CA2908331A1 - Human-mouse chimeric anti-cd147 antibody with non-fucosylated glycosylation - Google Patents
Human-mouse chimeric anti-cd147 antibody with non-fucosylated glycosylation Download PDFInfo
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Abstract
5, and/or sequence of SEQ ID NO: 6, vector and host cell line comprising the nucleotide. The present disclosure also relates to an antibody that binds to extracellular region of human CD147, wherein the antibody comprises a heavy chain variable region having the amino acid sequence of SEQ ID NO: 2, and/or a light chain variable region having the amino acid sequence of SEQ ID
NO: 1, and the antibody contains a glycoform lacking both fucose residues and xylose residues, pharmaceutical composition comprising the antibody or fragment thereof, the method of producing the antibody or fragment thereof, and use of the pharmaceutical composition in treatment of CD147 expression-related diseases.
Description
FIELD OF THE INVENTION
[0001] The present disclosure relates to a human-mouse chimeric anti-CD147 antibody with specific glycosylation profile in Fc region.
BACKGROUND OF THE INVENTION
Histopathology 54, 677-687.), including carcinomas of liver, lung, breast, pancreas, prostate, and bladder. CD147 over expression level is correlated with tumor histopathologic type and clinical stage of disease. Importantly, CD147 surface expression is closely associated with tumorigenesis, tumor progression and reduced patient survival in various cancers, and these facts validate CD147 as a therapeutic target for cancer treatment.
randomized controlled trial of Licartin for preventing hepatoma recurrence after liver transplantation. Hepatology 45, 269-276). Licartin has been shown to be effective in the treatment of liver cancer, demonstrating anti-CD147 antibodies as molecular targeted therapeutics. Although efficient, safe and tolerated in therapy, Licartin suffered from immunogenicity which triggers generation of human¨anti-mouse antibodies (HAMA) in 4 out of 130 treated patients without affecting therapeutic results (Chen et al., 2006;
Targeting radioimmunotherapy of hepatocellular carcinoma with iodine (131I) metuximab injection:
clinical phase I/II trials. International journal of radiation oncology, biology, physics 65, 435-444.). Such limitations have prompted efforts to improve the efficacy and tolerability of HAb 18 through antibody engineering, as well as the inconvenience of administration of a non-radioactively labelled therapeutic antibody. The present disclosure addresses these and other needs and provides several additional benefits for efficient and safe treatment of cancer patients, which will be described in the remainder of this document.
BRIEF SUMMARY OF THE INVENTION
7, and/or sequence of SEQ ID NO: 8.
NO: 6. In another aspect, the present disclosure provides vectors comprising the nucleotide sequence comprising the sequence of SEQ ID NO: 7, and/or sequence of SEQ ID NO: 8.
ID NO: 1. In some embodiments, the antibodies comprise a light chain having the amino acid sequence of SEQ ID NO: 3. In some embodiments, the antibodies comprise a heavy chain having the amino acid sequence of SEQ ID NO: 4.
In some embodiments, the antibodies or fragments thereof comprises a predominant portion of glycoforms comprising N-linked oligosaccharides comprising five mannose residues (also called Mannose-5),In some embodiments, the antibodies or fragments thereof comprise solely a glycoform comprising N-linked Mannose-5. In some embodiments, the antibody has a glycosylation profile as analyzed by High-Performance Anion Exchange Chromatography with Pulsed Amperometric Detection (HPAEC-PAD) that is substantially equivalent to that of Metuzumab as shown in Figure 6.
In some embodiments, the antibodies are obtained from an acetyl-glucosamine transferase deficient cell line. In some embodiments, the cell line is CHO
cell line.
In another aspect, the present disclosure provides pharmaceutical compositions comprising an antibody that binds to an extracellular region of human CD147, or a fragment of such antibody, and a pharmaceutically acceptable vehicle or excipient, wherein the antibody comprises a heavy chain variable region having the amino acid sequence of SEQ
ID NO: 2 and a light chain variable region having the amino acid sequence of SEQ ID NO: 1, and the antibody contains a glycoform lacking both fucose residues and xylose residues. In some embodiments, the antibodies comprise a light chain having the amino acid sequence of SEQ ID
NO: 3. In some embodiments, the antibodies comprise a heavy chain having the amino acid sequence of SEQ ID
NO: 4.
In some embodiments, the pharmaceutical compositions further comprise a chemotherapeutic agent. In some embodiment, the chemotherapeutic agent is selected from gemcitabine, cisplatin, paclitaxel, and navelbine.
transfecting the vector into an acetyl-glucosamine transferase deficient cell line; culturing the transfected cell line in media; and obtaining the antibody or the fragment of the antibody from the culture.
NO: 1 under a condition to allow expression of the antibody or fragment thereof comprising the heavy chain and the light chain; and obtaining the antibody or the fragment thereof from the culture.
1, and the antibody contains a glycoform lacking both fucose residues and xylose residues. In some embodiments, the antibody comprises a light chain having the amino acid sequence of SEQ
ID NO: 3. In some embodiments, the antibody comprises a heavy chain having the amino acid sequence of SEQ ID NO: 4. In some embodiments, the methods further comprise administering a chemotherapeutic agent to the subject. In some embodiments, the chemotherapeutic agent is selected from gemcitabine, cisplatin, paclitaxel, and navelbine. In some embodiments, the disease is cancer. In some embodiments, the cancer is lung cancer, liver cancer, esophagus i cancer, ovarian cancer, stomach cancer, breast cancer, cervical cancer, or colon cancer. In some embodiments, the disease is lung cancer. In some embodiments, the disease is non-small cell lung cancer.
BRIEF DESCFRIPTION OF FIGURES
NCI-H520, A549 and NCI-H446 cells (1x104 per well) were incubated with Metuzumab or cHAb 18 mAb for 30 min at 37 C. Effector cells (Spleen cells) were added at the ratio of effector cells to T cells (E/T) 50:1 for 24 hours at 37 C in CO2 incubator. After centrifugation, supernatants were harvested and lactate dehydrogenase (LDH) activity were measured. Data represent mean SD of five independent experiments.
