WO2023064506A1 - Echogenic compositions and methods of use thereof for the treatment of pain - Google Patents
Echogenic compositions and methods of use thereof for the treatment of pain Download PDFInfo
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- WO2023064506A1 WO2023064506A1 PCT/US2022/046624 US2022046624W WO2023064506A1 WO 2023064506 A1 WO2023064506 A1 WO 2023064506A1 US 2022046624 W US2022046624 W US 2022046624W WO 2023064506 A1 WO2023064506 A1 WO 2023064506A1
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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
- A61K31/33—Heterocyclic compounds
- A61K31/395—Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins
- A61K31/435—Heterocyclic compounds having nitrogen as a ring hetero atom, e.g. guanethidine or rifamycins having six-membered rings with one nitrogen as the only ring hetero atom
- A61K31/44—Non condensed pyridines; Hydrogenated derivatives thereof
- A61K31/445—Non condensed piperidines, e.g. piperocaine
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61B—DIAGNOSIS; SURGERY; IDENTIFICATION
- A61B8/00—Diagnosis using ultrasonic, sonic or infrasonic waves
- A61B8/48—Diagnostic techniques
- A61B8/481—Diagnostic techniques involving the use of contrast agents, e.g. microbubbles introduced into the bloodstream
-
- 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
- A61K9/06—Ointments; Bases therefor; Other semi-solid forms, e.g. creams, sticks, gels
-
- 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
- A61K9/10—Dispersions; Emulsions
- A61K9/107—Emulsions ; Emulsion preconcentrates; Micelles
- A61K9/1075—Microemulsions or submicron emulsions; Preconcentrates or solids thereof; Micelles, e.g. made of phospholipids or block copolymers
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P23/00—Anaesthetics
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61P—SPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
- A61P23/00—Anaesthetics
- A61P23/02—Local anaesthetics
-
- 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
- A61K47/06—Organic compounds, e.g. natural or synthetic hydrocarbons, polyolefins, mineral oil, petrolatum or ozokerite
- A61K47/08—Organic compounds, e.g. natural or synthetic hydrocarbons, polyolefins, mineral oil, petrolatum or ozokerite containing oxygen, e.g. ethers, acetals, ketones, quinones, aldehydes, peroxides
- A61K47/12—Carboxylic acids; Salts or anhydrides thereof
-
- 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
- A61K47/36—Polysaccharides; Derivatives thereof, e.g. gums, starch, alginate, dextrin, hyaluronic acid, chitosan, inulin, agar or pectin
-
- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
- A61N—ELECTROTHERAPY; MAGNETOTHERAPY; RADIATION THERAPY; ULTRASOUND THERAPY
- A61N7/00—Ultrasound therapy
- A61N2007/0039—Ultrasound therapy using microbubbles
Definitions
- Liposomal bupivacaine has been used in peripheral nerve blocks to prolong duration of action of the local anesthetic and to reduce post-operative pain and perioperative opioid use. In practice, that preparation often falls short of eliminating opiate use for surgical patients in many settings. The pharmacokinetic profile of the delivery system and migration of the local anesthetic in tissue jointly contribute to limited efficacy and duration of action at target sites.
- Acute post-op pain is estimated to need at least 5-7 days of pain relief coverage. To that end, advancements in perioperative medicine endeavor to eliminate opioids from a post-operative treatment regimen, but have fallen short to date.
- compositions and methods that are effective in providing sustained post-operative pain relief without the use of opiate based medications.
- an API e.g. an anesthetic agent
- a method for treating pain in a subject comprising administering an echogenic composition to a target site in a subject and confirming delivery of the echogenic composition to the target site with ultrasound.
- the echogenic composition comprises an aqueous carrier and a plurality of lipid microparticles dispersed within the aqueous carrier, wherein the plurality of lipid microparticles comprise an anesthetic agent.
- the aqueous carrier is hydrogel comprised of tyramine substituted hyaluronic acid, wherein the hydrogel is formed through di-tyramine crosslinking and wherein the degree of tyramine substitution of hyaluronic acid hydroxyl groups is about 0.5% to about 3%.
- the volumetric ratio between the aqueous carrier and the lipid microparticles is from about 70-80 the aqueous carrier to about 30-20 lipid microparticles.
- the plurality of lipid microparticles are comprised of a paraffin, a triglyceride, and/or a wax.
- the lipid microparticle is a wax and the wax is a carnauba wax.
- the lipid microparticles comprise a wax or a mixture of a wax and a fatty acid, wherein the fatty acid is C4 or greater.
- the plurality of lipid microparticles comprise stearic acid and tributyrate.
- the stearic acid and tributyrate are present at a ratio of from about 0.1% to about 30%.
- the anesthetic agent is present within the lipid microparticle in a crystalline form.
- echogenic composition comprising an aqueous carrier and a lipid phase dispersed into droplets within the aqueous carrier, and an undissolved crystalline anesthetic agent within the lipid phase.
- the lipid phase is a triglyceride.
- the triglyceride is a liquid at 25°C.
- the lipid phase droplets are from about 500 nm to about 100 ⁇ m in diameter. In further embodiments, the lipid phase droplets are from about 500 nm to about 5 ⁇ m in diameter. [011] In certain embodiments, the aqueous phase comprises hyaluronic acid. In further embodiments, the hyaluronic acid present in an amount from about 0.1% to about 1%.
- an echogenic composition for the treatment of pain comprising: a continuous aqueous phase comprising an emulsifier and a polyol; a lipid phase comprising a triglyceride, wherein the triglyceride is liquid at 25°C and wherein an undissolved crystalline anesthetic agent within the triglyceride; and wherein the lipid phase is emulsified within the continuous aqueous phase.
- the emulsifier is hyaluronic acid.
- the hyaluronic acid is present in an amount from about 0.15% to about 1%.
- the lipid phase further comprises a phospholipid.
- the phospholipid is present in an amount from about 0.1% to about 2.0% of the lipid phase.
- the lipid phase further comprises an antioxidant .
- the antioxidant is present in an amount of from about 0.01% to about 1% (w/v) of the composition.
- Exemplary antioxidants include any suitable lipophilic antioxidant.
- the antioxidant is a tocopherol (e.g. alpha tocopherol).
- the lipid phase is from about 10% to about 40% (w/v) of the composition.
- the polyol is glycerol.
- FIG. 1A is an image from an ultrasound showing an echogenic needle pre-injection, according to certain embodiments.
- FIG.1B is an image from an ultrasound showing injection of an INSB200 (hydrogel-lipid- microparticle ropivacaine matrix) injection demonstrating dense echogenicity with echo-dense shadow, according to certain embodiments.
- FIG. 2A is an image from an ultrasound showing an echogenic needle pre-injection, according to certain embodiments.
- FIG.2B is an image from an ultrasound showing injection of an INSB200 (hydrogel-lipid- microparticle ropivacaine matrix) injection demonstrating dense echogenicity, according to certain embodiments.
- FIG. 3 shows a shallow injection of a control article into a pig muscle; the needle can be seen in the right side of the image field of view.
- FIG. 3 shows a shallow injection of a control article into a pig muscle; the needle can be seen in the right side of the image field of view.
- FIG. 4 shows a pig muscle post shallow injection of the control test article (1% hyaluronic acid solution); the needle is present in right side of image field of view.
- FIG. 5 shows a deep injection of a control article into a pig muscle; the needle can be seen in the right side of the image field of view.
- FIG.6 shows a pig muscle post deep injection of the control test article; the needle is shown in the top right image field of view.
- FIG. 7 shows a pig muscle prior to shallow injection of the 0.5% lipid microparticle formulation; the needle is in the right image field of view.
- FIG. 8 shows a pig muscle post shallow injection of the 0.5% lipid microparticle formulation; the needle is present in the right image field of view.
- FIG. 9 shows a pig muscle prior to deep injection of the 0.5% lipid microparticle formulation; the needle is present in the right image field of view.
- FIG.10 shows a pig muscle post deep injection of the 0.5% lipid microparticle formulation; the needle is present in the right image field of view.
- FIG. 11 shows a pig muscle prior to shallow injection of the 1% lipid microparticle formulation; the needle is visible in the image right field of view.
- FIG. 12 shows a pig muscle post shallow injection of the 1% lipid microparticle formulation; the needle is visible in the image right field of view.
