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Broadly neutralizing SARS-CoV-2 antibodies through epitope-based selection from convalescent patients

Author

Listed:
  • Romain Rouet

    (Garvan Institute of Medical Research
    Faculty of Medicine)

  • Jake Y. Henry

    (Garvan Institute of Medical Research
    Faculty of Medicine)

  • Matt D. Johansen

    (Centenary Institute and University of Technology Sydney)

  • Meghna Sobti

    (Faculty of Medicine
    Victor Chang Cardiac Research Institute)

  • Harikrishnan Balachandran

    (Faculty of Medicine
    UNSW Sydney)

  • David B. Langley

    (Garvan Institute of Medical Research
    Faculty of Medicine)

  • Gregory J. Walker

    (Faculty of Medicine
    UNSW Sydney
    Prince of Wales Hospital)

  • Helen Lenthall

    (Garvan Institute of Medical Research
    Faculty of Medicine)

  • Jennifer Jackson

    (Garvan Institute of Medical Research
    Faculty of Medicine)

  • Stephanie Ubiparipovic

    (Garvan Institute of Medical Research
    Faculty of Medicine)

  • Ohan Mazigi

    (Garvan Institute of Medical Research
    Faculty of Medicine)

  • Peter Schofield

    (Garvan Institute of Medical Research
    Faculty of Medicine)

  • Deborah L. Burnett

    (Garvan Institute of Medical Research
    Faculty of Medicine)

  • Simon H. J. Brown

    (University of Wollongong)

  • Marianne Martinello

    (Faculty of Medicine
    UNSW Sydney)

  • Bernard Hudson

    (Royal North Shore Hospital)

  • Nicole Gilroy

    (Westmead Hospital)

  • Jeffrey J. Post

    (Prince of Wales Hospital)

  • Anthony Kelleher

    (Faculty of Medicine
    UNSW Sydney)

  • Hans-Martin Jäck

    (Friedrich-Alexander University Erlangen-Nürnberg and University Hospital Erlangen)

  • Christopher C. Goodnow

    (Garvan Institute of Medical Research
    Faculty of Medicine)

  • Stuart G. Turville

    (Faculty of Medicine
    UNSW Sydney)

  • William D. Rawlinson

    (Faculty of Medicine
    Prince of Wales Hospital)

  • Rowena A. Bull

    (Faculty of Medicine
    UNSW Sydney)

  • Alastair G. Stewart

    (Faculty of Medicine
    Victor Chang Cardiac Research Institute)

  • Philip M. Hansbro

    (Prince of Wales Hospital)

  • Daniel Christ

    (Garvan Institute of Medical Research
    Faculty of Medicine)

Abstract

Emerging variants of concern (VOCs) are threatening to limit the effectiveness of SARS-CoV-2 monoclonal antibodies and vaccines currently used in clinical practice; broadly neutralizing antibodies and strategies for their identification are therefore urgently required. Here we demonstrate that broadly neutralizing antibodies can be isolated from peripheral blood mononuclear cells of convalescent patients using SARS-CoV-2 receptor binding domains carrying epitope-specific mutations. This is exemplified by two human antibodies, GAR05, binding to epitope class 1, and GAR12, binding to a new epitope class 6 (located between class 3 and 5). Both antibodies broadly neutralize VOCs, exceeding the potency of the clinical monoclonal sotrovimab (S309) by orders of magnitude. They also provide prophylactic and therapeutic in vivo protection of female hACE2 mice against viral challenge. Our results indicate that exposure to SARS-CoV-2 induces antibodies that maintain broad neutralization against emerging VOCs using two unique strategies: either by targeting the divergent class 1 epitope in a manner resistant to VOCs (ACE2 mimicry, as illustrated by GAR05 and mAbs P2C-1F11/S2K14); or alternatively, by targeting rare and highly conserved epitopes, such as the new class 6 epitope identified here (as illustrated by GAR12). Our results provide guidance for next generation monoclonal antibody development and vaccine design.

