Aug 2026· Microbiology spectrum· Vol 14· 0 citations· 22 references
Medicine
TL;DR
Comparing wild-type XG83 and modified MuXG83 shows how allosteric tuning affects antibody-antigen compatibility in developing variations like Omicron, and indicates that non-epitope (potentially allosteric) changes to CDRH3 are also important while investigating potential development and neutralization before advancement.
Abstract
ABSTRACT SARS-CoV-2 antigenic evolution continues to erode the activity of first-generation monoclonal antibodies, underscoring the value of antibodies that recognize conserved features within the spike receptor-binding domain (RBD). As a model for breadth-oriented engineering, we assessed the RBD-directed antibody XG83, which has a CDRH3-dominated paratope. Utilizing the XG83-Wuhan RBD crystal structure as a reference, we integrated MOE alanine scanning and residue scanning with CDRH3 (A116-Y132) to identify chemically reasonable replacements and test interaction to an Omicron BA.1 RBD. The parental CDRH3-centric pose in comparative docking had a better score (−280.18) than the mutant MuXG83 (−254.2), along with 100-ns molecular dynamics showed that MuXG83 was less stable (with higher RMSD/RMSF with less favorable interaction energy). The ELISA results against Omicron BA.1 RBD demonstrated that XG83 had 40% stronger binding than MuXG83; convergence happened only at the highest concentration, concordant with SPR studies and the fact that mutation increased dissociation. According to this binding gap, BA.1 pseudovirus neutralization demonstrated that XG83 was much more powerful than MuXG83, showing that the E118L/F130H CDR-H3 alterations decreased functional activity against Omicron BA.1. These results imply that allosteric influences on interface stability and conformational dynamics by non-epitope CDR-H3 residues can affect antibody performance. Functional testing was confined to Omicron BA.1; therefore, larger variant-panel studies are needed to ascertain if such mutations affect antibody breadth. Our findings highlight a structure-guided approach for optimizing paratopes and indicate that non-epitope (potentially allosteric) changes to CDRH3 are also important while investigating potential development and neutralization before advancement. IMPORTANCE This study shows how modest allosteric characteristics in CDR-H3 control the delicate balance between neutralizing potency and breadth, making a timely and significant addition to SARS-CoV-2 antibody engineering. Using crystallography, alanine scanning, residue scanning, docking, molecular dynamics, and experimental ELISA and neutralization assays, this study offers a structure-guided framework for rational paratope optimization. The discovery of CDR-H3 residues that regulate long-range stability rather than just direct epitope contacts reveals an unappreciated aspect of antibody design and explains why some alterations improve anticipated interactions but degrade functional performance. Importantly, the comparison of wild-type XG83 and modified MuXG83 shows how allosteric tuning affects antibody-antigen compatibility in developing variations like Omicron. These findings illuminate conserved RBD recognition and offer strategies for building next-generation therapeutic antibodies that are more resistant to viral evolution. This study shows how modest allosteric characteristics in CDR-H3 control the delicate balance between neutralizing potency and breadth, making a timely and significant addition to SARS-CoV-2 antibody engineering. Using crystallography, alanine scanning, residue scanning, docking, molecular dynamics, and experimental ELISA and neutralization assays, this study offers a structure-guided framework for rational paratope optimization. The discovery of CDR-H3 residues that regulate long-range stability rather than just direct epitope contacts reveals an unappreciated aspect of antibody design and explains why some alterations improve anticipated interactions but degrade functional performance. Importantly, the comparison of wild-type XG83 and modified MuXG83 shows how allosteric tuning affects antibody-antigen compatibility in developing variations like Omicron. These findings illuminate conserved RBD recognition and offer strategies for building next-generation therapeutic antibodies that are more resistant to viral evolution.
A mouse-derived single-chain variable fragment phage display library is generated against the RBD of the SARS-CoV-2 spike protein to highlight the potential utility of these scFvs as candidate reagents for the development of improved diagnostic platforms and as scaffolds for next-generation monoclonal antibody-based therapeutics.
