Potent cross-reactive neutralization of SARS coronavirus isolates by human monoclonal antibodies.

Zhongyu Zhu1 Samitabh Chakraborti Yuxian He Anjeanette Roberts Tim Sheahan Xiaodong Xiao Lisa E Hensley Ponraj Prabakaran Barry Rockx Igor A Sidorov Davide Corti Leatrice Vogel Yang Feng Jae-Ouk Kim Lin-Fa Wang Ralph Baric Antonio Lanzavecchia Kristopher M Curtis Gary J Nabel Kanta Subbarao Shibo Jiang Dimiter S Dimitrov
Affiliations 1 institutions
  1. Protein Interactions Group, Center for Cancer Research Nanobiology Program, SAIC-Frederick, Inc., National Cancer Institute-Frederick, National Institutes of Health, Frederick, MD 21702, USA.

Abstract

The severe acute respiratory syndrome coronavirus (SARS-CoV) caused a worldwide epidemic in late 2002/early 2003 and a second outbreak in the winter of 2003/2004 by an independent animal-to-human transmission. The GD03 strain, which was isolated from an index patient of the second outbreak, was reported to resist neutralization by the human monoclonal antibodies (hmAbs) 80R and S3.1, which can potently neutralize isolates from the first outbreak. Here we report that two hmAbs, m396 and S230.15, potently neutralized GD03 and representative isolates from the first SARS outbreak (Urbani, Tor2) and from palm civets (SZ3, SZ16). These antibodies also protected mice challenged with the Urbani or recombinant viruses bearing the GD03 and SZ16 spike (S) glycoproteins. Both antibodies competed with the SARS-CoV receptor, ACE2, for binding to the receptor-binding domain (RBD), suggesting a mechanism of neutralization that involves interference with the SARS-CoV-ACE2 interaction. Two putative hot-spot residues in the RBD (Ile-489 and Tyr-491) were identified within the SARS-CoV spike that likely contribute to most of the m396-binding energy. Residues Ile-489 and Tyr-491 are highly conserved within the SARS-CoV spike, indicating a possible mechanism of the m396 cross-reactivity. Sequence analysis and mutagenesis data show that m396 might neutralize all zoonotic and epidemic SARS-CoV isolates with known sequences, except strains derived from bats. These antibodies exhibit cross-reactivity against isolates from the two SARS outbreaks and palm civets and could have potential applications for diagnosis, prophylaxis, and treatment of SARS-CoV infections.

Supporting text Virus Host Location
Animals 1948 Antibodies, Monoclonal 26 Binding, Competitive 4 Cell Fusion 6 Cross Reactions 21 Disease Models, Animal 77 Disease Outbreaks 170 Humans 1440 Models, Biological 16 Models, Molecular 99 Mutagenesis 7 Nandiniidae 1 Neutralization Tests 31 Protein Structure, Tertiary 29 Receptors, Cell Surface 28 Severe Acute Respiratory Syndrome 22 Severe acute respiratory syndrome-related coronavirus 78 Viral Proteins 152 Virus Internalization 100 Virus Replication 191

Evidence records

2 total
Zoonotic Surveillance
1 records · 1 evidence types
Evidence type
1 records
OVE445
Key finding

The GD03 strain of SARS-CoV was isolated from an index patient involved in the second SARS outbreak, confirming recovery of infectious virus from a human clinical case.

Virus
Host
Location
Not specified
Supporting text

The GD03 strain, which was isolated from an index patient of the second outbreak, was reported to resist neutralization by the human monoclonal antibodies (hmAbs) 80R and S3.1.

Sample type
clinical sample
Functional Mechanism
1 records · 1 evidence types
Evidence type
1 records
OVE447
Key finding

The SARS-CoV spike protein binds to the cellular receptor ACE2, and antibodies m396 and S230.15 compete with ACE2 for receptor-binding domain attachment, confirming ACE2 as the viral receptor.

Virus
Host
Location
Not specified
Supporting text

Both antibodies competed with the SARS-CoV receptor, ACE2, for binding to the receptor-binding domain (RBD), suggesting a mechanism of neutralization that involves interference with the SARS-CoV-ACE2 interaction.

Method
receptor-binding competition assay | neutralization assay
Receptors
ACE2
Host factors
m396 | S230.15