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Biology subjects

Im, S.-B.

Publications and source records attributed to Im, S.-B..

2 recordsLinked to original sources

Computational design of monomeric Fc variants with distinct pH-responsive FcRn-binding profiles

IgG1 and IgG4 antibodies form a [~]150 kDa homodimer through dimerization of the Fc domain, which prolongs their in vivo half-life via pH-dependent binding to the neonatal Fc receptor (FcRn). Conformationally stable, half-life-extended monomeric Fc (mFc) variants offer a promising platform for antibodies and Fc-fusion therapeutics, enabling deeper tissue penetration, reduced toxicity, and simplified manufacturing. Due to the loss of binding avidity, mFc requires significantly enhanced FcRn-binding affinity at pH 6.0, but retaining weak binding at neutral pH to achieve comparable serum half-life, making engineering such mFc variants highly challenging. Mainly by computational design approach, we created mFc mutants with diverse human FcRn-binding profiles, including two variants that exhibit 17- and 47-fold stronger FcRn binding at pH 6.0 (KD of 30.7 nM and 88 nM) compared to a baseline mFc, while maintaining greater than 213-fold weaker binding at pH 7.4 (KD of 6,549 nM and 39,150 nM). These variants are highly soluble and display a melting temperature greater than 60.6 {degrees}C, underscoring their potential as platforms for extending the in vivo half-life of therapeutic modalities. Other mFc variants with different pH-responsive FcRn-binding profiles would potentially fit for other therapeutic needs. Moreover, transferring the same variations into IgG4 Fc generated IgG4 mFc variants with FcRn-binding properties similar to those of the parent IgG1 mFc variants. Furthermore, incorporating the FcRn-binding affinity-enhancing substitutions into native Fc produced a dimeric Fc variant that exhibits strong, pH-responsive FcRn-binding affinities, promising an extended half-life in serum.

bioengineering↗

Noncovalent antibody catenation on a target surface drastically increases the antigen-binding avidity

Immunoglobulin G (IgG) antibodies are widely used for diagnosis and therapy. Given the unique dimeric structure of IgG, we hypothesized that, by genetically fusing a homodimeric protein (catenator) to the C-terminus of IgG, reversible catenation of antibody molecules could be induced on a surface where target antigen molecules are abundant, and that it could be an effective way to greatly enhance the antigen-binding avidity. A thermodynamic simulation shows that quite low homodimerization affinity of a catenator, e.g. dissociation constant of 100 M, can enhance nanomolar antigen-binding avidity to a picomolar level, and that the fold enhancement sharply depends on the density of the antigen. In a proof-of-concept experiment where antigen molecules are immobilized on a biosensor tip, C-terminal fusion of a weakly homodimerizing protein to two different antibodies enhanced the antigen-binding avidity by at least 210 to 5,120 folds from the intrinsic binding avidity. Thus, the homodimerization-induced antibody catenation would be a simple, powerful and general approach to improve many antibody applications, including the detection of scarce biomarkers and targeted anticancer therapies.

biophysics↗