12-18 | Implantable drug delivery device for localized drug delivery - Patents.com |
| CN202080100663.4A CN115515657A (en) | 2020-03-20 | 2020-12-18 | Implantable Drug Delivery Devices for Localized Drug Delivery |
| EP20925288.1A EP4100075A4 (en) | 2020-03-20 | 2020-12-18 | IMPLANTABLE DRUG DELIVERY DEVICES FOR LOCALIZED DRUG DELIVERY |
| CA3171976A CA3171976A1 (en) | 2020-03-20 | 2020-12-18 | Implantable drug delivery devices for localized drug delivery |
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| US16/826,043 | 2020-03-20 | ||
| US16/826,022 US11338119B2 (en) | 2020-03-20 | 2020-03-20 | Implantable drug delivery devices for localized drug delivery |
| US16/826,064 US11344526B2 (en) | 2020-03-20 | 2020-03-20 | Implantable drug delivery devices for localized drug delivery |
| US16/826,022 | 2020-03-20 | ||
| US16/826,064 | 2020-03-20 | ||
| US16/826,043 US11173291B2 (en) | 2020-03-20 | 2020-03-20 | Implantable drug delivery devices for localized drug delivery |
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| WO2021188178A1 true WO2021188178A1 (en) | 2021-09-23 |
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| US (1) | US12576063B2 (en) |
| EP (1) | EP4100075A4 (en) |
| JP (1) | JP7665645B2 (en) |
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| AU (1) | AU2020437135A1 (en) |
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- 2020-12-18 EP EP20925288.1A patent/EP4100075A4/en active Pending
- 2020-12-18 JP JP2022555987A patent/JP7665645B2/en active Active
- 2020-12-18 US US17/911,775 patent/US12576063B2/en active Active
- 2020-12-18 CA CA3171976A patent/CA3171976A1/en active Pending
- 2020-12-18 CN CN202080100663.4A patent/CN115515657A/en active Pending
- 2020-12-18 AU AU2020437135A patent/AU2020437135A1/en active Pending
- 2020-12-18 WO PCT/US2020/066215 patent/WO2021188178A1/en not_active Ceased
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Also Published As
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|---|---|
| US20230137168A1 (en) | 2023-05-04 |
| JP2023518061A (en) | 2023-04-27 |
| AU2020437135A1 (en) | 2022-10-13 |
| US12576063B2 (en) | 2026-03-17 |
| US20240100010A9 (en) | 2024-03-28 |
| EP4100075A4 (en) | 2024-01-31 |
| CA3171976A1 (en) | 2021-09-23 |
| CN115515657A (en) | 2022-12-23 |
| EP4100075A1 (en) | 2022-12-14 |
| JP7665645B2 (en) | 2025-04-21 |
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