2mg/kg Cisplatin and 100mg/kg Gemcitabine; Metuzumab infusion at 2 mg/kg, 10 mg/kg and 30 mg/kg; combination of 10 mg/kg Metuzumab with 2mg/kg Cisplatin and 100mg/kg Gemcitabine;
wherein the antibodies were injected twice weekly for 3 week consecutively, while the I
chemotherapeutic agents were injected once a week for 3 weeks consecutively.
The tumors were measured twice a week.
2mg/kg Cisplatin and 100mg/kg Gemcitabine; Metuzumab infusion at 2 mg/kg, 10 mg/kg and 30 mg/kg; combination of 10 mg/kg Metuzumab with 2mg/kg Cisplatin and 100mg/kg Gemcitabine;
wherein the antibodies were injected twice weekly for 3 week consecutively, while the chemotherapeutic agents were injected once a week for 3 weeks consecutively.
The tumors were measured twice a week.
DETAILED DESCRIPTION OF THE INVENTION
Nucleotide Sequence
NO: 5. In some embodiments, the nucleotide sequence comprises the sequence of SEQ ID NO: 6.
In some embodiments, the nucleotide sequence comprises both the sequence of SEQ ID NO: 5 and the sequence of SEQ ID NO: 6.
NO: 7. In some embodiments, the nucleotide sequence comprises the sequence of SEQ ID NO: 8.
In some embodiments, the nucleotide sequence comprises both the sequence of SEQ ID NO: 7 and the sequence of SEQ ID NO: 8.
!
ID NO: 6 are particularly advantageous in expression in certain types of host cells such as CHO
cells, partly because of the optimization in the genetic codon usage based on the host cells or other types of cells.
consisting of the second and third constant regions of two heavy chains bound together via disulfide bonding.
Each arm of the Y includes the variable region and first constant region of a single heavy chain bound to the variable and constant regions of a single light chain. The variable regions of the light and heavy chains are responsible for antigen binding. The Fc portion of an antibody refers to that portion of the antibody consisting of the second and third constant regions of a first heavy chain bound to the second and third constant regions of a second heavy chain via disulfide bonding. The Fc portion of the antibody is responsible for various effector functions such as ADCC, and Complement Dependent Cytotoxicity (CDC), but does not function in antigen binding.
Vector I
A vector can be an expression vector and a cloning vector. The present disclosure provides vectors (e.g. expression vectors) containing the nucleotide sequence provided herein encoding the antibody or a fragment thereof, at least one promoter operably linked to the nucleotide sequence, and at least one selection marker. The expression vectors of the present disclosure can be viral vectors, plasmids, phages and cosmids. Examples include, such as, retrovirus (including lentivirus), adenovirus, adeno-associated virus, herpesvirus (e.g., herpes simplex virus), poxvirus, baculovirus, papillomavirus, papovavirus (e.g., SV40), lambda phage, and M13 phage, plasmid PCR 2.1, pCMV, pEGFP, pIRES, pQD-Hyg-GSeu, and etc.
ID NO: 6. In some embodiments, the vectors comprise the nucleotide sequence having the sequence of SEQ ID NO: 7, and/or sequence of SEQ ID NO: 8.
Host Cell
NO: 7, and/or sequence of SEQ ID NO: 8.
In some embodiments, the host cells comprise a vector provided herein, wherein the vector comprises the nucleotide sequence having the sequence of SEQ ID NO: 6. In some embodiments, the host cells i I
comprise a vector provided herein, wherein the vector comprises the nucleotide sequence having both the sequence of SEQ ID NO: 5 and the sequence of SEQ ID NO: 6.
Genetics, 55, 513 (1968); Chromosoma, 41, 129 (1973); Methods in Cell Science, 18, 115 (1996);
Radiation Research, 148, 260 (1997); Proc. Natl. Acad. ScL USA, 77, 4216 (1980); Proc. Natl.
Acad. ScL, 60, 1275 (1968); Cell, 6, 121 (1975); Molecular Cell Genetics, Appendix I, II (pp.
883-900); and the like. In addition, CHO-K1 (ATCC CCL-61), DUXB11 (ATCC CCL-9096), CHO DG44 and Pro-5 (ATCC CCL-1781) registered in ATCC (The American Type Culture Collection) and a commercially available CHO-S (Life Technologies, Cat #
11619) or sub-cell lines obtained by adapting the cell lines using various media can also be exemplified. In some embodiments, the CHO cells are adapted to suspension cell culture. In some embodiments, the CHO cells are adapted to serum free culture.
cells can be modified to over-express or under-express or knock-out one or more enzymes responsible for glycosylation. In some embodiments, the CHO cells are acetyl-glucosamine transferase deficient.
Antibody
China.
NO: 3, in which the heavy chain variable domain has an amino acid sequence of SEQ ID NO: 2, and light chain variable domain has an amino acid sequence of SEQ ID NO: 1.
Glycosylated antibodies and fragments thereof can be recombinantly produced in host cells where the cellular glycosylation machinery transfers one or more glycans to the amino acid sequence of the antibodies and fragments thereof, thereby producing a population of glycosylated antibodies containing certain glycoforms.
In some embodiments, the antibodies and fragment thereof provided herein consist of one or more glycoforms which specifically lack(s) fucose residues, xylose residues, or both. The term "lack"
or "lacking" with respect to certain monosaccharide residues as used herein is intended to mean such monosaccharide residues are absent or are at a level that is too low to be detected using a detection method known in the art, for example, High-Performance Anion Exchange Chromatography with Pulsed Amperometric Detection (HPAEC-PAD). Other detection methods may also be used to detect the oligosaccharides, for example, Matrix-Assisted Laser Desorption/ Ionization Time of Flight Mass Spectrometry (MALDI/TOF-MS).
activity" refers to the ability of an antibody or Fc fusion protein to elicit an ADCC reaction. ADCC
activity can be assessed directly using an in vitro assay, e.g., a 51Cr release assay using peripheral blood mononuclear cells (PBMC) and/or spleen effector cells as described in the Examples and Shields et al. (2001) J. Biol. Chem., 276:6591-6604, or any other suitable method.
