Human Monoclonal Antibody Combination against SARS Coronavirus: Synergy and Coverage of Escape Mutants
Комбинация человеческих моноклональных антител против коронавируса SARS: синергия и охват мутантов, избегающих нейтрализации
2006-06-23
SCID: 54.1/akwn3jun
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SARS-CoV neutralizing antibodiesantibody synergymonoclonal antibody combinationneutralization escape mutantsspike glycoprotein receptor-binding domain
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Abstract (AI)
BACKGROUND: Experimental animal data show that protection against severe acute respiratory syndrome coronavirus (SARS-CoV) infection with human monoclonal antibodies (mAbs) is feasible. For an effective immune prophylaxis in humans, broad coverage of different strains of SARS-CoV and control of potential neutralization escape variants will be required. Combinations of virus-neutralizing, noncompeting mAbs may have these properties. METHODS AND FINDINGS: Human mAb CR3014 has been shown to completely prevent lung pathology and abolish pharyngeal shedding of SARS-CoV in infected ferrets. We generated in vitro SARS-CoV variants escaping neutralization by CR3014, which all had a single P462L mutation in the glycoprotein spike (S) of the escape virus. In vitro experiments confirmed that binding of CR3014 to a recombinant S fragment (amino acid residues 318-510) harboring this mutation was abolished. We therefore screened an antibody-phage library derived from blood of a convalescent SARS patient for antibodies complementary to CR3014. A novel mAb, CR3022, was identified that neutralized CR3014 escape viruses, did not compete with CR3014 for binding to recombinant S1 fragments, and bound to S1 fragments derived from the civet cat SARS-CoV-like strain SZ3. No escape variants could be generated with CR3022. The mixture of both mAbs showed neutralization of SARS-CoV in a synergistic fashion by recognizing different epitopes on the receptor-binding domain. Dose reduction indices of 4.5 and 20.5 were observed for CR3014 and CR3022, respectively, at 100% neutralization. Because enhancement of SARS-CoV infection by subneutralizing antibody concentrations is of concern, we show here that anti-SARS-CoV antibodies do not convert the abortive infection of primary human macrophages by SARS-CoV into a productive one. CONCLUSIONS: The combination of two noncompeting human mAbs CR3014 and CR3022 potentially controls immune escape and extends the breadth of protection. At the same time, synergy between CR3014 and CR3022 may allow for a lower total antibody dose to be administered for passive immune prophylaxis of SARS-CoV infection.
Key Findings
1
CR3014-resistant SARS-CoV variants consistently carried a single P462L mutation in the spike glycoprotein, abolishing CR3014 binding to the affected S fragment.
2
Combining CR3014 and CR3022 produced synergistic SARS-CoV neutralization, with dose-reduction indices of 4.5 and 20.5 at 100% neutralization, respectively.
3
No escape variants were generated with CR3022 under the reported in vitro selection conditions.
4
The antibody combination potentially broadens protection and limits immune escape; anti-SARS-CoV antibodies did not convert abortive infection of primary human macrophages into productive infection.
5
The novel human monoclonal antibody CR3022 neutralized CR3014 escape viruses, targeted a noncompeting epitope, and bound spike fragments from civet SARS-CoV-like strain SZ3.
Research Object
SARS-CoV and its neutralization-escape variants, including variants with mutations in the spike glycoprotein receptor-binding domain
Research Subject
The synergistic neutralization, breadth of coverage, and control of immune escape achieved by combining noncompeting human monoclonal antibodies CR3014 and CR3022
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2006-06-23
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