- FIG. 3 shows a pig muscle post shallow injection of the 1% lipid microparticle formulation; the needle is visible in the image right field of view.
- FIG. 13 shows a pig muscle prior to deep injection of the 1% microparticle formulation; the needle is shown in image right side field of view.
- FIG. 14 shows a pig muscle post deep injection of the 1% microparticle formulation; the needle is shown in image right side field of view.
- FIG. 15 shows a pig muscle prior to shallow injection of the 10% lipid microparticle formulation; the needle is present in the right side field of view.
- FIG. 16 shows a pig muscle post shallow injection of the 10% lipid microparticle formulation.
- FIG. 17 shows a pig muscle prior to deep injection of the 10% lipid microparticle formulation; the needle is present in the right side image field of view.
- FIG. 14 shows a pig muscle post deep injection of the 1% microparticle formulation; the needle is shown in image right side field of view.
- FIG. 15 shows a pig muscle prior to shallow injection of the 10% lipid microparticle formulation; the needle is present in the right side field of view.
- FIG. 16 shows a pig muscle post shallow injection
- FIG. 18 shows a pig muscle post deep injection of the 10% lipid microparticle; the needle is present in the right side field of view.
- FIG. 19 shows a pig muscle prior to shallow injection of the 30% lipid microparticle formulation; the needle is present in the right side image field of view.
- FIG. 20 shows a pig muscle post shallow injection of the 30% lipid microparticle formulation; the needle is present in the top right side of image field of view.
- FIG. 21 shows a pig muscle prior to deep injection of the 30% lipid microparticle formulation; the needle is present in the top right field of view.
- FIG. 22 shows a pig muscle post deep injection of the 30% microparticle formulation; the needle is present in the top right quadrant of image field of view.
- FIG. 23 shows a pig muscle prior to shallow injection of the 10% lipid homogenized formulation; the needle is seen in the right side of the image field of view.
- FIG. 24 shows a pig muscle post shallow injection of the 10% lipid microparticle formulation containing 13% ropivacaine; the needle can be seen in the right side field of view.
- FIG. 25 shows a pig muscle prior to deep injection of the 10% homogenized lipid microparticle formulation containing 13% ropivacaine; the needle is shown in the right side image field of view.
- FIG. 24 shows a pig muscle post shallow injection of the 10% lipid microparticle formulation containing 13% ropivacaine; the needle can be seen in the right side field of view.
- FIG. 25 shows a pig muscle prior to deep injection of the 10% homogenized lipid microparticle formulation containing 13% ropivacaine; the needle is shown in the right side image field of view.
- FIG. 26 shows a pig muscle post deep injection of the 10% homogenized lipid microparticle formulation containing 13% ropivacaine; the needle is seen in the right side image field of view.
- FIG. 27 shows a pig muscle prior to shallow injection of the 30% lipid microparticle formulation containing stearic acid and tributyrate; the needle is seen in the right side image field of view.
- FIG. 28 shows a pig muscle post shallow injection of the 30% lipid microparticle formulation containing stearic acid and tributyrate; the needle is seen on far right of image field of view.
- FIG. 27 shows a pig muscle prior to shallow injection of the 30% lipid microparticle formulation containing stearic acid and tributyrate; the needle is seen in the right side image field of view.
- FIG. 28 shows a pig muscle post shallow injection of the 30% lipid microparticle formulation containing stearic acid and tributyrate; the needle is seen on far right of image field of view.
- FIG. 29 shows a pig muscle prior to deep injection of the 30% microparticle formulation containing stearic acid and tributyrate; the needle is shown as a diagonal line starting in top right of image field of view.
- FIG.30 shows a pig muscle post deep injection of the 30% lipid microparticle formulation containing stearic acid and tributyrate; the needle is shown as diagonal line starting in top right quadrant of image and entering test article cloud.
- FIG. 31 shows a pig muscle prior to shallow injection of the 10% stearic acid and tributyrate microparticle formulation; the needle is seen entering from the right side of the image field of view.
- FIG. 30 shows a pig muscle prior to deep injection of the 30% microparticle formulation containing stearic acid and tributyrate; the needle is shown as a diagonal line starting in top right quadrant of image and entering test article cloud.
- FIG. 31 shows a pig muscle prior to shallow injection of the 10% stearic acid and tributyrate microparticle formulation;
- FIG. 32 shows a pig muscle post shallow injection of the 10% stearic acid and tributyrate microparticle formulation; the needle is seen entering the right side of the image of field of view.
- FIG. 33 shows a pig muscle prior to deep injection of 10% lipid microparticle formulation containing stearic acid and tributyrate; the needle is seen on the right side image field of view.
- FIG.34 shows a pig muscle post deep injection of the 10% lipid microparticle formulation containing stearic acid and tributyrate.
- FIG. 35 shows a pig muscle prior to shallow injection of the 10% caprylic acid and tristearate formulation; the needle is seen in the right side field of view.
- FIG. 35 shows a pig muscle prior to shallow injection of the 10% caprylic acid and tristearate formulation; the needle is seen in the right side field of view.
- FIG. 36 shows a pig muscle post shallow injection of the 10% caprylic acid and tristearate formulation; the needle is seen in the right side field of view.
- FIG. 37 shows the sciatic nerve in the middle of the field of view, where no drug product has been injected (Dose A Pig 1 baseline).
- FIG. 38 shows the drug product completely engulfing the sciatic nerve and shown to be within the intrafascial space below the bright line midway in the field of view shows a pig muscle (Dose A Pig 1 Complete injection with drug product).
- FIG. 39 shows the sciatic nerve in the middle of the field of view, where no drug product has been injected (Dose A Pig 2).
- FIG. 37 shows the sciatic nerve in the middle of the field of view, where no drug product has been injected (Dose A Pig 2).
- FIG. 40 shows emulsion drug product at the end of the injection procedure.
- the drug product appears as a cloud that has enveloped the sciatic nerve.
- FIG. 41 shows injection of the emulsion drug product mid injection.
- the drug product cloud has begun to spread out in the fascial plane.
- DETAILED DESCRIPTION [062]
- Ranges can be expressed herein as from “about” one particular value, and/or to “about” another particular value. When such a range is expressed, a further aspect includes from the one particular value and/or to the other particular value. Similarly, when values are expressed as approximations, by use of the antecedent “about,” it will be understood that the particular value forms a further aspect. It will be further understood that the endpoints of each of the ranges are significant both in relation to the other endpoint, and independently of the other endpoint.
- Illustrative substituents include, for example, those described below.
- the permissible substituents can be one or more and the same or different for appropriate organic compounds.
- the heteroatoms, such as nitrogen can have hydrogen substituents and/or any permissible substituents of organic compounds described herein which satisfy the valences of the heteroatoms. This disclosure is not intended to be limited in any manner by the permissible substituents of organic compounds.
- substitution or “substituted with” include the implicit proviso that such substitution is in accordance with permitted valence of the substituted atom and the substituent, and that the substitution results in a stable compound, e.g., a compound that does not spontaneously undergo transformation such as by rearrangement, cyclization, elimination, etc. It is also contemplated that, in certain aspects, unless expressly indicated to the contrary, individual substituents can be further optionally substituted (i.e., further substituted or unsubstituted). [065] Certain materials, compounds, compositions, and components disclosed herein can be obtained commercially or readily synthesized using techniques generally known to those of skill in the art.
- the starting materials and reagents used in preparing the disclosed compounds and compositions may be available from commercial suppliers such as Aldrich Chemical Co., (Milwaukee, Wis.), Acros Organics (Morris Plains, N.J.), Fisher Scientific (Pittsburgh, Pa.), or Sigma (St.
- A-D a class of molecules A, B, and C are disclosed as well as a class of molecules D, E, and F and an example of a combination molecule, A-D is disclosed, then even if each is not individually recited each is individually and collectively contemplated meaning combinations, A-E, A-F, B-D, B-E, B-F, C-D, C-E, and C-F are considered disclosed. Likewise, any subset or combination of these is also disclosed. Thus, for example, the sub-group of A-E, B-F, and C-E would be considered disclosed. This concept applies to all aspects of this application including, but not limited to, steps in methods of making and using the compositions of the invention.
- the term “subject” refers to the target of administration, e.g. a subject.