M. Alam, Saurabh Sharma, Romisa Razvi et al.· ACS Infectious Diseases· 0 citations
Two human-derived monoclonal antibodies are characterized that recognize conserved epitopes on the SARS-CoV-2 RBD and retain activity across antigenically distinct variants, and conserved, mutationally constrained epitopes may serve as targets for vaccines designed to elicit antibody responses resilient to ongoing SARS-CoV-2 evolution and future sarbecovirus emergence.
M. Abernathy, William B. Foreman, Jasmyn A. Lopez et al.· bioRxiv· 0 citations
Evaluations utilizing surface plasmon resonance and pseudovirus assays demonstrate that these sublineages exhibit significantly reduced human ACE2 receptor engagement compared to their parental strain, which suggests these variants will soon spread globally and emphasize the critical need for ongoing surveillance to monitor D420N-carrying lineages.
The receptor-binding domain (RBD) of the SARS-CoV-2 Spike protein remains a central target for antiviral drug development. Recent in silico studies have revealed an expansion of amyloidogenic regions within the RBD of the Omicron variant, raising the possibility that amyloid-prone peptide fragments could modulate Spike function or host–virus interactions. In this study, we combined experimental assays with multiscale computational modeling to systematically characterise two short RBD-derived peptides: Pep-2 (YFPLQSYGFQ) from the ancestral Wuhan strain and Pep-3 (YFPLRSYSFR) from the Omicron BA.1 variant, the latter being predicted to have higher amyloidogenic potential. Cell-based assays demonstrated that neither peptide exhibited intrinsic cytotoxic or cytostatic effects on human lung fibroblasts or A549 lung adenocarcinoma cells at physiologically relevant concentrations, whereas significant cytotoxicity was observed in Vero E6 cells. In infection models with the B.1.1.1 (Wuhan) and BA.1 (Omicron) variants, the peptides unexpectedly enhanced virus-induced cytopathic effects at lower concentrations but inhibited viral infection at higher concentrations, indicating to a dose-dependent modulatory role for these short amyloidogenic RBD fragments. Fluorescence spectroscopy measurements did not detect the formation of stable thioflavin-T-positive amyloid fibrils. Computational analyses revealed that both peptides interact with the Spike RBD via multiple energetically favorable yet spatially heterogeneous modes, mostly outside the ACE2-binding site. Moreover, their predicted binding affinities for the ACE2 receptor were comparable, suggesting an additional route of interaction via the host receptor. Collectively, our findings demonstrate that these short amyloidogenic RBD-derived peptides exert a complex antiviral profile, with their interactions with both viral and host factors potentially shaping infection outcomes. This highlights the importance of spatially targeted and conformationally constrained peptide designs to effectively harness amyloidogenic features for antiviral therapy.
M. Nikiforova, S. Grishin, A. Aksenova et al.· International Journal of Mol...· 0 citations
Broadly neutralizing antibodies (bnAbs) targeting conserved regions of the betacoronavirus spike are important for pan-betacoronavirus protection and pandemic preparedness. Here, we report the isolation of a human monoclonal antibody, CC65.1, from a SARS-CoV-2 convalescent donor that targets the conserved S2 stem helix region. CC65.1 neutralizes various sarbecoviruses, including SARS-CoV-2, and binds to the MERS-CoV spike but lacks MERS-CoV-neutralizing activity due to insufficient binding affinity. We utilized directed evolution to enhance the binding affinity of CC65.1 for the MERS-CoV S2 stem helix, yielding engineered antibody variants with newly acquired MERS-CoV-neutralizing activity. High-resolution structural analysis reveals key paratope mutations that enhance binding and stabilize epitope engagement. Our findings demonstrate the potential of in vitro affinity maturation to expand the neutralization breadth of stem-helix-targeting antibodies across divergent betacoronaviruses. This work supports the development of engineered bnAbs for broadly protective betacoronavirus countermeasures and provides a strategy for achieving cross-lineage neutralization.
Panpan Zhou, M. Yuan, Yue-Xiu Zhang et al.· PLoS Pathogens· 0 citations
Analysis suggests mAbs generically defined as class 1/4 mAbs may be separated into two classes, like Class 1/4 mAbs, and class 4/1 mAbs that make extensive interactions with the class-4 epitope and limited contacts with the class-1 knob498-596.
M. Piepenbrink, Yao Ma, Simran Panjwani et al.· iScience· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.