ADCC activity may be expressed as a concentration of antibody at which the lysis of target cells is half-maximal. The ADCC activity of an antibody generally depends on the binding affinity of the antibody to target cell, which could be affected by the glycoform of N-linked oligosaccharide of the antibody.
predominant portion" as used herein refers to a portion that is above 70%, above 80%, above 90%, above 95%, above 96%, above 97%, above 98%, above 99%, or 100% of the whole population of glycosylated antibodies containing N-linked glycoforms. The amount of glycoform contained on the antibodies or fragments thereof may be measured by a conventional detection method known in the art, for example, HPAEC-PAD.
Metuzumab is an antibody whose heavy chain amino acid sequence is SEQ ID NO: 4 and light chain amino acid sequence is SEQ ID NO: 3, and which further comprises one or more glycoform(s) lacking both fucose residues and xylose residues. In some embodiments, Metuzumab contains N-linked Mannose-5 glycans.
"Substantially equivalent" as used herein with respect to glycosylation profile is intended to mean the glycosylation profile is in general consistency to that shown in Figure 6. For example, the glycosylation profile has the same number of peak(s), similar peak shape, and/or similar peak position.
8,025,879, U.S.
8,080,415, U.S. 8,084,222, PCT/1JS2009/051325, CN200980145664.4). Although the amino acid sequences of Metuzumab are identical to those of cHAb18, the glycosylation profile of Metuzumab is different from that of cHAb18. In some embodiments, the glycosylation profile of Metuzumab exhibits homogeneous glycoform and comprises solely Mannose-5 N-linked oligosaccharide and lacks fucose and xylose.
Pharmaceutical Composition
4 and a light chain having the amino acid sequence of SEQ ID NO:3, or a fragment thereof, and a pharmaceutically acceptable vehicle or excipient.
means that compounds, materials, compositions, and/or dosage forms are, within the scope of sound medical judgment, suitable for use in vivo in human beings and animals without excessive toxicity, irritation, allergic response, or other problem or complication, commensurate with a reasonable benefit/risk ratio. In some embodiments, compounds, materials, compositions, and/or dosage forms that are pharmaceutically acceptable refer to those approved by a regulatory agency (such as U.S. Food and Drug Administration, China Food and Drug Administration or European Medicines Agency) or listed in generally recognized pharmacopoeia (such as U.S. Pharmacopoeia, China Pharmacopoeia or European Pharmacopoeia) for use in animals, and more particularly in humans.
Pharmaceutically acceptable vehicle or excipient that can be employed in present disclosure includes those generally known in the art, such as those described in "Remington Pharmaceutical Sciences"
Mack Pub. Co., New Jersey (1991), which is incorporated herein by reference.
!
Method for producing an antibody
culturing a host cell comprising a vector comprising a first nucleotide sequence encoding a heavy chain having the amino acid sequence of SEQ ID NO: 4 and a second nucleotide sequence encoding a light chain having the amino acid sequence of SEQ ID NO: 3 under a condition to allow expression of the antibody comprising the heavy chain and the light chain or a fragment thereof; and obtaining the antibody or the fragment thereof from the culture.
obtaining nucleotide sequence encoding a heavy chain having the amino acid sequence of SEQ
ID NO: 4 and nucleotide sequence encoding a light chain having the amino acid sequence of SEQ ID NO: 3; constructing an vector comprising the nucleotide sequence or a fragment of the nucleotide sequence; transfecting the vector into acetyl-glucosamine transferase deficient cell line; culturing the transfected cell line in media; and obtaining the antibody or the fragment of the antibody from the culture.
(Hyclone), CD CHO Opti (Gibco), CHO Efficient Feed A or B (Gibco). In some embodiments, !
i the culture media is serum free media. In some embodiments, the culture media is animal component free media. In some embodiments, the culture media is CD CHO Opti (Gibco).
In some embodiments, the second period is 11-21 days.
Method for treating human CD147 expression-related diseases
ID NO: 4 and a light chain having the amino acid sequence of SEQ ID NO: 3, and the antibody contains a glycoform lacking both fucose residues and xylose residues. In some embodiments, the methods further comprise administering a chemotherapeutic agent to the subject. In some embodiments, the chemotherapeutic agent is selected from gemcitabine, cisplatin, paclitaxel, and navelbine. In some embodiments, the disease is cancer. In some embodiments, the cancer is lung cancer, liver cancer, esophagus cancer, ovarian cancer, stomach cancer, breast cancer, cervical cancer, or colon cancer. In some embodiments, the disease is lung cancer. In some embodiments, the disease is non-small cell lung cancer.
that the terms "comprises", "comprising", "includes" , "including", "have"
and/or "having" if used herein, specify the presence of stated features, steps, operations, elements and/or components, but do not preclude the presence or addition of one or more other features, steps, operations, elements, components and/or groups thereof. The dimensions and values disclosed herein are not to be understood as being strictly limited to the exact numerical values recited.
Instead, unless otherwise specified, each such dimension is intended to mean both the recited value and a functionally equivalent range surrounding that value. For example, a dimension disclosed as "3000 mm2" is intended to mean "about 3000 mm2". As used herein, the term "about," when used in reference to a particular recited numerical value, means that the value may vary from the recited value by no more than 1%.
EXAMPLES
EXAMPLE 1: Production of chimeric antibody against CD147
denaturing polyacrylamide gel electrophoresis.
PCR was performed with the Phusion High-Fidelity DNA Polymerase from NEB.