- the subject of the herein disclosed methods can be a vertebrate, such as a mammal, a fish, a bird, a reptile, or an amphibian.
- the subject of the herein disclosed methods can be a human, non-human primate, horse, pig, rabbit, dog, sheep, goat, cow, cat, guinea pig or rodent. The term does not denote a particular age or sex.
- the subject is a mammal.
- a patient refers to a subject afflicted with a disease or disorder.
- the term “patient” includes human and veterinary subjects.
- echogenic composition means a composition that gives rise to reflections of ultrasound waves and is thus detectable using standard ultrasound imaging techniques.
- the terms “treat,” and “prevent” as well as words stemming therefrom, do not necessarily imply 100% or complete treatment or prevention. Rather, there are varying degrees of treatment or prevention of which one of ordinary skill in the art recognizes as having a potential benefit or therapeutic effect.
- the methods of the present invention can provide any amount of any level of treatment or prevention of a disease or medical condition in a mammal.
- the treatment or prevention provided by the method can include treatment or prevention of one or more conditions or symptoms of the disease or medical condition.
- the method in some embodiments, achieves a diminution in or elimination of pain in a subject.
- prevention can encompass delaying the onset of the disease, or a symptom or condition thereof.
- treating includes prophylaxis of the specific disorder or condition, or alleviation of the symptoms associated with a specific disorder or condition and/or preventing or eliminating said symptoms.
- the term “post-operative pain” refers in general to producing a diminution or alleviation of pain associated with recovering from a surgical procedure.
- the term “substantially” refers to the complete or nearly complete extent or degree of an action, characteristic, property, state, structure, item, or result.
- an object that is “substantially” enclosed would mean that the object is either completely enclosed or nearly completely enclosed.
- the exact allowable degree of deviation from absolute completeness may in some cases depend on the specific context. However, generally speaking the nearness of completion will be so as to have the same overall result as if absolute and total completion were obtained.
- a “therapeutically effective amount” refers to an amount that is sufficient to achieve the desired therapeutic result or to have an effect on undesired symptoms but is generally insufficient to cause adverse side effects.
- the specific therapeutically effective dose level for any particular patient will depend upon a variety of factors including the disorder being treated and the severity of the disorder; the specific composition employed; the age, body weight, general health, sex and diet of the patient; the time of administration; the route of administration; the rate of excretion of the specific compound employed; the duration of the treatment; drugs used in combination or coincidental with the specific compound employed and like factors well known in the medical arts.
- the effective daily dose can be divided into multiple doses for purposes of administration. Consequently, single dose compositions can contain such amounts or submultiples thereof to make up the daily dose.
- the dosage can be adjusted by the individual physician in the event of any contraindications. Dosage can vary, and can be administered in one or more dose administrations daily, for one or several days. Guidance can be found in the literature for appropriate dosages for given classes of pharmaceutical products.
- a preparation can be administered in a “prophylactically effective amount”; that is, an amount effective for prevention of a disease or condition.
- Effective dosages may be estimated initially from in vitro assays.
- an initial dosage for use in animals may be formulated to achieve a circulating blood or serum concentration of active compound that is at or above an IC50 of the particular compound as measured in an in vitro assay.
- Calculating dosages to achieve such circulating blood or serum concentrations is well within the capabilities of skilled artisans.
- the reader is referred to Fingl & Woodbury, “General Principles,” In: Goodman and Gilman's The Pharmaceutical Basis of Therapeutics, Chapter 1, pp. 1-46, latest edition, Pergamagon Press, which is hereby incorporated by reference in its entirety, and the references cited therein.
- echogenic compositions for providing controlled and/or sustained release of an active pharmaceutical ingredient (API) in the body of a subject.
- API active pharmaceutical ingredient
- echogenic compositions for the local delivery of an API e.g. an anesthetic agent
- a method for treating pain in a subject comprising administering an echogenic composition to a target site in a subject and confirming delivery of the echogenic composition to the target site with ultrasound.
- the echogenic composition comprises an aqueous carrier and a plurality of lipid microparticles dispersed within the aqueous carrier, wherein the plurality of lipid microparticles comprise an API (e.g., anesthetic agent).
- the aqueous carrier is hydrogel comprised of tyramine substituted hyaluronic acid, wherein the hydrogel is formed through di-tyramine crosslinking and wherein the degree of tyramine substitution of hyaluronic acid hydroxyl groups is about 0.5% to about 3%.
- the volumetric ratio between the aqueous carrier and the lipid microparticles is from about 70-80 the aqueous carrier to about 30-20 lipid microparticles.
- the plurality of lipid microparticles are comprised of a paraffin, a triglyceride, and/or a wax.
- the lipid microparticle is a wax and the wax is a carnauba wax.
- the lipid microparticles comprise a wax or a mixture of a wax and a fatty acid, wherein the fatty acid is C4 or greater.
- the plurality of lipid microparticles comprise stearic acid and tributyrate.
- the stearic acid and tributyrate are present at a ratio of from about 0.1% to about 30%.
- Other possible composition of the lipid microparticle and/or lipid phase are described further below.
- the anesthetic agent is present within the lipid microparticle in a crystalline form.
- the anesthetic agent is dissolved within the lipid microparticle
- echogenic composition comprising an aqueous carrier and a lipid phase dispersed into droplets within the aqueous carrier, and an undissolved crystalline anesthetic agent within the lipid phase.
- the lipid phase is a triglyceride.
- the triglyceride is a liquid at 25°C.
- the lipid phase is not in the form of solid microparticles but in the form of liquid microdroplets and/or emulsified within the aqueous carrier phase.
- the lipid phase droplets are from about 500 nm to about 100 ⁇ m in diameter. In further embodiments, the lipid phase droplets are from about 500 nm to about 5 ⁇ m in diameter. In certain embodiments, lipid phase droplets formed around solid crystalized API are less than about 5 ⁇ m.
- the aqueous phase comprises hyaluronic acid.
- the hyaluronic acid present in an amount from about 0.1% to about 1%.
- the HA in these embodiments may or may not be cross linked to form a hydrogel. In embodiments where no hydrogel is formed, the HA may be unsubstituted (e.g. lack tyramine substitution as described below).
- an echogenic composition for the treatment of pain comprising a continuous aqueous phase comprising an emulsifier and a polyol; a lipid phase comprising a triglyceride, wherein the triglyceride is liquid at 25°C and wherein an undissolved crystalline anesthetic agent within the triglyceride; and wherein the lipid phase is emulsified within the continuous aqueous phase.
- the emulsifier is hyaluronic acid.
- the hyaluronic acid is present in an amount from about 0.15% to about 1%.
- suitable emulsifiers include, but are not limited to phospholipids, and poly sorbates (tween surfactant).
- fatty acid (.1-2%) can function as emulsifier.
- the lipid phase further comprises a phospholipid.
- Phospholipids serve as an additional emulsifier and provide for a stabilized emulsified echogenic composition.
- the phospholipid is present in an amount from about 0.1% to about 2.0% of the lipid phase.
- Exemplary phospholipids include but are not limited to lecithins.
- Suitable lecithins include but are not limited to plant based lecithins such as soybean lecithin, corn germ oil lecithin, rapeseed lecithin including lecithin derived from canola, field mustard and other rape seed variants and hybrids, rice oil lecithin, sunflower lecithin, cotton seed lecithin, peanut lecithin, palm oil lecithin, marine oil lecithin, biomass lecithin, and mixtures thereof. Also suitable are certain animal based lecithins, including but not limited to egg yolk lecithin, and/or milk lecithin and or mixtures thereof. [084] In certain embodiments, the lipid phase further comprises an antioxidant .
- plant based lecithins such as soybean lecithin, corn germ oil lecithin, rapeseed lecithin including lecithin derived from canola, field mustard and other rape seed variants and hybrids, rice oil lecithin, sunflower lecithin
- the antioxidant is present in an amount of from about 0.01% to about 1% (w/v) of the composition.
- Exemplary antioxidants include any suitable lipophilic antioxidant.
- the antioxidant is a tocopherol (e.g. alpha tocopherol)
- Other lipophilic antioxidants e.g. lycopene and beta carotene
- the lipid phase is from about 10% to about 40% (w/v) of the composition.
- the polyol is glycerol.
