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Bristol Myers ipilimumab
Ipilimumab, supplied by Bristol Myers, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/ipilimumab+antibody/anti+ipilimumab/us12653809-1931-7-15
Average 86 stars, based on 1 article reviews
ipilimumab - by Bioz Stars, 2026-09
86/100 stars

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Binding Assay:

Article Title: Anti-cancer combination therapies comprising CTLA-4 and PD-1 blocking agents
Article Snippet: Ipilimumab has also been approved for combination therapies with the anti-PD-1 antibody nivolumab (marketed by Bristol-Myers Squibb under the tradename OPDIVO) for advanced renal cell carcinoma and certain colorectal cancers but due to the risk for significant irAEs, ipilimumab is administered at a low or subtherapeutic dose of 1 mg/kg.

Article Title: Current Advances in Immune Checkpoint Therapy
Article Snippet: Ipilimumab is a humanized IgG1 antibody developed by Bristol-Myers Squibb, and targets CTLA-4, thereby preventing its interaction with B7 ligands (Figure 1B).

Article Title: Compositions, combinations and related methods for photoimmunotherapy
Article Snippet: Exemplary anti-CTLA-4 antibodies include ipilimumab (Bristol-Myers Squibb) and tremelimumab (Pfizer).

Article Title: Immune checkpoint inhibitor-associated myocarditis
Article Snippet: Other databases that have proven instrumental in describing ICI myocarditis include those developed by Bristol-Myers Squibb, the producer of ipilimumab (anti-CTLA-4) and nivolumab (anti-PD-1), and patient databases maintained at academic medical centers.

Article Title: MEDI5752 Suppresses Two Immune Checkpoints
Article Snippet: In trials, responses have been seen with ipilimumab and nivolumab (Opdivo; Bristol Myers Squibb), but high toxic ity rates “have made the combination unattractive to these patient popula tions.” As such, if MEDI5752 and others “can thread the toxicityversus efficacy needle, I think there may be a development path for bispecifics as monotherapy here.” –Alissa Poh ■ doi: 10.1158/2159-8290.CD-NB2022-0030

Article Title: Anticancer agent comprising HVJ-E and immune checkpoint protein inhibitor
Article Snippet: Examples of known neutralizing antibody against immune checkpoint protein include Ipilimumab (Bristol-Myers Squibb) and Tremelimumab (Astrazeneca) as anti-CTLA-4 antibody, Nivolumab (Bristol-Myers Squibb) and Pembrolizumab (Merck/MSD) as anti-PD-1 antibody, Durvalumab (Astrazeneca) and Atezolizumab (Roche), Avelumab (Pfizer/EMD Serono/Merck KGaA) and Pidilizumab (CureTech) as anti-PD-L1 antibody, lirilumab (Bristol-Myers Squibb) as anti-KIR antibody, urelumab (Bristol-Myers Squibb) as anti-CD137 antibody, and BMS-986016 (Bristol-Myers Squibb) as anti-LAG-3 antibody.

Article Title: Multispecific binders of TGFBeta-superfamily ligands and uses thereof
Article Snippet: Anti-PD1 antibodies are commercially available, for example from ABCAM (AB134090), Sino Biological Inc. (11159-H03H, 11159-H08H), and Thermo Scientific Pierce (PA5-29572, PA5-23967, PA5-26465, MA1-12205, MA1-35914).

Article Title: Fc Effector Function of Immune Checkpoint Blocking Antibodies in Oncology
Article Snippet: Two anti‐CTLA4 are currently FDA approved: ipilimumab (Bristol Myers Squibb) a non‐modified IgG1 [ ] and tremelimumab (initially developed by Pfizer then outlicensed to Medimmune/Astra Zeneca) [ ] an IgG2.

Bioprocessing:

Article Title: Anti-cancer combination therapies comprising CTLA-4 and PD-1 blocking agents
Article Snippet: Ipilimumab has also been approved for combination therapies with the anti-PD-1 antibody nivolumab (marketed by Bristol-Myers Squibb under the tradename OPDIVO) for advanced renal cell carcinoma and certain colorectal cancers but due to the risk for significant irAEs, ipilimumab is administered at a low or subtherapeutic dose of 1 mg/kg.