40 cycles of 94 C, 1 min; 55 C, 1 min; and 72 C, 1 mm; for the extension at 72 C in the final cycle, 10min.
i
Light/heavy chain variable region sequences were synthesized with the signal peptide sequence (SEQ ID NO 13) on the 5' terminal and inserted into Nhe I + Barn HI (VH) and Hind III + Xba I
(VL) restriction site of pQD-Hyg-GSeu vector by T4-ligase (NEB, U.S.) so that the light chain variable region and heavy chain variable region were linked to human IgG1 light chain/heavy chain constant region sequences that are previously included in the vector, respectively, to form a full length light chain encoding sequence (SEQ ID NO: 7) and a full length heavy chain encoding sequence (SEQ ID NO: 8) to generate pQD-Hyg-GSeu-cHAbl8 expression vector (Figure 1). The desirable clone was obtained after transformation, PCR based identification and sequencing analysis.
solution V and combined with 2[tg pQD-Hyg-GSeu-cHAbl8 expression vector, 2 [tg pmaxGFP
Vector. Transfer cell/DNA suspension into Amaxa cuvette and electroporated by program U-023.
A Nucleofector Program G-023 was performed for electro-transfection.
The transfected neo+ cells were selected with 500 [tg/m1 Hygromycin B
(Invitrogen), and the gene was amplified in 2 rounds of L-Methionine Sulfoximine (MSX, 25 M, Sigma) pressure selection. Cell line capable of producing approximately 163 mg/L of Metuzumab was obtained using ClonePix FL (Genentix Inc).
EXAMPLE 2: Expression of cHAbl8 and Metuzumab in batch culture
After cell growth reached stationary phase (around 7 days for the two cell lines in this example), culture of the Metuzumab expressing cells was switched to incubation at 31 C until the end of the culturing (around 21 days). At day 21 of cultivation, both cell cultures were harvested.
Then affinity chromatography was carried out using Mabselect Sure to capture the antibody.
Finally, hydrophobic chromatography was carried out using Phenyl Sepharose High performance to further purify the antibodies. The final purity for both cHAbl8 and Metuzumab were higher than 95%.
EXAMPLE 3: Antigen-Binding Activity of Antibodies
Briefly, the running buffer PBST (0.005% Tween-20 in PBS) was used continuously throughout the entire experiment at 25 C. A ProteOn GLC sensor chips (Bio-Rad) was activated for 6min using a mixture of 0.2M EDC and 5mM sulfo-NHS at a flow rate of 20 111 /min, followed by diluting 260 Ill of 10 vtg/mL each antibody in 10mM acetate buffer at pH 4.5.
The surface of the sensor chip was then deactivated with 150 jtl of 1M Ethanolamine Hydrochloride (pH 8.5). The sensor surface was regenerated through a wash (about 3 min) with HBS-EP buffer until the baseline was restored. A reference cell without antibodies was prepared by a similar procedure. 5 different concentrations of human CD147 antigen (0.375, 0.75, 1.5, 3, and 6 nM) were injected in channels 1 to 5, respectively, at flow rate of 50 1,11/min, 3min. A
reference channel was prepared in the same manner without injection of CD147 antigen. The SPR
binding responses were collected and analyzed using the ProteOn data manager program.
analysis for Metuzumab and HAb18 (I(1): 0.321 nmol/L and 0.362 nmol/L, respectively) can be considered equal. The calculated affinities of antibodies by SPR analysis for Metuzumab and cHAb 18 (KD: 0.429 nmol/L and 0.475 nmol/L, respectively) can be considered equal. In other words, HAb 18 and Metuzumab, Metuzumab and cHAb 18 all exhibited similar CD147 binding ability.
Fe Secondary Antibody (Pierce) at 4 C in the dark for 45 min. Cells were then washed three times i and suspended in PBS for analysis using a FACS Calibur flow cytometer (BD, New Jersey, U.S.). Relative antigen expression is reported as median fluorescence intensity (MFI).
EXAMPLE 4: Measurement of Antigen-Binding specificity of Metuzumab
H202 to block endogenous peroxidase, and blocking for lhr in 10% goat serum, slides were incubated overnight in a humidity chamber with biotinylated Metuzumab (30 g/ml). Binding was visualized with streptavidin-conjugated peroxidase (ZsBio, China) and DAB
detection system (ZsBio, China). Sections were analyzed using a bright-field microscope.
The staining results were evaluated by 2 experienced pathologist in a blinded manner and classified into four categories: of 0 (no visible staining), 1+ (light brown), 2+ (mid-brown), and 3+ (dark brown), respectively, with the same intensity covering more than 75% of the staining area.
Table 1. Immuno-histo-chemical Detection of CD147 by Metuzumab in Human Cancer Arrays Pathology number Staining level Positive rate Sensitivity Specificity 0 1+ 2+ 3+ response rate Lung cancer 68 8 5 23 32 88.24% 88.24%
91.67%
Normal lung 12 10 2 0 0 8.33%
Ovary cancer 12 3 2 3 4 75% 75.00%
100%
Normal ovary 12 12 0 0 0 0%
gastric cancer 23 5 1 7 10 78.26% 78.26%
80.95%
normal stomach 21 17 3 1 0 19.05%
Esophagus cancer 32 2 6 13 11 93.75% 93.75%
81.25%
Normal esophagus 16 13 3 0 0 18.75%
Mammary cancer 40 4 6 11 19 90.00% 90.00%
77.50%
Mammary tissue 40 31 5 2 2 22.50%
I
cervical cancer 20 3 2 5 10 85.00% 85.00%
100%
Normal cervix uteri 4 4 0 0 0 0%
Liver cancer 20 3 11 6 85.00% 85.00%
75.00%
Normal liver 4 3 0 1 0 25.00%
Colon cancer 50 9 8 26 7 82.00% 82.00%
84.00%
Normal colon 50 42 5 2 1 16.00%
EXAMPLE 5: Analysis of oligosaccharide and monosaccharide profiles of Antibodies
Carbohydr.