- glycerol is present in an amount of from about 0.25 to about 2.25% (w/v) of the composition.
- the compositions and methods herein may eliminate the need for perioperative opioid use in select patients.
- the disclosed echogenic compositions have unique characteristics over known anesthetic preparations. In various embodiments, the disclosed echogenic compositions demonstrate echogenicity with injection. In further embodiments, the disclosed echogenic compositions demonstrate no significant tissue spread once delivered to the target site when compared to other aqueous local anesthetic preparations. The ultrasound characteristics of aqueous local anesthetics show a non-echogenic deposit of medicant with significant tissue migration. Injection of the disclosed echogenic compositions results in an echogenic pocket of medicant that remains at the site of injection without appreciable tissue spread (FIGS. 1A and 1B).
- the disclosed echogenic compositions allow for precise, non-migrating administration of a local anesthetic drug matrix which, in these embodiments, may benefit in certain non-planar peripheral nerve blocks (such as sciatic, femoral, and brachial plexus) which in the case of the upper extremity could reduce the incidence of phrenic nerve blockade.
- non-planar peripheral nerve blocks such as sciatic, femoral, and brachial plexus
- localized, non-migrating anesthetic delivery may allow for more precise and prolonged analgesia with lower drug volumes.
- the disclosed echogenic compositions have echogenic properties that aid in confirming placement of medication during regional anesthetic techniques.
- disclosed echogenic compositions enables clinicians to be more precise when depositing local anesthetic and positively identify placement of medicant for procedural confirmation.
- medication remains where it was placed—utilizing less medication with a pain relieving effect of up to 6 days or more.
- the disclosed echogenic compositions may be used to deliver other medications under ultrasound guidance (anti-inflammatory, chemotherapeutics, and antibiotics). In such cases, the echogenic property would aid in precise medication administration for proceduralists and anesthesiologists looking to positively identify the site of injection with a high degree of sensitivity.
- the disclosed echogenic composition comprises a aqueous phase (also sometimes referred to as “carrier phase”) and a lipid phase that contains an active pharmaceutical ingredient (API) that is released to a biological system over a targeted treatment duration and allows for verification of proper target placement through ultrasound imaging.
- a aqueous phase also sometimes referred to as “carrier phase”
- a lipid phase that contains an active pharmaceutical ingredient (API) that is released to a biological system over a targeted treatment duration and allows for verification of proper target placement through ultrasound imaging.
- the primary function of the carrier phase is to disperse the drug reservoir particles (drug carrying component) to create a stable homogenous mass and allow the use of delivery devices, such as a syringe, to draw up a dose from a container and deliver it to a target tissue, i.e.
- the drug reservoir/lipid phase is a separate physical phase, a collection of particles in some embodiments, that are contained within the carrier phase but not indistinguishable from the carrier phase.
- the lipid phase contains the active pharmaceutical agent dissolved in the lipid material and may be in an unsaturated, saturated, super saturated, or saturated with pure pharmaceutical phase material (crystals for small molecules) state.
- the carrier may also contain the contain the API in a different form than the reservoir, such as an API salt in an aqueous carrier and the base form API in a lipid phase.
- the system is not set to be only aqueous/hydrophobic, but can be opposite, or separate physical phase (polymer).
- the aqueous phase is a hydrogel.
- the term “hydrogel” as used herein refers to a three-dimensional, hydrophilic or amphiphilic polymeric network capable of taking up large quantities of water.
- the networks are composed of homopolymers or copolymers (referred to at times herein as a polymer backbone) and are insoluble due to the presence of covalent chemical or physical (ionic, hydrophobic interactions, entanglements) crosslinks.
- the crosslinks provide the network structure and physical integrity. Hydrogels exhibit a thermodynamic compatibility with water that allow them to swell in aqueous media.
- the hydrogel is comprised of tyramine substituted hyaluronic acid (THA) which is cross linked through di-tyramine linkages.
- THA tyramine substituted hyaluronic acid
- Preparation of THA is described U.S. Patent No. 6,982,298, which is incorporated herein by reference in its entirety.
- the degree of tyramine substitution has a significant impact on the properties of the resulting hydrogel. Throughout the instant disclosure, degree of tyramine substitution refers to the percentage of all HA carboxyl groups that have been substituted by tyramine. For example, in a 2% substituted THA, 2 % of all HA carboxyl groups have been substituted by tyramine.
- the percent tyramine substitution within each THA preparation is calculated by measuring: 1) the concentration of tyramine present in the preparation, which is quantitated spectrophotometrically based on the unique UV-absorbance properties of tyramine at 275 nm; and 2) the concentration of total carboxyl groups in the HA preparation, which is quantitated spectrophotometrically by a standard hexuronic acid assay.
- hydrogel can be tuned to possess a specific osmolality, physical property, API elution rate or tissue response by adjusting the concentration of the tyramine substituted polymer backbone, the degree of substitution of the tyramine on the polymer backbone, the molecular weight of polymer backbone, the hydrophilicity of the polymer backbone, the type of polymer backbone and concentration of target molecules, salts, buffers or drug depot (reservoir) particles contained within the hydrogel.
- the hydrogel physical properties can be adjusted by changing the concentration of tyramine substituted polymer backbone.
- liquid-like hydrogels are created by keeping the tyramine substituted polymer backbone less than 0.35% of the aqueous carrier phase for a 1.5% substituted gel.
- Liquid-like hydrogels are more appropriate for intravascular injection, intrathecal injection or other tissue sites that cannot tolerate occlusion or blocking vessels or tissue structures.
- Dense hydrogel particles can be formed by increasing tyramine substitution on the polymer backbone. 5% or higher degrees of substitution will form solid like hydrogel particles at low concentrations and very dense particles at 7% or higher concentrations. Dense particles are more appropriate for instillation into wound sites.
- dense hydrogel particles are used deliver biological molecules and polar APIs.
- the hydrogel physical property can also be adjusted by changing the type of polymer backbone.
- collagen can be used as a polymer backbone, and it is much less hydrophilic than a saccharide-based polymer backbone.
- the collagen gels do not swell in the same way that polysaccharide gels and have much lower molecular weights and concentrations.
- the polymer backbone can be changed to take advantage of a single polymers physical & chemical characteristics, or several species can be combined in a copolymer or block copolymer in a way that will change the gel physical and chemical properties, the way in which the body interacts with the gel.
- API diffusion rate is affected by changing the melting point of the lipid microparticles (described further below) as enhanced diffusion can be reached as the liquid-liquid interface (achieved upon melting of the lipid microparticle) diffusion flux is higher than solid to liquid interface.
- the hydrogel osmolality can also be tuned by the degree of tyramine substitution, and concentration. Concentrated highly substituted hydrogels by themselves will expel water or undergo syneresis, but by increasing the concentration of the polymer backbone in the example of hyaluronic acid, or adding salts, buffers and/or API materials to the formulation the gel can be made to be osmotically neutral or swell slightly. For example, a 5.5% substituted gel can be created that will swell if the backbone polymer concentration is set to 1.5%. It is envisioned that a gel can be created to swell even more as the osmolality of the gel is increased by adding buffers, salts and API ingredients.
- the hydrogel is comprised of tyramine substituted hyaluronic acid.
- the hydrogel is formed through di-tyramine crosslinking.
- Tissues which may be harmed from reduced perfusion such as cartilage or joint spaces can have a hydrogel tuned to be osmotically neutral to prevent negative impacts due to reduced perfusion.
- a hydrogel tuned to be osmotically neutral to prevent negative impacts due to reduced perfusion.
- procoagulants such as fibrin, tranexamic acid, aminocaproic acid or fibrin, etc.
- the hydrogel can promote coagulation at the wound site via two pathways, capillary bed constriction and blood coagulation.
- Hydrogel density can be used to control rate of elution of an API from the gel to the target tissue.
- the degree of tyramine substitution of hyaluronic acid hydroxyl groups ranges from about 0.25% to about 8%. In further aspects, the degree of tyramine substitution of hyaluronic acid hydroxyl groups is about .5% to about 3%.
- the tyramine substituted hyaluronic acid is present in the aqueous phase at from about 0.1 % to about 4%.
- the tyramine substituted hyaluronic acid is present in the aqueous phase from about 0.1 to about 1%.
- the tyramine substituted hyaluronic acid is present in the aqueous phase at about 0.25%.
