4.7 Article

Antiparallel Conformation of Knob and Hole Aglycosylated Half-Antibody Homodimers Is Mediated by a CH2-CH3 Hydrophobic Interaction

Journal

JOURNAL OF MOLECULAR BIOLOGY
Volume 426, Issue 9, Pages 1947-1957

Publisher

ACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD
DOI: 10.1016/j.jmb.2014.02.015

Keywords

bispecific antibody; heterodimer interface; antibody structure; hydrophobic interface

Funding

  1. Natural Sciences and Engineering Research Council of Canada
  2. National Research Council Canada
  3. Province of Saskatchewan
  4. University of Saskatchewan
  5. Western Economic Diversification Canada
  6. Office of Science, Office of Basic Energy Sciences, of the U.S. Department of Energy [DE-AC02-05CH11231]
  7. Canadian Institutes of Health Research

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Bispecific antibody and antibody-like molecules are of wide interest as potential therapeutics that can recognize two distinct targets. Among the variety of ways such molecules have been engineered is by creating knob and hole heterodimerization sites in the CH3 domains of two antibody heavy chains. The molecules produced in this manner maintain their biological activities while differing very little from the native human IgG sequence. To better understand the knob-into-hole interface, the molecular mechanism of heterodimerization, and to engineer Fc domains that could improve the assembly and purity of heterodimeric reaction products, we sought crystal structures of aglycosylated heterodimeric and homodimeric knob and hole Fc fragments derived from bacterial expression. The structure of the knob-into-hole Fc was determined at 2.64 angstrom. Except for the sites of mutation, the structure is very similar to that of the native human IgG1 Fc, consistent with a heterodimer interaction kinetic K-D of <1 nM. Homodimers of the knob and :hole mutants were also obtained, and their X-ray structures were determined at resolutions 2.5 A and 2.1 angstrom, respectively. Both kinds of homodimers adopt a head-to-tail quaternary structure and thus do not contain direct knob/knob or hole/hole CH3 interactions. The head-to-tail arrangement was disfavored by adding site-directed mutations at F241 and F243 in the CH2 domains, leading to increases in both rate and efficiency of bispecific (heterodimer) assembly. (c) 2014 Published by Elsevier Ltd.

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