Res. 131, 209 217.). Analysis of protein glycosylation was performed by using HPAEC-PAD.
60x150mm CLC-ODS column (Shimpack, Japan) was used for the HPAEC-PAD, the column was equilibrate with washing buffer A (10mM sodium phosphate solution (pH3.8)) at 1.0m1/min 55 C; then 25 1 of each testing sample were added to the column; after which washing buffer B
(10mM sodium phosphate solution (pH3.8) with 0.5%n-butyl alcohol) together with washing buffer A were used for gradient wash, within 80min the ratio between washing buffer B and washing buffer A was linearly increased from 1:1 to 60:40; the wash-outs were tested with florescence detector with exciting light wavelength at 320nm and emitting light wavelength at 400nm. The oligosaccharide peaks detected were then compared with standard peaks to determine the identity of each peak.
EXAMPLE 6: Non-Glycosylated Heavy Chain in Metuzumab
psi, and gel buffer wash for 10 min at 70 psi. Following the rinses, the capillary and electrode ends were dipped twice in separate water vials prior to sample injection at 5 kV. Another water dip was performed followed by separation at 15 kV. During separation, pressure was applied to both ends of the capillary at 20 psi. Detection was performed at 220 nm using a Pulse Distribution Analysis (PDA) detector. The percentage of NGHC in Metuzumab was measured and calculated in several independent experiments, and the percentages obtained were all below 5%.
EXAMPLE 7: Antibody-Dependent Cellular Cytotoxicity (ADCC) of Metuzumab
EXAMPLE 8: Inhibition of cancer cell invasion and metastasis by Metuzumab !
containing 0.1% FBS and Metuzumab solution at 0.111g/ml, 1[tg/m1 and 10 1.1g/ml, respectively.
5x104 cells were added to the upper chamber of each well (6.5 mm in diameter, 8-1.tm pore size;
Corning, NY) coated with 30 mg/cm2 Matrigel (BD Bioscience). Medium containing 10% FBS
was placed in the lower compartment of the chamber. After 24 hours at 37 C, cells on the upper membrane surface were removed by careful wiping with a cotton swab, and the filters were fixed by treatment with 95% ethanol for 30 minutes and stained with 0.2% crystal violet solution for 30 minutes. Invasive cells adhering to the undersurface of the filter were then counted (five high-power fields/chamber) using a CX71 microscope (Olympus).
(P<0.05), 38.3% (P<0.001) and 50% (P<0.001) compared to the control group, respectively. The data in Figure 8A indicated that Metuzumab inhibits cell migration of A549 cells.
11.tg/m1 and 10 g/m1 Metuzumab, respectively. The invasiveness of A549 repressed by 53.5% (P<0.01), 61.5% (P<0.001) and 74.6% (P<0.001) after being treated by 0.11.tg/ml, 1 g/m1 and 10 pg/m1 Metuzumab compared to control groups, respectively. The data in Figure 8B indicated that Metuzumab inhibits cell invasion of NCI-H520 and A549 cells.
EXAMPLE 9: Antitumor Effects of Metuzumab in Xenograft Models
mice (6-8 week old). When tumors reached a mean volume of 100 mm3, mice were randomized into treatment cohorts (n = 10 mice per group). Mice were grouped for different treatments, including Metuzumab treatment groups treated with 2 mg/kg, 10 mg/kg and 30 mg/kg Metuzumab;
chemistry treatment group treated with 2mg/kg Cisplatin and 100mg/kg Gemcitabine;
combination treatment group treated with 10 mg/kg Metuzumab with 2mg/kg Cisplatin and 100mg/kg Gemcitabine, or saline (control group) via tail vein, respectively.
Antibody injections were administered twice weekly, for 3 weeks consecutively; chemotherapeutic agents were administered once a week, for 3 weeks consecutively. Tumor size was measured twice each week for the duration of the study using calipers. Tumor volumes were determined using the following formula: (length x width2)/2. Antitumor activity was assessed by calculating inhibition ratio of tumor volumes (IRTV) based on medians by using following formula: [1-average (Ttreatment (day x)-Ttreatment (day 0))/average (Tcontrol (day x)-Tcontrol (day 0))] x 100%.
that the combination of Metuzumab with chemical drugs enhanced the antitumor efficacy when compared with the mAb treatment groups or chemotherapeutic agents treatment group in preclinical models of human NSCLC. Therefore, in the combination therapy the dose of the chemotherapeutics could be decreased while decreasing the side effects of chemotherapeutics and increasing the therapeutic effect.
REFERENCE
Baba, M., Inoue, M., Itoh, K., and Nishizawa, Y. (2008). Blocking CD147 induces cell death in cancer cells through impairment of glycolytic energy metabolism. Biochemical and biophysical research communications 374, 111-116.
Bian, H., Zheng, J.S., Nan, G., Li, R., Chen, C., Hu, C.X., Zhang, Y., Sun, B., Wang, X.L., Cui, S.C., et al. (2014).
Randomized trial of [131I]metuximab in treatment of hepatocellular carcinoma after percutaneous radiofrequency ablation. Journal of the National Cancer Institute 106.
Chen, H., Wang, L., Beretov, J., Hao, J., Xiao, W., and Li, Y. (2010). Co-expression of CD147/EMMPRIN with monocarboxylate transporters and multiple drug resistance proteins is associated with epithelial ovarian cancer progression. Clinical & experimental metastasis 27, 557-569.
Chen, Z.N., Mi, L., Xu, J., Song, F., Zhang, Q., Zhang, Z., Xing, J.L., Bian, H.J., Jiang, J.L., Wang, X.H., et al.
(2006). Targeting radio immunotherapy of hepatocellular carcinoma with iodine (131I) metuximab injection: clinical phase I/II trials. International journal of radiation oncology, biology, physics 65, 435-444.
Jefferis, R. (2009). Recombinant antibody therapeutics: the impact of glycosylation on mechanisms of action.