- the carrier phase is an aqueous carrier phase that is not a hydrogel.
- the aqueous carrier phase comprises hyaluronic acid (e.g.
- the lipid phase is present in the form of lipid microparticles dispersed within the aqueous phase. In further embodiments, the lipid phase is liquid at room temperature/body temperature and the microdroplets a dispersed throughout the aqueous phase or emulsified into the aqueous phase. [0107] According to certain embodiments, lipid phase of the disclosed echogenic composition is comprised of one or more fatty acids.
- the one or more fatty acids have an even number of carbons.
- the fatty acids are chosen from: stearic acid, oleic acid, myristic acid, caprylic acid, capric acid, lauric acid, palmitic acid, arachidic acid, lignoceric acid, cerotic acid, and mixtures of the forgoing.
- the fatty acid microparticles are comprised of mixtures of fatty acids
- the fatty acids are present at specific ratios.
- the mixture of fatty acids comprises a 90:10 ratio of steric to oleic acid.
- Fatty acids of various carbon lengths are common throughout the living world and are utilized by animals as part of the cell membrane, as energy storage and for thermal regulation.
- Fatty acids are comprised of carboxylic acid attached to an aliphatic carbon chain. In general, they are insoluble in water but as the carbon chain length shortens, their acidity increases.
- Fatty acids can be saturated or contain no carbon-carbon double bonds. Or they may be unsaturated, containing one or more carbon-carbon double bonds in the aliphatic carbon chain. Mammalian organisms can process and create fatty acids with even numbered carbon chains.
- Odd numbered fatty acids are produced by some bacteria and are found in the milk of ruminants, but in most cases, they are even numbered due to the metabolic process that adds two carbons at a time to the chain.
- Table 1 lists fatty acids typically found in plant and animals. The lipid number lists the number of carbons in the aliphatic chain followed by the number of double bonds. In some listings, the location of the double bond is included with the lipid number. In most cases the fatty acids are usually part of a triglyceride molecule that may contain up to three fatty acids of the same or differing carbon lengths. [0110] In certain implementations, even numbered carbon fatty acids are selected. Mixtures of fatty acids can be made to adjust the melting point of the microparticles.
- a mixture of 90% stearic acid with 10% oleic acid is used. This creates a microparticle that melts at 95°F. A similar melting point is achieved by mixing 12 % myristic acid 32% palmitic acid, 10% stearic acid, and 10% oleic acid.
- the FA microparticle is formed from a mixture of lauric acid, caprylic acid, and caproic acid.
- the key factors in choosing a microparticle formulation are melting point and API solubility in main component fatty acid. The melting point is important in that particles close to physiological body temperature will be a liquid or soft semi-solid which will increase diffusion rate across a liquid – liquid interface. This may be desirable or not desirable depending on the specific application.
- a combination of low melting point and high melting microparticles are combined.
- API solubility will change due to fatty acid chain length and microparticle formulation and it may be desirable to adjust API concentration and affinity for the main microparticle fatty acid component. In some formulations increasing molecular weight and chain length of the fatty acid will change solubility of a partially polar API counterintuitively.
- the concentration of anesthetic agent within a FA microparticle is from about 1-25% by weight.
- odd numbered fatty acids are used as an alternative fatty acid in the formulations.
- Monounsaturated fatty acids such as oleic acid may be used as well alone or in combination with other fatty acids.
- poly unsaturated fatty acids can be used, but are not preferable as they oxidize easily and depending on the formulation may polymerize.
- Monounsaturated fatty acids that are in a cis configuration (most plant sourced) are preferable.
- the lipid microparticles comprise one or more triglyceride or a mixture of triglycerides the lipid microparticles comprise one or more triglyceride or a mixture of triglycerides.
- the lipid microparticle comprises a paraffin and/or a wax. Table 1. List of Fatty Acids and Corresponding Lipid Numbers.
- polyunsaturated fatty acids are used to create the microparticles either alone or in mixtures of other fatty acids.
- Polyunsaturated fats typically have a lower melting point than do their equivalent carbon number saturated fatty acid analogues. Examples of two essential fatty acids are Linoleic acid (C18:2) and ⁇ -Linoleic acid (C18:3).
- Linoleic acid C18:2
- ⁇ -Linoleic acid C18:3
- the human body cannot make these fatty acids but requires them and must obtain them through dietary intake. The body can metabolize them so they can be used to generate microparticle drug reservoirs, but they have multiple double bonds which oxidize easily and may react with some APIs.
- Table 3 Omega-3 Fatty Acids
- the lipid phase drug reservoir microparticles may also be created from animal ester waxes such as bees wax, vegetable waxes, lanolin, and derivatives. Animal ester waxes typically contain triacontanyl palitate and mixtures of palmitate, palmitoleate, oleate esters, triglycerides and aliphatic alcohols.
- Additives such as cholesterol, tryglycerides and aliphatic alcohols may be added to change the physical properties of the lipid phase, solubility and affinity of the API to the lipid phase and act as a carrier molecule to help the API diffuse out the lipid phase.
- Mineral waxes, mineral oils and lanolin derivatives may be added to change physical and chemical properties of the lipid phase.
- Plant sourced waxes can also be used to create the lipid phase. Plant waxes provide an advantage over animal waxes in being easier to control environmental conditions and the same organism (palm or plant) lead to lower batch-to-batch variability. Suitable animal and plant waxes are shown in Table 8.
- the lipid phase is comprised of a carnauba wax.
- the fatty acid microparticle is comprised of a combination of carnauba wax and a fatty acid.
- the addition of fatty acids has the effect of thinning the carnauba in embodiments where a non-solid lipid phase is desirable.
- the mixture is of carnauba wax and oleic acid, caproic acid, caprylic acid, and/or mixtures of the foregoing. Table 6. Examples of Melting points of fatty acids Table 7. Example of lowering melting temperature of a stearic acid oleic acid mixture Table 2.
- Triglycerides are an alternative to pure fatty acids. They have similar physical properties to the pure counterpart and similar solubility of anesthetics.
- Triglycerides are better tolerated as they are found throughout the body and there are metabolic pathways to absorb and metabolize the lipid.
- Table 9 lists triglycerides that can be substituted for fatty acids as a lipid drug reservoir particle. In general, even number fatty acid components are selected because the even number fatty acids are more present in tissues. There are some odd number fatty acid triglycerides that are utilized in the body such as triheptanoin found in milk, which are also suitable. Unsaturated fatty acid based triglycerides such as triolein can be used to soften lipid particles or create emulsion droplets if a multiphase formulation is desired.
- Unsaturated triglycerides are found throughout the body such as tripalmitolein a main component of mammalian fat. Utilizing triglycerides already found in the body increases tolerability and/or reduces likelihood of adverse reactions. In certain embodiments, the concentration of anesthetic agent within a triglyceride microparticle is from about 1-to about 25% by weight. Table 3. Triglycerides
- the disclosed echogenic composition contains a plurality of lipid microparticles with varying characteristics in terms of lipid compositions, size, and/or API concentration.
- mixtures of lipid microparticles are used to improve the elution rate of the drug and tune the elution to produce a steady first order release from the particles. Adjusting the particle volume to carrier phase volume ratio will extend the release duration of the API.
- the lipid microparticle is not a liposome.
- the lipid microparticle is formulated so as to be solid upon being implanted into a subject (e.g.
- the lipid microparticle is formulated so as to be a liquid upon being implanted into a subject, with the effect being that elution rate from such liquid microparticles would increases relative to a solid microparticle with a similar concentration of anesthetic.
- the composition comprises both of the foregoing microparticles so that some microparticles will remain solid and some will become liquid upon implantation into the subject. The relative balance of the two types of microparticles can be adjusted to achieve the desired elution characteristics.
- the size of the lipid microparticle ranges in size from about 1 ⁇ m to about 20 ⁇ m, in certain implementations.
- the lipid microparticle ranges in size from about 5 ⁇ m to about 15 ⁇ m. In certain exemplary embodiments, the lipid microparticle is about 7 ⁇ m.
- elution properties of the disclosed echogenic composition are affected by the volumetric ratio of the aqueous phase to the lipid phase in the composition. According to certain embodiments, the ratio of aqueous to lipid phase is about 50%-80% aqueous phase volume to about 20%-50% lipid phase volume. According to further embodiments, the ratio of aqueous to lipid phase is about 60%-80% aqueous phase volume to about 20%-40% lipid phase volume.
