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Role of Fcγ receptors in HER2-targeted breast cancer therapy
Antonino Musolino1, William J Gradishar2, Hope S Rugo3
1Department of Medicine and Surgery, University Hospital of Parma, Medical Oncology and Breast Unit, Parma, Italy.
Abstract:
Several therapeutic monoclonal antibodies (mAbs), including those targeting epidermal growth factor receptor, human epidermal growth factor receptor 2 (HER2), and CD20, mediate fragment crystallizable gamma receptor (FcγR)-dependent activities as part of their mechanism of action. These activities include induction of antibody-dependent cellular cytotoxicity (ADCC) and antibody-dependent cellular phagocytosis (ADCP), which are innate immune mechanisms of cancer cell elimination. FcγRs are distinguished by their affinity for the Fc fragment, cell distribution, and type of immune response they induce. Activating FcγRIIIa (CD16A) on natural killer cells plays a crucial role in mediating ADCC, and activating FcγRIIa (CD32A) and FcγRIIIa on macrophages are important for mediating ADCP. Polymorphisms in FcγRIIIa and FcγRIIa generate variants that bind to the Fc portion of antibodies with different affinities. This results in differential FcγR-mediated activities associated with differential therapeutic outcomes across multiple clinical settings, from early stage to metastatic disease, in patients with HER2+ breast cancer treated with the anti-HER2 mAb trastuzumab. Trastuzumab has, nonetheless, revolutionized HER2+ breast cancer treatment, and several HER2-directed mAbs have been developed using Fc glyco-engineering or Fc protein-engineering to enhance FcγR-mediated functions. An example of an approved anti-HER2 Fc-engineered chimeric mAb is margetuximab, which targets the same epitope as trastuzumab, but features five amino acid substitutions in the IgG 1 Fc domain that were deliberately introduced to increase binding to activating FcγRIIIa and decrease binding to inhibitory FcγRIIb (CD32B). Margetuximab enhances Fc-dependent ADCC in vitro more potently than the combination of pertuzumab (another approved mAb directed against an alternate HER2 epitope) and trastuzumab. Margetuximab administration also enhances HER2-specific B cell and T cell-mediated responses ex vivo in samples from patients treated with prior lines of HER2 antibody-based therapies. Stemming from these observations, a worthwhile future goal in the treatment of HER2+ breast cancer is to promote combinatorial approaches that better eradicate HER2+ cancer cells via enhanced immunological mechanisms.
Insights
Fc receptor (FcγR) polymorphisms impact therapeutic monoclonal antibody (mAb) efficacy in HER2+ breast cancer. Engineered mAbs like margetuximab enhance FcγR-mediated anti-cancer immunity, improving treatment outcomes.
Area of Science:
- Immunology
- Oncology
- Pharmacology
Background:
- Therapeutic monoclonal antibodies (mAbs) targeting HER2, such as trastuzumab, rely on Fc receptor (FcγR)-mediated effector functions like ADCC and ADCP for cancer cell elimination.
- FcγR polymorphisms influence mAb binding affinity and subsequent immune responses, leading to variable clinical outcomes in HER2+ breast cancer patients.
- Fc engineering strategies aim to optimize FcγR interactions for enhanced therapeutic efficacy.
Purpose of the Study:
- To review the role of FcγR-dependent mechanisms in mAb therapy for HER2+ breast cancer.
- To highlight Fc engineering approaches that enhance FcγR-mediated anti-cancer immunity.
- To discuss the potential of combinatorial strategies involving engineered mAbs for improved cancer eradication.
Main Methods:
- Review of literature on FcγR biology, mAb mechanisms of action, and Fc engineering techniques.
- Analysis of clinical data linking FcγR polymorphisms to trastuzumab treatment outcomes.
- Examination of in vitro and ex vivo data for Fc-engineered mAbs like margetuximab.
Main Results:
- FcγR polymorphisms significantly affect the efficacy of anti-HER2 mAbs, influencing patient outcomes.
- Fc-engineered mAbs, exemplified by margetuximab, demonstrate enhanced binding to activating FcγRIIIa, leading to potent ADCC induction.
- Margetuximab also enhances HER2-specific adaptive immune responses, suggesting broader immunological benefits.
Conclusions:
- FcγR-mediated effector functions are critical for the therapeutic success of anti-HER2 mAbs.
- Fc engineering represents a promising strategy to overcome FcγR-related limitations and improve mAb efficacy.
- Future research should focus on combinatorial immunotherapeutic approaches to maximize cancer cell killing in HER2+ breast cancer.
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