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Kataoka, H., DeCastro, R., Zucker, S., and Biswas, C. (1993). Tumor cell-derived collagenase-stimulatory factor increases expression of interstitial collagenase, stromelysin, and 72-kDa gelatinase. Cancer research 53, 3154-3158.
Kirk, P., Wilson, M.C., Heddle, C., Brown, M.H., Barclay, A.N., and Halestrap, A.P. (2000). CD147 is tightly associated with lactate transporters MCT1 and MCT4 and facilitates their cell surface expression. The EMBO
journal 19, 3896-3904.
Li, Y., Xu, J., Chen, L., Zhong, W.D., Zhang, Z., Mi, L., Zhang, Y., Liao, C.G., Bian, H.J., Jiang, J.L., et al. (2009).
HAb18G (CD147), a cancer-associated biomarker and its role in cancer detection. Histopathology 54, 677-687.
Liang, Q., Han, Q., Huang, W., Nan, G., Xu, B.Q., Jiang, J.L., and Chen, Z.N.
(2014). 1-IAbl8G/CD147 regulates vinculin-mediated focal adhesion and cytoskeleton organization in cultured human hepatocellular carcinoma cells.
PloS one 9, e102496.
Orazizadeh, M., and Salter, D.M. (2008). CD147 (extracellular matrix metalloproteinase inducer-emmprin) expression by human articular chondrocytes. Iranian biomedical journal 12, 153-158.
Philp, N.J., Ochrietor, J.D., Rudoy, C., Muramatsu, T., and Linser, P.J.
(2003). Loss of MCT1, MCT3, and MCT4 expression in the retinal pigment epithelium and neural retina of the 5A11/basigin-null mouse. Investigative ophthalmology & visual science 44, 1305-1311.
Schneiderhan, W., Scheler, M., Holzmann, K.H., Marx, M., Gschwend, J.E., Bucholz, M., Gress, T.M., Seufferlein, T., Adler, G., and Oswald, F. (2009). CD147 silencing inhibits lactate transport and reduces malignant potential of pancreatic cancer cells in in vivo and in vitro models. Gut 58, 1391-1398.
Xu, J., Shen, Z.Y., Chen, X.G., Zhang, Q., Bian, H.J., Zhu, P., Xu, H.Y., Song, F., Yang, X.M., Mi, L., et al.
(2007a). A randomized controlled trial of Licartin for preventing hepatoma recurrence after liver transplantation.
Hepatology 45, 269-276.
Xu, J., Xu, H.Y., Zhang, Q., Song, F., Jiang, J.L., Yang, X.M., Mi, L., Wen, N., Tian, R., Wang, L., et al. (2007b).
HAb18G/CD147 functions in invasion and metastasis of hepatocellular carcinoma.
Molecular cancer research :
MCR 5, 605-614.
i Zeng, H.Z., Qu, Y.Q., Liang, A.B., Deng, A.M., Zhang, W.J., Xiu, B., Wang, H., and Wang, H. (2011). Expression of CD147 in advanced non-small cell lung cancer correlated with cisplatin-based chemotherapy resistance.
Neoplasma 58, 449-454.
Zhao, S., Chen, C., Liu, S., Zeng, W., Su, J., Wu, L., Luo, Z., Zhou, S., Li, Q., Zhang, J., et al. (2013). CD147 promotes MIX resistance by immune cells through up-regulating ABCG2 expression and function. Journal of dermatological science 70, 182-189.
Zou, W., Yang, H., Hou, X., Zhang, W., Chen, B., and Xin, X. (2007).
Inhibition of CD147 gene expression via RNA interference reduces tumor cell invasion, tumorigenicity and increases chemosensitivity to paclitaxel in HO-8910pm cells. Cancer letters 248, 211-218.
I
SEQUENCE LISTING IN ELECTRONIC FORM
In accordance with section 111(1) of the Patent Rules, this description contains a sequence listing in electronic form in ASCII text format (file: 95652-8seq2015-10-07v1.txt).
A copy of the sequence listing in electronic form is available from the Canadian Intellectual Property Office.
The sequences in the sequence listing in electronic form are reproduced in the following table.
SEQUENCE TABLE
<110> Fourth Military Medical University <120> HUMAN-MOUSE CHIMERIC ANTI-CD147 ANTIBODY WITH NON-FUCOSYLATED
GLYCOSYLATION
<130> 95652-8 <160> 13 <170> PatentIn version 3.5 <210> 1 <211> 108 <212> PRT
<213> Mouse <400> 1 Ser Ile Val Met Thr Gin Thr Pro Thr Phe Leu Val Val Ser Ala Gly Asp Arg Val Thr Ile Thr Cys Lys Ala Ser Gin Ser Val Ile Asn Asp Val Ala Trp Tyr Gin Gin Lys Pro Gly Gin Ser Pro Lys Leu Leu Ile Phe Tyr Ala Ser Asn Arg Asn Thr Gly Val Pro Asp Arg Phe Thr Gly 50 Ser Gly Tyr Gly Thr Asp Phe Thr Phe Thr Ile Ser Thr Val Gin Ala i Glu Asp Leu Ala Val Tyr Phe Cys Gin Gin Asp Tyr Ser Pro Pro Phe Thr Phe Gly Ser Gly Thr Lys Leu Glu Ile Lys Arg <210> 2 <211> 111 <212> PRT
