WEBINAR | Strategies for Mitigating the Unpredictability of Fc-Mediated Functions in Antibody Development

November 9, 2023

Background:

Optimization of Fc function can lead to the development of safer and more efficacious therapeutic antibody products, but analyses of Fc function may be underexploited in the antibody design process. We introduce a high-throughput platform for antigen-specific testing of Fc effector activities, empowering enhanced hit-to-lead screening in early stages of antibody development for the treatment of cancer, autoimmunity, neurodegeneration, and infectious diseases.

Speaker:

Dr. Lenny Moise, VP Research, oversees the scientific development of the SeromYx Systems Serology platform, driving clinical research and drug discovery in infectious disease, immuno-oncology, autoimmunity, and neurology. Previously, as Director of Vaccine Research at EpiVax, he harnessed immunoinformatics to design innovative vaccines leveraging T cell immunity for viral and bacterial infectious diseases and cancer. Over that time, he studied T cell responses to vaccines and developed immunoinformatic tools as a faculty member at the Institute for Immunology and Informatics (University of Rhode Island) and the Center for Vaccines and Immunology (University of Georgia). Lenny trained in structure-function analysis of snake toxin-ion channel interactions using structural, biochemical, and electrophysiological methods and holds a Bachelor of Science and a doctorate from Brown University.