Article Title: Current Advances in Immune Checkpoint Therapy
Article Snippet: Ipilimumab is a humanized IgG1 antibody developed by Bristol-Myers Squibb, and targets CTLA-4, thereby preventing its interaction with B7 ligands (Figure 1B).

Article Title: Compositions, combinations and related methods for photoimmunotherapy
Article Snippet: Exemplary anti-CTLA-4 antibodies include ipilimumab (Bristol-Myers Squibb) and tremelimumab (Pfizer).

Article Title: Immune checkpoint inhibitor-associated myocarditis
Article Snippet: Other databases that have proven instrumental in describing ICI myocarditis include those developed by Bristol-Myers Squibb, the producer of ipilimumab (anti-CTLA-4) and nivolumab (anti-PD-1), and patient databases maintained at academic medical centers.

Article Title: MEDI5752 Suppresses Two Immune Checkpoints
Article Snippet: In trials, responses have been seen with ipilimumab and nivolumab (Opdivo; Bristol Myers Squibb), but high toxic ity rates “have made the combination unattractive to these patient popula tions.” As such, if MEDI5752 and others “can thread the toxicityversus efficacy needle, I think there may be a development path for bispecifics as monotherapy here.” –Alissa Poh ■ doi: 10.1158/2159-8290.CD-NB2022-0030

Article Title: Anticancer agent comprising HVJ-E and immune checkpoint protein inhibitor
Article Snippet: Examples of known neutralizing antibody against immune checkpoint protein include Ipilimumab (Bristol-Myers Squibb) and Tremelimumab (Astrazeneca) as anti-CTLA-4 antibody, Nivolumab (Bristol-Myers Squibb) and Pembrolizumab (Merck/MSD) as anti-PD-1 antibody, Durvalumab (Astrazeneca) and Atezolizumab (Roche), Avelumab (Pfizer/EMD Serono/Merck KGaA) and Pidilizumab (CureTech) as anti-PD-L1 antibody, lirilumab (Bristol-Myers Squibb) as anti-KIR antibody, urelumab (Bristol-Myers Squibb) as anti-CD137 antibody, and BMS-986016 (Bristol-Myers Squibb) as anti-LAG-3 antibody.

Article Title: Multispecific binders of TGFBeta-superfamily ligands and uses thereof
Article Snippet: Anti-PD1 antibodies are commercially available, for example from ABCAM (AB134090), Sino Biological Inc. (11159-H03H, 11159-H08H), and Thermo Scientific Pierce (PA5-29572, PA5-23967, PA5-26465, MA1-12205, MA1-35914).

Article Title: Fc Effector Function of Immune Checkpoint Blocking Antibodies in Oncology
Article Snippet: Two anti‐CTLA4 are currently FDA approved: ipilimumab (Bristol Myers Squibb) a non‐modified IgG1 [ ] and tremelimumab (initially developed by Pfizer then outlicensed to Medimmune/Astra Zeneca) [ ] an IgG2.



