Structural constraints link differences in neutralization potency of human anti-Eastern equine encephalitis virus monoclonal antibodies

Author:

Williamson Lauren E.12,Bandyopadhyay Abhishek3ORCID,Bailey Kevin4ORCID,Sirohi Devika3ORCID,Klose Thomas3ORCID,Julander Justin G.4ORCID,Kuhn Richard J.3ORCID,Crowe James E.125ORCID

Affiliation:

1. The Vanderbilt Vaccine Center, Vanderbilt University Medical Center, Nashville, TN 37232

2. Department of Pathology, Microbiology, and Immunology, Vanderbilt University, Nashville, TN 37232

3. Purdue Institute of Inflammation, Immunology and Infectious Disease, Purdue University, West Lafayette, IN 47907

4. Institute for Antiviral Research, Utah State University, Logan, UT 84335

5. Department of Pediatrics, Vanderbilt University Medical Center, Nashville, TN 37232

Abstract

Selection and development of monoclonal antibody (mAb) therapeutics against pathogenic viruses depends on certain functional characteristics. Neutralization potency, or the half-maximal inhibitory concentration (IC 50 ) values, is an important characteristic of candidate therapeutic antibodies. Structural insights into the bases of neutralization potency differences between antiviral neutralizing mAbs are lacking. In this report, we present cryo-electron microscopy (EM) reconstructions of three anti-Eastern equine encephalitis virus (EEEV) neutralizing human mAbs targeting overlapping epitopes on the E2 protein, with greater than 20-fold differences in their respective IC 50 values. From our structural and biophysical analyses, we identify several constraints that contribute to the observed differences in the neutralization potencies. Cryo-EM reconstructions of EEEV in complex with these Fab fragments reveal structural constraints that dictate intravirion or intervirion cross-linking of glycoprotein spikes by their IgG counterparts as a mechanism of neutralization. Additionally, we describe critical features for the recognition of EEEV by these mAbs including the epitope–paratope interaction surface, occupancy, and kinetic differences in on-rate for binding to the E2 protein. Each constraint contributes to the extent of EEEV inhibition for blockade of virus entry, fusion, and/or egress. These findings provide structural and biophysical insights into the differences in mechanism and neutralization potencies of these antibodies, which help inform rational design principles for candidate vaccines and therapeutic antibodies for all icosahedral viruses.

Funder

HHS | NIH | National Institute of Allergy and Infectious Diseases

HHS | NIH | National Heart, Lung, and Blood Institute

DOD | Defense Threat Reduction Agency

HHS | NIH | National Center for Advancing Translational Sciences

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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