Synthetic recombinant bat SARS-like coronavirus is infectious in cultured cells and in mice

Синтетический рекомбинантный SARS-подобный коронавирус летучих мышей инфекционен в культуре клеток и у мышей
Michelle M. Becker, Rachel L. Graham, Eric Donaldson, Barry Rockx, Amy Sims, Timothy P. Sheahan, Raymond J. Pickles, Davide Corti, Robert E. Johnston, Ralph S. Baric, Mark R. Denison
2008-11-26

Bat SARS-like coronavirusSpike receptor-binding domainmouse infectionsynthetic recombinant viruszoonotic emergence
Defining prospective pathways by which zoonoses evolve and emerge as human pathogens is critical for anticipating and controlling both natural and deliberate pandemics. However, predicting tenable pathways of animal-to-human movement has been hindered by challenges in identifying reservoir species, cultivating zoonotic organisms in culture, and isolating full-length genomes for cloning and genetic studies. The ability to design and recover pathogens reconstituted from synthesized cDNAs has the potential to overcome these obstacles by allowing studies of replication and pathogenesis without identification of reservoir species or cultivation of primary isolates. Here, we report the design, synthesis, and recovery of the largest synthetic replicating life form, a 29.7-kb bat severe acute respiratory syndrome (SARS)-like coronavirus (Bat-SCoV), a likely progenitor to the SARS-CoV epidemic. To test a possible route of emergence from the noncultivable Bat-SCoV to human SARS-CoV, we designed a consensus Bat-SCoV genome and replaced the Bat-SCoV Spike receptor-binding domain (RBD) with the SARS-CoV RBD (Bat-SRBD). Bat-SRBD was infectious in cell culture and in mice and was efficiently neutralized by antibodies specific for both bat and human CoV Spike proteins. Rational design, synthesis, and recovery of hypothetical recombinant viruses can be used to investigate mechanisms of transspecies movement of zoonoses and has great potential to aid in rapid public health responses to known or predicted emerging microbial threats.
1
A consensus Bat-SCoV genome with its Spike receptor-binding domain replaced by the SARS-CoV RBD was successfully generated as Bat-SRBD.
2
Bat-SRBD was efficiently neutralized by antibodies targeting both bat and human coronavirus Spike proteins.
3
Bat-SRBD was infectious in cultured cells and in mice, demonstrating that the engineered virus could replicate across experimental systems.
4
Researchers designed, synthesized, and recovered a 29.7-kb bat SARS-like coronavirus, described as the largest synthetic replicating life form.
5
Synthetic reconstruction and rational design of hypothetical recombinant viruses can enable investigation of zoonotic transspecies emergence without culturing primary isolates.

Synthetic recombinant bat SARS-like coronavirus (Bat-SRBD) infectious in cultured cells and mice

Its infectivity, replication, and neutralization as a model of potential bat-to-human emergence

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2008-11-26
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Authors
Michelle M. Becker
Rachel L. Graham
Eric Donaldson
Barry Rockx
Amy Sims
Timothy P. Sheahan
Raymond J. Pickles
Davide Corti
Robert E. Johnston
Ralph S. Baric
Mark R. Denison
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