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Nivolumab combined with ipilimumab activates the TLR4–MyD88–NF‐ κ B pathway, whereas TLR4 or NLRP3 knockdown attenuates apoptosis‐related changes in AC16 cardiomyocytes. (A) The expression of TLR4–MyD88–NF‐ κ B pathway‐related proteins was detected via Western blot. (B–G) The protein expression levels of TLR4, MyD88, NF‐ κ B, p‐NF‐ κ B, IKK β , and p‐IKK β . Single‐drug group: PD‐1, programmed cell death Protein 1; combination drug group: <t>CTLA‐4,</t> cytotoxic T lymphocyte‐associated antigen‐4; NF‐ κ B, nuclear factor kappa‐B; TLR4, Toll‐like Receptor 4. (H) Representative Western blot showing the effects of TLR4 or NLRP3 silencing on apoptosis‐related protein expression in AC16 cardiomyocytes treated with nivolumab combined with ipilimumab. (I–M) Quantification of apoptosis‐related proteins, including NLRP3, Bcl‐2, BAX, cleaved caspase‐3, and caspase‐3. (N) Representative Western blot showing the effects of TLR4 silencing on NLRP3 inflammasome components and TLR4–MyD88–NF‐ κ B pathway‐related proteins. (O–U) Quantification of NLRP3, TLR4, MyD88, NF‐ κ B, p‐NF‐ κ B, IKK β , and p‐IKK β expression levels. Data are presented as mean ± SD from three independent biological replicates ( n = 3). Statistical significance was determined using one‐way ANOVA followed by Dunnett′s post hoc test for multiple comparisons. p < 0.05; ∗ p < 0.01; ∗∗ p < 0.001; ns, not significant.
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Nivolumab combined with ipilimumab activates the TLR4–MyD88–NF‐ κ B pathway, whereas TLR4 or NLRP3 knockdown attenuates apoptosis‐related changes in AC16 cardiomyocytes. (A) The expression of TLR4–MyD88–NF‐ κ B pathway‐related proteins was detected via Western blot. (B–G) The protein expression levels of TLR4, MyD88, NF‐ κ B, p‐NF‐ κ B, IKK β , and p‐IKK β . Single‐drug group: PD‐1, programmed cell death Protein 1; combination drug group: <t>CTLA‐4,</t> cytotoxic T lymphocyte‐associated antigen‐4; NF‐ κ B, nuclear factor kappa‐B; TLR4, Toll‐like Receptor 4. (H) Representative Western blot showing the effects of TLR4 or NLRP3 silencing on apoptosis‐related protein expression in AC16 cardiomyocytes treated with nivolumab combined with ipilimumab. (I–M) Quantification of apoptosis‐related proteins, including NLRP3, Bcl‐2, BAX, cleaved caspase‐3, and caspase‐3. (N) Representative Western blot showing the effects of TLR4 silencing on NLRP3 inflammasome components and TLR4–MyD88–NF‐ κ B pathway‐related proteins. (O–U) Quantification of NLRP3, TLR4, MyD88, NF‐ κ B, p‐NF‐ κ B, IKK β , and p‐IKK β expression levels. Data are presented as mean ± SD from three independent biological replicates ( n = 3). Statistical significance was determined using one‐way ANOVA followed by Dunnett′s post hoc test for multiple comparisons. p < 0.05; ∗ p < 0.01; ∗∗ p < 0.001; ns, not significant.
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Nivolumab combined with ipilimumab activates the TLR4–MyD88–NF‐ κ B pathway, whereas TLR4 or NLRP3 knockdown attenuates apoptosis‐related changes in AC16 cardiomyocytes. (A) The expression of TLR4–MyD88–NF‐ κ B pathway‐related proteins was detected via Western blot. (B–G) The protein expression levels of TLR4, MyD88, NF‐ κ B, p‐NF‐ κ B, IKK β , and p‐IKK β . Single‐drug group: PD‐1, programmed cell death Protein 1; combination drug group: CTLA‐4, cytotoxic T lymphocyte‐associated antigen‐4; NF‐ κ B, nuclear factor kappa‐B; TLR4, Toll‐like Receptor 4. (H) Representative Western blot showing the effects of TLR4 or NLRP3 silencing on apoptosis‐related protein expression in AC16 cardiomyocytes treated with nivolumab combined with ipilimumab. (I–M) Quantification of apoptosis‐related proteins, including NLRP3, Bcl‐2, BAX, cleaved caspase‐3, and caspase‐3. (N) Representative Western blot showing the effects of TLR4 silencing on NLRP3 inflammasome components and TLR4–MyD88–NF‐ κ B pathway‐related proteins. (O–U) Quantification of NLRP3, TLR4, MyD88, NF‐ κ B, p‐NF‐ κ B, IKK β , and p‐IKK β expression levels. Data are presented as mean ± SD from three independent biological replicates ( n = 3). Statistical significance was determined using one‐way ANOVA followed by Dunnett′s post hoc test for multiple comparisons. p < 0.05; ∗ p < 0.01; ∗∗ p < 0.001; ns, not significant.

