ArticleJournal of biological engineering2025
Engineering FcRn binding kinetics dramatically extends antibody serum half-life and enhances therapeutic potential.
Article in Journal of biological engineering, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 12 papers.
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Who cites it
12 citing papers in PubMed.
- Article
- Effects of Prenatal Ursodeoxycholic Acid and Probiotic Supplementation on Stress Parameters, Immune Response and Lamb Survival Rates in Ewes.Veterinary medicine and science · 2026Article
- Systemic Inflammation as a Modulator of FcRn-dependent IgG Pharmacokinetics: Implications for Broadly Neutralising Antibody Efficacy in HIV Prevention.Current HIV/AIDS reports · 2026Review
- Structure and function of therapeutic antibodies approved by the US FDA in 2025.Antibody therapeutics · 2026Review
- Precision Fc remodeling via glycosylation-competent CHO display enables ultra-selective FcγRIIIa targeting and enhanced antitumor activity.Journal of biological engineering · 2026Article
- Transplacental Antibody Transfer: Mechanisms, Pregnancy-Related Disruptions, and Emerging Experimental Models.Antibodies (Basel, Switzerland) · 2026Review
- Fc-Engineering Improves PET Imaging of Anti-Mesothelin VH-Fc across Multiple Tumor Mouse Models and Reveals Sex-Specific Renal Clearance.Bioconjugate chemistry · 2026Article
- Protein engineering: status report.Protein engineering, design & selection : PEDS · 2026Review
- GB20-5A8-31, an anti-TL1A antibody for treating inflammatory bowel disease.Frontiers in immunology · 2026Article
- Manufacturability is access: redesigning antibody production for equitable pediatric access in LMICs.Frontiers in pediatrics · 2026Article
- Directed evolution-driven reprogramming of PD-L1 for compact and tunable checkpoint modulation.Journal of biological engineering · 2025Article
- Monoclonal antibodies in veterinary antiviral immunotherapy: technologies, applications and challenges.Veterinary research communications · 2025Review
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Authors and funding
9 authors.
Funding
Abstract
backgroundOptimizing the IgG Fc domain for neonatal Fc receptor (FcRn) binding is crucial for enhancing antibody pharmacokinetics. The prolonged serum half-life of IgG antibody is governed by its pH-dependent interaction with FcRn, enabling efficient binding at acidic endosomal pH, intracellular trafficking, and release at neutral serum pH. However, a critical yet previously unrecognized challenge in Fc engineering for extending the serum half-life of therapeutic antibodies is the intense competition with endogenous IgG for FcRn binding during intracellular trafficking, which limits FcRn-mediated transport and reduces the serum persistence of therapeutic antibodies. To address this, we developed an Fc variant that precisely modulates pH-dependent FcRn binding kinetics, accelerates FcRn association at acidic pH, and promotes rapid dissociation at neutral pH, thereby enhancing FcRn-driven intracellular transport, outcompeting endogenous IgG, and achieving unprecedented improvement in the serum half-life of therapeutic antibodies.
resultsUsing comprehensive site-directed saturation mutagenesis coupled with functional screening, we generated a diverse panel of Fc variants and identified two with distinct FcRn binding kinetics: YML (L309Y/Q311M/M428L), which exhibited superior FcRn association at acidic pH and accelerated dissociation at neutral pH, and EML (L309E/Q311M/M428L), which displayed attenuated binding kinetics. In human FcRn transgenic mice, YML extended the serum half-life of clinically used trastuzumab with a wild-type Fc by 6.1-fold, demonstrating a remarkable improvement over previously reported Fc-engineered variants, including PFc29 (Q311R/M428L) and DHS (L309D/Q311H/N434S), which represent the most effective Fc modifications for prolonging serum persistence to date. This in vivo validation underscores the pivotal role of FcRn kinetic tuning in overcoming endogenous IgG competition and maximizing FcRn-mediated antibody transport. Additionally, YML exhibited potent complement-dependent cytotoxicity (CDC) while maintaining favorable physicochemical properties.
conclusionThis study presents a rational Fc engineering framework to optimize FcRn binding kinetics, addressing a previously unconsidered challenge-endogenous IgG competition during intracellular trafficking of therapeutic antibodies. The distinct kinetic behaviors of YML and EML highlight the critical necessity of precise control over pH-dependent association and dissociation rates in FcRn binding. YML represents a next-generation Fc platform, offering enhanced pharmacokinetics and improved effector functions, thus providing a powerful strategy for developing biologics with superior serum persistence and therapeutic efficacy.
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