- the ratio of aqueous to lipid phase is about 70% aqueous phase volume to about 30% lipid phase volume.
- the echogenic composition comprises two or more lipid phases within the aqueous carrier phase.
- distributed within the aqueous phase are lipid microparticle phase, as described previously, and a secondary lipid phase which may take to form of an emulsion within the aqueous phase or a plurality of lipid microparticles from which the API elutes at a faster rate than the primary lipid microparticle phase.
- the purpose of the aqueous phase is to carry the microparticles and secondary lipid phase and keep these components homogenous throughout the formulation.
- the salt form of the anesthetic delivers an upfront burst of drug that matches a similar dose of the saline form of the anesthetic.
- the primary lipid phase, or drug reservoir microparticle contains the largest amount of anesthetic in base form and will elute the drug component into the aqueous phase slowly after the upfront burst has eluted from the drug product and into the surrounding tissue. There is a mass transfer limitation due to the solubility of the base form in the aqueous carrier phase and the hydrophilic lipophilic balance (HLB) ratio of the microparticles.
- HLB hydrophilic lipophilic balance
- the base form has a higher affinity for the lipid phase and the lipid phase will always have some anesthetic present after the elution is complete due to the affinity of the drug for the lipid phase.
- the secondary lipid phase, or emulsion phase (in some formulations this may be a second type of solid particle), delivers anesthetic at a faster rate than the solid phase microparticles and together they raise the elution rate in the intermediate phase. Once the targeted duration has been met, the elution rate decreases to zero and is below the pharmaceutically effective dose.
- the composition includes and emulsion phase as described above, but without the plurality of solid microparticles.
- Suitable lipids for the secondary lipid emulsion phase are any lipid or mixture of lipids that are liquid at 37°. Examples include, but are not limited to stearic acid, oleic acid, caprylic acid, capric acid, lauric acid, palmitic acid, arachidic acid, lignoceric acid, cerotic acid. In certain embodiments, a mixture of stearic acid and oleic acid are the lipids in the lipid emulsion phase. In further embodiments, triglycerides (e.g. trioleate or tripalmitin and trioleate) form the secondary lipid emulsion phase. According to certain embodiments, an emulsifier is used to stabilize the emulsion.
- a mixture of stearic acid and oleic acid are the lipids in the lipid emulsion phase.
- triglycerides e.g. trioleate or tripalmitin and trioleate
- an emulsifier is used to stabilize
- Emulsifiers such as TWEEN or other emulsifiers known in the art are suitable.
- anesthetic elution properties of the disclosed composition are affected by the volumetric ratio the two or more lipid phases.
- the ratio of solid microparticle lipid phase to the emulsion lipid phase is about 50%-75% solid phase volume to about 25%-50% emulsion phase volume.
- the ratio of solid microparticle lipid phase to the emulsion lipid phase is about 66% solid phase volume to about 34% emulsion phase volume.
- lipid microparticles are generated by agitating a solution of fatty acid phase containing API in a much larger volume of aqueous phase.
- the preferred ratio of aqueous to lipid phase is 95%-99.5% aqueous phase to 0.5%-5% lipid phase. It is preferred that the aqueous phase be saturated with the API that is present in the lipid phase.
- a salt in >25mmol concentration is present in the aqueous phase preferably between 25 and 150 mmol, more preferred to be between 45 and 65 mmol.
- Tyramine substituted hyaluronic acid is present in the aqueous phase at 0.1 % to 4% preferably between 0.1 to 1% and specifically at 0.25% concentration.
- the two-phase mixture is agitated and cooled until microparticles are generated.
- the particles are concentrated using a centrifuge, filter or settling tank and the aqueous phase decanted leaving the microparticles behind.
- Additional aqueous phase containing tyramine substituted hyaluronic acid and horse radish peroxidase is added to the free microparticles and the particles are suspended in the solution at a volume ratio of 30% lipid phase to 70% aqueous phase.
- a hydrogel is formed with the addition of hydrogen peroxide.
- formulations with two or more lipid phases e.g. lipid microparticle and emulsion
- the formulation can be prepared as in the preceding paragraph except that prior to the addition of microparticles to the aqueous phase, anesthetic dissolved in a liquid lipid phase (in certain embodiments a mixture of stearic acid and oleic acid) and mixed vigorously with the aqueous phase until an emulsion is formed. Following the formation of the emulation, the lipid microparticles are added as described previously.
- the zeta potential is increased by adding the salt (e.g., NaCl) to the aqueous phase, causing the surface charge to increase and cause the particles to repel each other allowing smaller diameter particles to form and preventing coalescing particles from forming larger particles prior to solidification.
- the hydrogel comprises between 10 mM and about 70 mM salt.
- salt concentration is between about 25 mM and about 50 mM salt.
- the hydrogel comprises at least about 50 mM salt.
- the salt is NaCl. As will be appreciated by those skilled in the art, other salts are possible.
- the anesthetic agent comprises Ropivacaine.
- the ropivacaine is present in the lipid microparticles in an amount of from about 1 to about 25%.
- the lipid microparticles are comprised of triglycerides.
- anesthetic unbound by the plurality of lipid microparticles is dispersed throughout the hydrogel.
- the API dispersed throughout the hydrogel provides for an immediate burst dose, while the API bound in the lipid microparticles provides for extended sustained release.
- the composition further comprises a radiopaque contrast agent.
- the immiscible carrier phase is a hydrogel, a viscous liquid, a stable emulsion, or a cream.
- the immiscible carrier phase is a hydrogel (e.g., a hydrogel comprised of tyramine substituted hyaluronic acid).
- the anesthetic is selected from: ambucaine, amolanone, amylcaine, benoxinate, benzocaine, betoxycaine, biphenamine, bupivacaine, butacaine, butamben, butanilicaine, butethamine, butoxycaine, carticaine, chloroprocaine, cocaethylene, cocaine, cyclomethycaine, dibucaine, dimethisoquin, dimethocaine, diperodon, dyclonine, ecogonidine, ecogonine, euprocin, fenalcomine, formocaine, hexylcaine, hydroxyteteracaine, isobutyl p-aminobenzoate, leucinocaine, levoxadrol, lidocaine, mepivacaine, meprylcaine, metabutoxycaine, methyl chloride, myrtecaine, naepaine, octacaine, orthoca
- the anesthetic is Ropivacaine. In certain alternative embodiments the anesthetic in bupivacaine.
- the echogenic composition is administered to the subject and is delivered near a never or nerve bundle of a subject. Ultrasound is then used confirm proximity to the nerve bundle of the subject. In exemplary embodiments, the nerve or nerve bundle innervates the surgical incision area of the subject.
- the composition may be delivered by way of a syringe or hypodermic needle, other delivery methods known in the art.
- the administration of the composition as described herein provides pain relief for about 72 hours or more.
- the disclosed echogenic composition may comprise a chemotherapeutic agent and the composition is delivered to a site near a tumor. Ultrasound is then used to confirm proximity of the composition to the tumor.
- the disclosed methods are used to treat any disease or condition for which being able to determine the localization of API targeted delivery is useful.
- kits of pharmaceutical formulations containing the disclosed compounds or compositions. The kits may be organized to indicate a single formulation or combination of formulations. The composition may be sub-divided to contain appropriate quantities of the compound. The unit dosage can be packaged compositions such as packeted powders, vials, ampoules, prefilled syringes or sachets containing liquids.
- the compound or composition described herein may be a single dose or for continuous or periodic discontinuous administration.
- a kit may include the compound in each dosage unit.
- the kit may include placebos during periods when the compound is not delivered.
- a kit may contain a sequence of dosage units.
- the kit may contain packaging or a container with the compound formulated for the desired delivery route.
- the kit may also contain dosing instructions, an insert regarding the compound, instructions for monitoring circulating levels of the compound, or combinations thereof.
- kits are packaged in a manner suitable for treatment of a desired indication.
- suitable components to include in such kits will be readily apparent to one of skill in the art, taking into consideration the desired indication and the delivery route.
- the kits also may include, or be packaged with, instruments for assisting with the injection/administration or placement of the compound within the body of the subject.