Journal: Human Mutation

Article Title: Combined Nivolumab and Ipilimumab Therapy Promotes Immune‐Mediated Cardiomyocyte Apoptosis Through TLR4–Myd88–NF‐ Κ b–Driven Activation of the NLRP3 Inflammasome

doi: 10.1155/humu/8506248

Figure Lengend Snippet: Nivolumab combined with ipilimumab activates the TLR4–MyD88–NF‐ κ B pathway, whereas TLR4 or NLRP3 knockdown attenuates apoptosis‐related changes in AC16 cardiomyocytes. (A) The expression of TLR4–MyD88–NF‐ κ B pathway‐related proteins was detected via Western blot. (B–G) The protein expression levels of TLR4, MyD88, NF‐ κ B, p‐NF‐ κ B, IKK β , and p‐IKK β . Single‐drug group: PD‐1, programmed cell death Protein 1; combination drug group: CTLA‐4, cytotoxic T lymphocyte‐associated antigen‐4; NF‐ κ B, nuclear factor kappa‐B; TLR4, Toll‐like Receptor 4. (H) Representative Western blot showing the effects of TLR4 or NLRP3 silencing on apoptosis‐related protein expression in AC16 cardiomyocytes treated with nivolumab combined with ipilimumab. (I–M) Quantification of apoptosis‐related proteins, including NLRP3, Bcl‐2, BAX, cleaved caspase‐3, and caspase‐3. (N) Representative Western blot showing the effects of TLR4 silencing on NLRP3 inflammasome components and TLR4–MyD88–NF‐ κ B pathway‐related proteins. (O–U) Quantification of NLRP3, TLR4, MyD88, NF‐ κ B, p‐NF‐ κ B, IKK β , and p‐IKK β expression levels. Data are presented as mean ± SD from three independent biological replicates ( n = 3). Statistical significance was determined using one‐way ANOVA followed by Dunnett′s post hoc test for multiple comparisons. p < 0.05; ∗ p < 0.01; ∗∗ p < 0.001; ns, not significant.

Article Snippet: The nivolumab (anti‐PD‐1) PD‐1 inhibitor was purchased from MCE (United States) Biotechnology Company, Product Number HY‐P9903; the ipilimumab (anti‐CTLA‐4) CTLA‐4 inhibitor was purchased from MCE (United States) Biotechnology Company, Product Number HY‐P9901; the si‐TLR4 inhibitor was purchased from Guangzhou Ruibo; and the si‐NLRP3 inhibitor was purchased from Guangzhou Ruibo.

Techniques: Knockdown, Expressing, Western Blot

Nivolumab combined with ipilimumab enhanced the degree of apoptosis and inflammation in mouse cardiomyocytes. (A, B) The expression of the myocardial injury factor BNP was detected via immunofluorescence staining. (C) The expression of the myocardial injury factors BNP and TnT was detected by immunohistochemistry. (D–I) The expression of the cardiac apoptosis‐related proteins BAX, Bcl‐2, cleaved caspase‐3, and caspase‐3 was detected via immunofluorescence staining and Western blot. Single group: PD‐1, programmed cell death Protein 1; combination group: CTLA‐4, cytotoxic T lymphocyte‐associated antigen‐4. Data are presented as mean ± SD. Each group consisted of five biological replicates (mice) ( n = 5). Statistical significance was determined using one‐way ANOVA followed by Dunnett′s post hoc test for multiple comparisons. p < 0.05; ∗ p < 0.01; ∗∗ p < 0.001; ns, not significant.

Journal: Human Mutation

Article Title: Combined Nivolumab and Ipilimumab Therapy Promotes Immune‐Mediated Cardiomyocyte Apoptosis Through TLR4–Myd88–NF‐ Κ b–Driven Activation of the NLRP3 Inflammasome

doi: 10.1155/humu/8506248

Figure Lengend Snippet: Nivolumab combined with ipilimumab enhanced the degree of apoptosis and inflammation in mouse cardiomyocytes. (A, B) The expression of the myocardial injury factor BNP was detected via immunofluorescence staining. (C) The expression of the myocardial injury factors BNP and TnT was detected by immunohistochemistry. (D–I) The expression of the cardiac apoptosis‐related proteins BAX, Bcl‐2, cleaved caspase‐3, and caspase‐3 was detected via immunofluorescence staining and Western blot. Single group: PD‐1, programmed cell death Protein 1; combination group: CTLA‐4, cytotoxic T lymphocyte‐associated antigen‐4. Data are presented as mean ± SD. Each group consisted of five biological replicates (mice) ( n = 5). Statistical significance was determined using one‐way ANOVA followed by Dunnett′s post hoc test for multiple comparisons. p < 0.05; ∗ p < 0.01; ∗∗ p < 0.001; ns, not significant.