July 30, 2026
The Fc Review: Stepping a little outside therapeutic antibody and vaccine development this week to highlight a fascinating piece of fundamental antibody biology. A recent Science study uncovers an unexpected role for antibody-mediated complement activity in the adult mouse brain, showing that locally produced IgM and C1q work together to drive activity-dependent synapse elimination.  While this work is still early and was performed in mice, it offers an interesting look at how #antibody effector mechanisms may extend beyond the roles we typically think about. Background: Antibodies are typically viewed through the lens of infection, vaccination, or therapeutic development. Their effector functions, including complement activation, are well established as key mechanisms for eliminating pathogens and diseased cells. This study asks whether antibody-mediated complement activity also contributes to normal brain physiology. Using mouse models, the authors investigated how neuronal activity influences complement-mediated synapse remodeling and whether adaptive immune components participate in this process. The study highlights: Increased neuronal activity triggered localized C1q deposition and complement-dependent synapse loss in the adult mouse hippocampus. Activity-dependent recruitment of antibody-secreting B-lineage cells led to local production of antigen-specific IgM, which contributed to C1q deposition at synapses. Reducing neuronal hyperactivity in a mouse model of Alzheimer's disease decreased C1q deposition and partially restored synaptic density. The findings identify a previously unrecognized interaction between adaptive immunity, complement biology, and neuronal circuit remodeling in the adult brain.
June 26, 2026
The Fc Review: Can better antibody engineering improve safety, not just efficacy? A recent review in Antibody Therapeutics examines how the molecular design of antibody-drug conjugates (ADCs) influences both nonclinical and clinical toxicities, highlighting that safety is determined by far more than the payload alone. Background: ADCs are often discussed in terms of target selection and payload potency, but their safety profile is shaped by the combined properties of the antibody, linker, payload, conjugation strategy, and target biology. This review examines data from marketed ADCs and explores how each component contributes to toxicity, providing a useful framework for designing safer next-generation therapeutics. The study highlights: ADC toxicity is influenced by the combined effects of target antigen expression, antibody structure, linker stability, payload properties, and conjugation technology rather than any single design feature. The Fc region can contribute to off-target toxicity through receptor-mediated uptake. The review discusses roles for Fcγ receptors, FcRn, and C-type lectin receptors in nonspecific internalization that may influence safety. Site-specific conjugation technologies can improve homogeneity, produce more consistent drug-to-antibody ratios (DAR), and enhance stability compared with earlier random conjugation approaches. Properties such as linker stability, payload hydrophobicity, charge, and DAR all influence biodistribution, payload release, and toxicity, underscoring the importance of considering these design variables together.
June 4, 2026
The Fc Review: When does antibody bivalency help, and when can it work against you? A recent mAbs study explores the impact of antibody bivalency on antigen occupancy and cell surface opsonization, revealing that the same property can be advantageous or disadvantageous depending on the intended mechanism of action (MoA). Background: Most therapeutic antibodies are bivalent, meaning they can bind two target antigens simultaneously. This avidity effect is often viewed as beneficial because it increases apparent binding strength and can improve target engagement. However, therapeutic success is not always driven by target occupancy alone. For mechanisms that rely on Fc-mediated effector function, the number of antibodies decorating the target cell surface may be just as important. The study highlights: Bivalent antibodies achieved higher antigen occupancy than comparable monovalent antibodies across a range of affinities and antigen densities. At the same time, bivalency reduced the total number of antibodies bound per cell because a single antibody could occupy two antigens simultaneously. The authors describe an "avidity barrier," where achieving equivalent levels of cell surface opsonization requires substantially higher concentrations of a bivalent antibody. The optimal balance between occupancy and opsonization depended on factors including antibody affinity, valency, and target antigen density.
June 1, 2026
Type: Meeting Dates: August 26th -27th, 2026 Location: Arlington, VA
May 29, 2026
Type: Symposium Dates: September 13th-16th, 2026 Location: Atlanta, GA
May 28, 2026
Abstract: Acute SARS-CoV-2 infection triggers the de novo production of diverse, functional autoantibodies (AABs) that remain elevated in Long COVID (LC), but their pathogenic role remains unclear. Using tissue-based immunofluorescence, ELISA, human protein array, and mass spectrometry assays, we identified a broad range of AAB targets among individuals with LC. Individuals with neurocognitive symptoms showed increased AABs against central and peripheral nervous system proteins. Purified IgG reacted with human locus coeruleus, thalamus, adrenal gland, thyroid, and cross-reacted with mouse sciatic nerve and meninges. CNS-reactive AABs correlated with several neurological symptoms. MED20-targeting IgG from patients with LC showed enhanced antibody-dependent phagocytosis. Passive transfer of IgG from individuals with LC into mice induced fatigue-like behavior, loss of balance/coordination, thermal hyperalgesia, small fiber nerve damage, and increased pain-related neuronal activity, recapitulating patients’ symptoms. These findings suggest that targeting AABs might offer therapeutic benefits for this LC subgroup. 
May 27, 2026
Type: Conference Dates: October 12th-14th, 2026 Location: Antwerp, Belgium
May 18, 2026
Type: Conference Dates: October 19th-21st, 2026 Location: Amsterdam, Netherlands
May 18, 2026
Type: Conference Dates: November 16th-18th, 2026 Location: Peabody, MA
May 18, 2026
The Fc Review: How much does Fc design influence the next generation of ADCs? A recent Cell review explores the rapid evolution of antibody-drug conjugates (ADCs), highlighting how advances in payloads, linker technologies, and antibody engineering are reshaping the field across both hematologic and solid tumors. Background: ADCs were originally developed as targeted delivery vehicles for highly potent payloads. But as the field matures, it is becoming increasingly clear that ADC activity is shaped by far more than antigen targeting alone. Factors such as linker stability, payload permeability, tumor microenvironment, bystander killing, and Fc-mediated interactions can all influence therapeutic performance. The study highlights: Fc-mediated mechanisms such as ADCC, ADCP, and complement activation can contribute to ADC activity beyond payload delivery. Some next-generation ADCs are intentionally engineered to enhance Fc effector function, while others incorporate Fc-silencing strategies to minimize off-tumor interactions. Payload selection, linker chemistry, and drug-to-antibody ratio all influence efficacy, safety, and bystander activity. Tumor antigen expression alone is often insufficient to predict ADC behavior, highlighting the importance of functional characterization and biological context.
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