- instruments include, without limitation, syringe, pipette, forceps, measuring spoon, eye dropper or any such medically approved delivery means.
- Other instrumentation may include a device that permits reading or monitoring reactions in vitro.
- kits also may be provided in dried, lyophilized, or liquid forms.
- reagents or components are provided as a dried form, reconstitution generally is by the addition of a solvent.
- the solvent may be provided in another packaging means and may be selected by one skilled in the art.
- a number of packages or kits are known to those skilled in the art for dispensing pharmaceutical agents.
- the package is a labeled blister package, dial dispenser package, or bottle.
- EXPERIMENTAL [0143] The following examples are put forth so as to provide those of ordinary skill in the art with a complete disclosure and description of how the compounds, compositions, articles, devices and/or methods claimed herein are made and evaluated and are intended to be purely exemplary of the invention and are not intended to limit the scope of what the inventors regard as their invention. However, those of skill in the art should, in light of the present disclosure, appreciate that many changes can be made in the specific embodiments which are disclosed and still obtain a like or similar result without departing from the spirit and scope of the invention.
- EXAMPLE 1 [0144] In this study, the ultrasonographic characteristics of INSB200 were tested and the results compared the results of commonly used aqueous phase local anesthetic preparations.
- Test Article A test article was created by adding 1% by weight hyaluronic acid in a water solution. This solution was injected as a shallow implant and also as a deeper injection. As shown in FIGS. 3-6 the control article has no echopacity relative to the surrounding muscle tissue. In FIG.2 the injected solution cannot be differentiated from surrounding tissue. In FIG. 4 there is no noticeable differentiation between the control article and the surrounding tissue.
- the control article is similar to aqueous solutions of analgesic formulations.
- Injection depth in the muscle did not affect echopacity of the control test article.
- 0.5% Lipid Microparticle Dilute solutions containing lipid microparticles of biowax (carnauba wax) were prepared by adding 0.5% by volume of a carnauba wax microparticle in a 1% hyaluronic acid solution. Microparticle concentration can be adjusted to adjust the degree of echopacity. Shallow and deep injections were performed to determine if echopacity changes with distance from the probe. The test article did not create an image that could be differentiated from surrounding tissue. FIGS. 7 and 8 show the shallow injections and FIGS. 9 and 10 show the deeper injections. In FIG. 8 the test article showed no echopacity at the needle tip. In FIG.
- Injection depth does affect echopacity for the 1% lipid microparticle formulation.
- 10% lipid microparticle [0151] Dilute solutions containing lipid microparticles of biowax (carnauba wax) were prepared by adding 10.0% by volume of a carnauba wax microparticle in a 1% hyaluronic acid solution. The microparticle particle size distribution was 500 nm to about 100 ⁇ m in diameter. Microparticle concentration can be adjusted to adjust the degree of echopacity. Shallow and deep injections were performed to determine if echopacity changes with distance from the probe. The test article created a cloud image. FIGS. 15 and 16 show the shallow injections and FIGS. 17 and 18 show the deeper injections. In FIG. 16, the test article cloud begins to obscure and hide the needle.
- the test article cloud is fainter and less differentiated from surrounding tissue with the deeper injections. In FIG. 18 the test article forms a distinct cloud image significantly brighter than the surrounding tissue. Injection depth does affect echopacity for the 10% lipid microparticle formulation.
- the test article has a bright proximal surface that creates a shadow distal to the probe.
- 30% lipid microparticle [0152] Dilute solutions containing lipid microparticles of biowax (carnauba wax) were prepared by adding 30.0% by volume of a carnauba wax microparticle in a 1% hyaluronic acid solution. The microparticle particle size distribution was 500 nm to about 100 ⁇ m in diameter. Microparticle concentration can be adjusted to adjust the degree of echopacity.
- FIGS. 19 and 20 show the shallow injections and FIGS. 21 and 22 show the deeper injections.
- FIG.20 the test article produced bright top surface reflectance with shadowing and faint reflectance below; muscle fascial plane is obscured below the test article.
- FIG. 22 the test article cloud is present in the center of the image, bright reflectance occurs but still allows deeper tissue imaging.
- the test article cloud is fainter and less differentiated from surrounding tissue with the deeper injection. Injection depth does affect echopacity for the 30% lipid microparticle formulation.
- the test article has a bright proximal surface that creates a shadow distant to the probe.
- the microparticle particle size distribution was about 500 nm to about 100 ⁇ m in diameter. Microparticle concentration can be adjusted to adjust the degree of echopacity. Shallow and deep injections were performed to determine if echopacity changes with distance from the probe.
- the test article created a bright cloud image.
- FIGS. 23 and 24 show the shallow injections and FIGS. 25 and 26 show the deeper injections.
- FIG. 24 the test article is seen on top of the needle and tip; the test article is less visible in shallow depth with this formulation.
- FIG.26 the test article produces a cloud with bright high reflectance surface and a track to the needle tip, as shown in the center of the image. The test article clouds are bright with higher reflectance.
- Injection depth does not appear to affect echopacity for the 10% lipid microparticle homogenized formulation.
- the test article has a bright proximal surface that creates a shadow distant to the probe. In the deep injection the distal tissue images were still visible even with a bright reflectance at the test article proximal surface. The better distribution of the small particles and addition of solid phase API crystals in the lipid phase create a more echogenic drug product.
- lipid microparticle containing stearic acid and tributyrate Dilute solutions containing lipid microparticles of fatty acids and triglycerides were prepared by adding 30.0% by volume of a stearic acid/tributyrate (10% tributyrate) microparticle in a 1% hyaluronic acid carrier solution.
- the microparticle particle size distribution was about 500 nm to about 100 ⁇ m in diameter.
- Microparticle concentration can be changed to adjust the degree of echopacity.
- Shallow and deep injections were performed to determine if echopacity changes with distance from the probe.
- the test article created a bright cloud image.
- FIGS. 27 and 28 show the shallow injections and FIGS. 29 and 30 show the deeper injections. In FIG.
- FIG. 30 shows a test article that produced a bright reflectance on the proximal side and occludes the tissue features below the test article.
- the test article cloud is bright and clearly visible. Injection depth does affect echopacity for the 30% lipid microparticle formulation.
- the test article has a bright proximal surface that creates a shadow distant to the probe. In the deep injection the distal tissue images were still visible even with a bright reflectance at the test article proximal surface.
- 10% lipid microparticle containing stearic acid and tributyrate [0154]
- FIGS. 31 and 32 show the shallow injections and FIGS. 33 and 34 show the deeper injections. In FIG.
- FIG. 32 the test article is clearly visible in the center of the field of view.
- the test article could obscured the tissue features below.
- 10% loading of microparticles produces a bright visible cloud in the shallow injection shown in FIG. 32.
- FIG. 31 shows the tissue prior to injection.
- FIG.33 shows tissue prior to injection and the needle can be seen entering the right side of the image.
- FIG. 34 shows the test article produces a bright cloud at deep injection.
- 10% lipid microparticle loading does produce desired visibility of the test article.
- FIGS. 35 and 36 show the shallow injection. The test article can be seen at the tip of the needle. Changing the composition to caprylic acid in a tristearate base still produces a bright image.
- Sterile filter water using 0.2 ⁇ m vacuum filter Create a 0.15% sodium hyaluronate solution by weight, combine the following in a clean glass beaker: (a) 100mL sterile water and (b) 0.15g sodium hyaluronate. Seal glass beaker and allow the sodium hyaluronate solution to sit overnight in the fridge (2-8°C).
- the resulting liquid was sterile filtered through a 0.2 micron filter to sterilize the solution and transferred into a sterile vessel with a sterilized mixer and condenser connected to a vacuum. Moderate vacuum was applied to the vessel and the liquid bought to a boil while mixing vigorously. Crystals began to form. The crystallization of the ropivacaine in the soy oil phase was continued until there was no more acetone condensing in the condenser. Sterile nitrogen gas was bubbled through the soy oil and ropivacaine crystal slurry to strip the acetone from the soy oil until no more acetone is removed. 0.51 g of glycerol was added to the hyaluronic acid solution and mixed until the liquid was homogenous.
- the solution was sterile filtered the solution and transferred to the vessel containing the soy oil, lecithin and ropivacaine base solution.