<213> Mouse <400> 2 Glu Val Lys Leu Glu Glu Ser Gly Gly Gly Leu Val Gin Pro Gly Gly Ser Met Lys Leu Ser Cys Val Ala Ser Gly Phe Thr Phe Ser Asp Ala Trp Met Asp Trp Val Arg Gin Ser Pro Glu Lys Gly Leu Glu Trp Val Ala Glu Ile Arg Ser Lys Ala Asn Asn His Ala Pro Tyr Tyr Thr Glu Ser Val Lys Gly Arg Phe Thr Ile Ser Arg Asp Asp Ser Lys Ser Ile Ile Tyr Leu Gin Met Asn Asn Leu Arg Ala Glu Asp Thr Gly Ile Tyr Tyr Cys Thr Arg Asp Ser Thr Ala Thr His Trp Gly Gin Gly Thr <210> 3 <211> 230 <212> PRT
<213> Chimeric <400> 3 Met Gly Trp Ser Cys Ile Ile Leu Phe Leu Val Ala Thr Ala Thr Gly I
Ser Ile Val Met Thr Gin Thr Pro Thr Phe Leu Val Val Ser Ala Gly Asp Arg Val Thr Ile Thr Cys Lys Ala Ser Gin Ser Val Ile Asn Asp Val Ala Trp Tyr Gin Gin Lys Pro Gly Gin Ser Pro Lys Leu Leu Ile Phe Tyr Ala Ser Asn Arg Asn Thr Gly Val Pro Asp Arg Phe Thr Gly Ser Gly Tyr Gly Thr Asp Phe Thr Phe Thr Ile Ser Thr Val Gin Ala Glu Asp Leu Ala Val Tyr Phe Cys Gin Gin Asp Tyr Ser Pro Pro Phe Thr Phe Gly Ser Gly Thr Lys Leu Glu Ile Lys Arg Thr Val Ala Ala Pro Ser Val Phe Ile Phe Pro Pro Ser Asp Glu Gin Leu Lys Ser Gly Thr Ala Ser Val Val Cys Leu Leu Asn Asn Phe Tyr Pro Arg Glu Ala Lys Val Gin Trp Lys Val Asp Asn Ala Leu Gin Ser Gly Asn Ser Gin Glu Ser Val Thr Glu Gin Asp Ser Lys Asp Ser Thr Tyr Ser Leu Ser Ser Thr Leu Thr Leu Ser Lys Ala Asp Tyr Glu Lys His Lys Val Tyr Ala Cys Glu Val Thr His Gin Gly Leu Ser Ser Pro Val Thr Lys Ser Phe Asn Arg Gly Glu Cys <210> 4 <211> 463 <212> PRT
<213> Chimeric <400> 4 Met Gly Trp Ser Cys Ile Ile Leu Phe Leu Val Ala Thr Ala Thr Gly Glu Val Lys Leu Glu Glu Ser Gly Gly Gly Leu Val Gin Pro Gly Gly Ser Met Lys Leu Ser Cys Val Ala Ser Gly Phe Thr Phe Ser Asp Ala Trp Met Asp Trp Val Arg Gin Ser Pro Glu Lys Gly Leu Glu Trp Val Ala Glu Ile Arg Ser Lys Ala Asn Asn His Ala Pro Tyr Tyr Thr Glu Ser Val Lys Gly Arg Phe Thr Ile Ser Arg Asp Asp Ser Lys Ser Ile Ile Tyr Leu Gin Met Asn Asn Leu Arg Ala Glu Asp Thr Gly Ile Tyr Tyr Cys Thr Arg Asp Ser Thr Ala Thr His Trp Gly Gin Gly Thr Leu Val Thr Val Ser Ala Ala Ser Thr Lys Gly Pro Ser Val Phe Pro Leu Ala Pro Ser Ser Lys Ser Thr Ser Gly Gly Thr Ala Ala Leu Gly Cys Leu Val Lys Asp Tyr Phe Pro Glu Pro Val Thr Val Ser Trp Asn Ser !
Gly Ala Leu Thr Ser Gly Val His Thr Phe Pro Ala Val Leu Gin Ser Ser Gly Leu Tyr Ser Leu Ser Ser Val Val Thr Val Pro Ser Ser Ser Leu Gly Thr Gin Thr Tyr Ile Cys Asn Val Asn His Lys Pro Ser Asn Thr Lys Val Asp Lys Arg Val Glu Pro Lys Ser Cys Asp Lys Thr His Thr Cys Pro Pro Cys Pro Ala Pro Glu Leu Leu Gly Gly Pro Ser Val Phe Leu Phe Pro Pro Lys Pro Lys Asp Thr Leu Met Ile Ser Arg Thr Pro Glu Val Thr Cys Val Val Val Asp Val Ser His Glu Asp Pro Glu Val Lys Phe Asn Trp Tyr Val Asp Gly Val Glu Val His Asn Ala Lys Thr Lys Pro Arg Glu Glu Gin Tyr Asn Ser Thr Tyr Arg Val Val Ser Val Leu Thr Val Leu His Gin Asp Trp Leu Asn Gly Lys Glu Tyr Lys Cys Lys Val Ser Asn Lys Ala Leu Pro Ala Pro Ile Glu Lys Thr Ile Ser Lys Ala Lys Gly Gin Pro Arg Glu Pro Gin Val Tyr Thr Leu Pro Pro Ser Arg Asp Glu Leu Thr Lys Asn Gin Val Ser Leu Thr Cys Leu Val Lys Gly Phe Tyr Pro Ser Asp Ile Ala Val Glu Trp Glu Ser Asn Gly Gin Pro Glu Asn Asn Tyr Lys Thr Thr Pro Pro Val Leu Asp Ser Asp Gly Ser Phe Phe Leu Tyr Ser Lys Leu Thr Val Asp Lys Ser Arg Trp Gin Gin Gly Asn Val Phe Ser Cys Ser Val Met His Glu Ala Leu His Asn His Tyr Thr Gin Lys Ser Leu Ser Leu Ser Pro Gly Lys <210> 5 <211> 324 <212> DNA
<213> Mouse <400> 5 agcattgtga tgacccagac tcccacattc ctggttgtat cagcaggaga cagggttacc 60 ataacctgca aggccagtca gagtgtgatt aatgatgtag cttggtacca acagaagcca gggcagtctc ctaaactgct gatattctat gcatccaatc gcaacactgg agttcctgat cgcttcactg gcagtggata tgggacggat ttcactttca ccatcagcac tgtgcaggct gaagacctgg cagtttattt ctgtcagcag gattatagtc ctccattcac gttcggctcg gggacaaagt tggaaatcaa gcgg <210> 6 <211> 351 <212> DNA