Article Snippet: The nivolumab (anti‐PD‐1) PD‐1 inhibitor was purchased from MCE (United States) Biotechnology Company, Product Number HY‐P9903; the ipilimumab (anti‐CTLA‐4) CTLA‐4 inhibitor was purchased from MCE (United States) Biotechnology Company, Product Number HY‐P9901; the si‐TLR4 inhibitor was purchased from Guangzhou Ruibo; and the si‐NLRP3 inhibitor was purchased from Guangzhou Ruibo.

Techniques: Expressing, Immunofluorescence, Staining, Immunohistochemistry, Western Blot

Nivolumab combined with ipilimumab enhances the expression of the TLR4–Myd88–NF‐ κ B signaling pathway and NLRP3 in the apoptosis of mouse cardiomyocytes. (A) Western blot analysis of the expression of inflammatory factors in the myocardial tissue of mice in the single drug group and combined drug group. (B–F) The expression levels of NLRP3, ASC, caspase‐1, IL‐18 and IL‐1 β . (G) Western blot analysis of TLR4–MyD88–NF‐ κ B pathway‐related proteins in the myocardial tissue of mice in the single‐drug group and (H–M) combination drug group, including the protein expression levels of TLR4, Myd88, NF‐ κ B, p‐NF‐ κ B, IKK β , and p‐IKK β . Single‐drug group: PD‐1, programmed cell death Protein 1. The combination drugs used were as follows: CTLA‐4, cytotoxic T lymphocyte–associated antigen‐4; NF‐ κ B, nuclear factor kappa‐B; TLR4, Toll‐like Receptor 4; and NLRP3, NOD‐like receptor thermal protein domain associated Protein 3. Data are presented as mean ± SD. Each group consisted of five biological replicates (mice) ( n = 5). Statistical significance was determined using one‐way ANOVA followed by Dunnett’s post hoc test for multiple comparisons. p < 0.05; ∗ p < 0.01; ∗∗ p < 0.001; ns, not significant.

Journal: Human Mutation

Article Title: Combined Nivolumab and Ipilimumab Therapy Promotes Immune‐Mediated Cardiomyocyte Apoptosis Through TLR4–Myd88–NF‐ Κ b–Driven Activation of the NLRP3 Inflammasome

doi: 10.1155/humu/8506248

Figure Lengend Snippet: Nivolumab combined with ipilimumab enhances the expression of the TLR4–Myd88–NF‐ κ B signaling pathway and NLRP3 in the apoptosis of mouse cardiomyocytes. (A) Western blot analysis of the expression of inflammatory factors in the myocardial tissue of mice in the single drug group and combined drug group. (B–F) The expression levels of NLRP3, ASC, caspase‐1, IL‐18 and IL‐1 β . (G) Western blot analysis of TLR4–MyD88–NF‐ κ B pathway‐related proteins in the myocardial tissue of mice in the single‐drug group and (H–M) combination drug group, including the protein expression levels of TLR4, Myd88, NF‐ κ B, p‐NF‐ κ B, IKK β , and p‐IKK β . Single‐drug group: PD‐1, programmed cell death Protein 1. The combination drugs used were as follows: CTLA‐4, cytotoxic T lymphocyte–associated antigen‐4; NF‐ κ B, nuclear factor kappa‐B; TLR4, Toll‐like Receptor 4; and NLRP3, NOD‐like receptor thermal protein domain associated Protein 3. Data are presented as mean ± SD. Each group consisted of five biological replicates (mice) ( n = 5). Statistical significance was determined using one‐way ANOVA followed by Dunnett’s post hoc test for multiple comparisons. p < 0.05; ∗ p < 0.01; ∗∗ p < 0.001; ns, not significant.

Article Snippet: The nivolumab (anti‐PD‐1) PD‐1 inhibitor was purchased from MCE (United States) Biotechnology Company, Product Number HY‐P9903; the ipilimumab (anti‐CTLA‐4) CTLA‐4 inhibitor was purchased from MCE (United States) Biotechnology Company, Product Number HY‐P9901; the si‐TLR4 inhibitor was purchased from Guangzhou Ruibo; and the si‐NLRP3 inhibitor was purchased from Guangzhou Ruibo.

Techniques: Expressing, Western Blot