- the two phases in the main mixing vessel were homogenized until there is a stable emulsion containing ropivacaine base crystals.
- FIG. 37 shows the pig sciatic nerve prior to injection.
- FIG. 38 shows the sciatic nerve completely covered by the drug product after injection. Injection was started distally to the ultrasound probe and finished proximal to the probe on subsequent injections. In FIG. 38 the drug product is shown within the intrafascial space below the bright line midway in the field of view. Physicians can now visualize the drug product and ensure that they are targeting the correct nerve.
- FIG. 39 shows a second pig’s sciatic nerve prior to injection.
- FIGS. 40 and 41 show mid injection ( FIG. 42) and final placement of drug product in the fascial plane next to and enveloping the sciatic nerve (FIG. 41).
- An echogenic formulation that comprises a 3-phase stabile emulsion can be injected through a 4 inch long 21 G needle attached to an 18-inch long luer lock pig tail tubing using a 20 mL syringe.
- the formulation may consist of 0-1.0% hyaluronic acid (sodium hyaluronate, hyaluronan); 0-2.25% glycerol; 0-2.5% soy or egg lecithin; 0-60% soy oil; 0-30% mixed triglycerides; 40-280 mg ropivacaine base/g soy oil; and water.
- hyaluronic acid sodium hyaluronate, hyaluronan
- 02.25% glycerol 0-2.5% soy or egg lecithin
- soy oil 0-30% mixed triglycerides
- 40-280 mg ropivacaine base/g soy oil and water.
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- Nuclear Medicine, Radiotherapy & Molecular Imaging (AREA)
- Engineering & Computer Science (AREA)
- Dispersion Chemistry (AREA)
- Organic Chemistry (AREA)
- Oil, Petroleum & Natural Gas (AREA)
- Inorganic Chemistry (AREA)
- Radiology & Medical Imaging (AREA)
- Surgery (AREA)
- Pathology (AREA)
- Hematology (AREA)
- Heart & Thoracic Surgery (AREA)
- Biomedical Technology (AREA)
- Medical Informatics (AREA)
- Physics & Mathematics (AREA)
- Pharmaceuticals Containing Other Organic And Inorganic Compounds (AREA)
- Medicinal Preparation (AREA)
- Medicines That Contain Protein Lipid Enzymes And Other Medicines (AREA)
- Acyclic And Carbocyclic Compounds In Medicinal Compositions (AREA)
Abstract
Description
Claims
Priority Applications (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CA3234806A CA3234806A1 (en) | 2021-10-13 | 2022-10-13 | Echogenic compositions and methods of use thereof for the treatment of pain |
| JP2024522213A JP2024536494A (en) | 2021-10-13 | 2022-10-13 | Echogenic Compositions and Methods of Use Thereof for the Treatment of Pain - Patent application |
| EP22881803.5A EP4415770A4 (en) | 2021-10-13 | 2022-10-13 | ECHOGENIC COMPOSITIONS AND METHOD FOR USE THEM FOR THE TREATMENT OF PAIN |
| CN202280080742.2A CN118450912A (en) | 2021-10-13 | 2022-10-13 | Echogenic compositions for treating pain and methods of use thereof |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US202163255335P | 2021-10-13 | 2021-10-13 | |
| US63/255,335 | 2021-10-13 |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| WO2023064506A1 true WO2023064506A1 (en) | 2023-04-20 |
Family
ID=85798623
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2022/046624 Ceased WO2023064506A1 (en) | 2021-10-13 | 2022-10-13 | Echogenic compositions and methods of use thereof for the treatment of pain |
Country Status (6)
| Country | Link |
|---|---|
| US (1) | US20230110223A1 (en) |
| EP (1) | EP4415770A4 (en) |
| JP (1) | JP2024536494A (en) |
| CN (1) | CN118450912A (en) |
| CA (1) | CA3234806A1 (en) |
| WO (1) | WO2023064506A1 (en) |
Families Citing this family (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2025506168A (en) * | 2022-02-11 | 2025-03-07 | インシツ バイオロジクス、インク. | Sustained release cancer treatment formulations |
Citations (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US6552191B1 (en) * | 2000-09-18 | 2003-04-22 | Wex Medical Instrumentation Co., Ltd. | Method of extracting tetrodotoxin |
| US20040161384A1 (en) * | 2002-04-01 | 2004-08-19 | Wheatley Margaret A. | Echogenic polymer microcapsules and nanocapsules and methods for production and use thereof |
| US20170049993A1 (en) * | 2012-08-14 | 2017-02-23 | Cosman Medical Inc. | Echogenic probe |
| US20190175495A1 (en) * | 2016-05-12 | 2019-06-13 | Insitu Biologics, Inc. | Hydrogel-based biological delivery vehicle |
| US20200179697A1 (en) * | 2018-12-07 | 2020-06-11 | Avent, Inc. | Device and method to selectively and reversibly modulate a nervous system structure to inhibit pain |
| US20210186889A1 (en) * | 2018-03-23 | 2021-06-24 | Eneapharm | Intestinal-release formulation of a digestive enzyme, method of production and galenic preparation |
Family Cites Families (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| ES3030273T3 (en) * | 2015-10-08 | 2025-06-27 | Childrens Medical Ct Corp | Compositions and compositions for use in on-demand high-efficiency triggerable anesthesia |
| CN112118828A (en) * | 2018-03-15 | 2020-12-22 | 图拉维治疗股份有限公司 | Systems and methods for gel-based neuromodulation |
| EP4027988A4 (en) * | 2019-09-13 | 2023-09-13 | University of Utah Research Foundation | Opioid independent surgical anesthetic |
| CA3205758A1 (en) * | 2021-01-29 | 2022-08-04 | William Taylor | Compositions and methods for sustained treatment of pain |
-
2022
- 2022-10-13 EP EP22881803.5A patent/EP4415770A4/en active Pending
- 2022-10-13 CN CN202280080742.2A patent/CN118450912A/en active Pending
- 2022-10-13 CA CA3234806A patent/CA3234806A1/en active Pending
- 2022-10-13 JP JP2024522213A patent/JP2024536494A/en active Pending
- 2022-10-13 WO PCT/US2022/046624 patent/WO2023064506A1/en not_active Ceased
- 2022-10-13 US US17/965,738 patent/US20230110223A1/en active Pending
Patent Citations (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US6552191B1 (en) * | 2000-09-18 | 2003-04-22 | Wex Medical Instrumentation Co., Ltd. | Method of extracting tetrodotoxin |
| US20040161384A1 (en) * | 2002-04-01 | 2004-08-19 | Wheatley Margaret A. | Echogenic polymer microcapsules and nanocapsules and methods for production and use thereof |
| US20170049993A1 (en) * | 2012-08-14 | 2017-02-23 | Cosman Medical Inc. | Echogenic probe |
| US20190175495A1 (en) * | 2016-05-12 | 2019-06-13 | Insitu Biologics, Inc. | Hydrogel-based biological delivery vehicle |
| US20210186889A1 (en) * | 2018-03-23 | 2021-06-24 | Eneapharm | Intestinal-release formulation of a digestive enzyme, method of production and galenic preparation |
| US20200179697A1 (en) * | 2018-12-07 | 2020-06-11 | Avent, Inc. | Device and method to selectively and reversibly modulate a nervous system structure to inhibit pain |
Non-Patent Citations (2)
| Title |
|---|
| RWEI ALINA Y.; PARIS JUAN L.; WANG BRUCE; WANG WEIPING; AXON CHRISTOPHER D.; VALLET-REGí MARíA; LANGER ROBERT; KOHANE DA: "Ultrasound-triggered local anaesthesia", NATURE BIOMEDICAL ENGINEERING, vol. 1, no. 8, 9 August 2017 (2017-08-09), London , pages 644 - 653, XP036428887, DOI: 10.1038/s41551-017-0117-6 * |
| See also references of EP4415770A4 * |
Also Published As
| Publication number | Publication date |
|---|---|
| JP2024536494A (en) | 2024-10-04 |
| EP4415770A1 (en) | 2024-08-21 |
| CN118450912A (en) | 2024-08-06 |
| EP4415770A4 (en) | 2025-11-05 |
| US20230110223A1 (en) | 2023-04-13 |
| CA3234806A1 (en) | 2023-04-20 |
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