<213> Mouse <400> 6 gaagtgaagc tggaggagtc tggaggaggc ttggtgcaac ctggaggatc catgaaactg tcttgtgttg cctctggatt cacttttagt gacgcctgga tggactgggt ccgccagtct ccagagaagg gacttgagtg ggttgctgaa attagaagca aagctaataa tcatgcacca tactatactg agtctgtgaa agggaggttc accatctcac gagatgattc caagagtatt atctacctgc aaatgaacaa cttaagagct gaagacactg gcatttatta ctgtaccagg gatagcacgg ctacccactg gggccaaggg actctggtca ctgtctctgc a i <210> 7 <211> 693 <212> DNA
<213> Chimeric <400> 7 atgggctggt cctgcatcat cctgttcctg gtggccaccg ccaccggcag cattgtgatg acccagactc ccacattcct ggttgtatca gcaggagaca gggttaccat aacctgcaag gccagtcaga gtgtgattaa tgatgtagct tggtaccaac agaagccagg gcagtctcct aaactgctga tattctatgc atccaatcgc aacactggag ttcctgatcg cttcactggc agtggatatg ggacggattt cactttcacc atcagcactg tgcaggctga agacctggca gtttatttct gtcagcagga ttatagtcct ccattcacgt tcggctcggg gacaaagttg gaaatcaagc ggaccgtggc cgccccctcc gtgttcatct tccccccctc cgacgagcag ctgaagtccg gcaccgcctc cgtggtgtgc ctgctgaaca acttctaccc ccgggaggcc aaggtgcagt ggaaggtgga caacgccctg cagtccggca actcccagga gtccgtgacc gagcaggact ccaaggactc cacctactcc ctgtcctcca ccctgaccct gtccaaggcc gactacgaga agcacaaggt gtacgcctgc gaggtgaccc accagggcct gtcctccccc gtgaccaagt ccttcaaccg gggcgagtgc tag <210> 8 <211> 1392 <212> DNA
<213> Chimeric <400> 8 atgggctggt cctgcatcat cctgttcctg gtggccaccg ccaccggcga agtgaagctg gaggagtctg gaggaggctt ggtgcaacct ggaggatcca tgaaactgtc ttgtgttgcc tctggattca cttttagtga cgcctggatg gactgggtcc gccagtctcc agagaaggga cttgagtggg ttgctgaaat tagaagcaaa gctaataatc atgcaccata ctatactgag tctgtgaaag ggaggttcac catctcacga gatgattcca agagtattat ctacctgcaa atgaacaact taagagctga agacactggc atttattact gtaccaggga tagcacggct acccactggg gccaagggac tctggtcact gtctctgcag cctccaccaa gggcccatcg gtcttccccc tggcaccctc ctccaagagc acctctgggg gcacagcggc cctgggctgc I
ctggtcaagg actacttccc cgaaccggtg acggtgtcgt ggaactcagg cgccctgacc agcggcgtgc acaccttccc ggccgtccta cagtcctcag gactctactc cctcagcagc gtggtgaccg tgccctccag cagcttgggc acccagacct acatctgcaa cgtgaatcac aagcccagca acaccaaggt ggacaagaga gttgagccca aatcttgtga caaaactcac acatgcccac cgtgcccagc acctgaactc ctggggggac cgtcagtctt cctcttcccc ccaaaaccca aggacaccct catgatctcc cggacccctg aggtcacatg cgtggtggtg gacgtgagcc acgaagaccc tgaggtcaag ttcaactggt acgtggacgg cgtggaggtg cataatgcca agacaaagcc gcgggaggag cagtacaaca gcacgtaccg tgtggtcagc gtcctcaccg tcctgcacca ggactggctg aatggcaagg agtacaagtg caaggtctcc aacaaagccc tcccagcccc catcgagaaa accatctcca aagccaaagg gcagccccga gaaccacagg tgtacaccct gcccccatcc cgggatgagc tgaccaagaa ccaggtcagc ctgacctgcc tggtcaaagg cttctatccc agcgacatcg ccgtggagtg ggagagcaat gggcagccgg agaacaacta caagaccacg cctcccgtgc tggactccga cggctccttc ttcctctaca gcaagctcac cgtggacaag agcaggtggc agcaggggaa cgtcttctca tgctccgtga tgcatgaggc tctgcacaac cactacacgc agaagagcct ctccctgtct ccgggtaaat ga <210> 9 <211> 29 <212> DNA
<213> SYTHESIS
<400> 9 agcattgtga tgacccagac tcccacatt <210> 10 <211> 30 <212> DNA
<213> SYTHESIS
<400> 10 ccgcttgatt tccaactttg tccccgagcc <210> 11 <211> 31 I
<212> DNA
<213> SYTHESIS
<400> 11 gaagtgaagc tggaggagtc tggaggaggc t <210> 12 <211> 31 <212> DNA
<213> SYTHESIS
<400> 12 tgcagagaca gtgaccagag tcccttggcc c <210> 13 <211> 48 <212> DNA
<213> SYTHESIS
<400> 13 atgggctggt cctgcatcat cctgttcctg gtggccaccg ccaccggc I
Claims (24)
ID NO: 6.
ID NO: 2, and the antibody contains a glycoform lacking both fucose residues and xylose residues.
obtaining nucleotide sequence encoding for a heavy chain variable region having the amino acid sequence of SEQ ID NO: 2 and/or nucleotide sequence encoding for a light chain variable region having the amino acid sequence of SEQ ID NO: 1;
constructing an vector comprising the nucleotide sequence encoding for the antibody;
transfecting the vector into an acetyl-glucosamine transferase deficient cell line;
culturing the transfected cell line in media;
obtaining the antibody from the culture.
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