Suggested Citation

  • Romain Rouet & Jake Y. Henry & Matt D. Johansen & Meghna Sobti & Harikrishnan Balachandran & David B. Langley & Gregory J. Walker & Helen Lenthall & Jennifer Jackson & Stephanie Ubiparipovic & Ohan Ma, 2023. "Broadly neutralizing SARS-CoV-2 antibodies through epitope-based selection from convalescent patients," Nature Communications, Nature, vol. 14(1), pages 1-13, December.
  • Handle: RePEc:nat:natcom:v:14:y:2023:i:1:d:10.1038_s41467-023-36295-5
    DOI: 10.1038/s41467-023-36295-5
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    as
    1. Tyler N. Starr & Nadine Czudnochowski & Zhuoming Liu & Fabrizia Zatta & Young-Jun Park & Amin Addetia & Dora Pinto & Martina Beltramello & Patrick Hernandez & Allison J. Greaney & Roberta Marzi & Will, 2021. "SARS-CoV-2 RBD antibodies that maximize breadth and resistance to escape," Nature, Nature, vol. 597(7874), pages 97-102, September.
    2. Zhiqiang Ku & Xuping Xie & Edgar Davidson & Xiaohua Ye & Hang Su & Vineet D. Menachery & Yize Li & Zihao Yuan & Xianwen Zhang & Antonio E. Muruato & Ariadna Grinyo i Escuer & Breanna Tyrell & Kyle Doo, 2021. "Author Correction: Molecular determinants and mechanism for antibody cocktail preventing SARS-CoV-2 escape," Nature Communications, Nature, vol. 12(1), pages 1-1, December.
    3. Pengfei Wang & Manoj S. Nair & Lihong Liu & Sho Iketani & Yang Luo & Yicheng Guo & Maple Wang & Jian Yu & Baoshan Zhang & Peter D. Kwong & Barney S. Graham & John R. Mascola & Jennifer Y. Chang & Mich, 2021. "Antibody resistance of SARS-CoV-2 variants B.1.351 and B.1.1.7," Nature, Nature, vol. 593(7857), pages 130-135, May.
    4. Christopher O. Barnes & Claudia A. Jette & Morgan E. Abernathy & Kim-Marie A. Dam & Shannon R. Esswein & Harry B. Gristick & Andrey G. Malyutin & Naima G. Sharaf & Kathryn E. Huey-Tubman & Yu E. Lee &, 2020. "SARS-CoV-2 neutralizing antibody structures inform therapeutic strategies," Nature, Nature, vol. 588(7839), pages 682-687, December.
    5. Davide F. Robbiani & Christian Gaebler & Frauke Muecksch & Julio C. C. Lorenzi & Zijun Wang & Alice Cho & Marianna Agudelo & Christopher O. Barnes & Anna Gazumyan & Shlomo Finkin & Thomas Hägglöf & Th, 2020. "Convergent antibody responses to SARS-CoV-2 in convalescent individuals," Nature, Nature, vol. 584(7821), pages 437-442, August.
    6. Tal Noy-Porat & Efi Makdasi & Ron Alcalay & Adva Mechaly & Yinon Levy & Adi Bercovich-Kinori & Ayelet Zauberman & Hadas Tamir & Yfat Yahalom-Ronen & Ma’ayan Israeli & Eyal Epstein & Hagit Achdout & Sh, 2020. "A panel of human neutralizing mAbs targeting SARS-CoV-2 spike at multiple epitopes," Nature Communications, Nature, vol. 11(1), pages 1-7, December.
    7. Dora Pinto & Young-Jun Park & Martina Beltramello & Alexandra C. Walls & M. Alejandra Tortorici & Siro Bianchi & Stefano Jaconi & Katja Culap & Fabrizia Zatta & Anna De Marco & Alessia Peter & Barbara, 2020. "Cross-neutralization of SARS-CoV-2 by a human monoclonal SARS-CoV antibody," Nature, Nature, vol. 583(7815), pages 290-295, July.
    8. Jiwan Ge & Ruoke Wang & Bin Ju & Qi Zhang & Jing Sun & Peng Chen & Senyan Zhang & Yuling Tian & Sisi Shan & Lin Cheng & Bing Zhou & Shuo Song & Juanjuan Zhao & Haiyan Wang & Xuanling Shi & Qiang Ding , 2021. "Antibody neutralization of SARS-CoV-2 through ACE2 receptor mimicry," Nature Communications, Nature, vol. 12(1), pages 1-9, December.
    9. Zhiqiang Ku & Xuping Xie & Edgar Davidson & Xiaohua Ye & Hang Su & Vineet D. Menachery & Yize Li & Zihao Yuan & Xianwen Zhang & Antonio E. Muruato & Ariadna Grinyo i Escuer & Breanna Tyrell & Kyle Doo, 2021. "Molecular determinants and mechanism for antibody cocktail preventing SARS-CoV-2 escape," Nature Communications, Nature, vol. 12(1), pages 1-13, December.
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    1. Yanqun Wang & An Yan & Deyong Song & Maoqin Duan & Chuangchuang Dong & Jiantao Chen & Zihe Jiang & Yuanzhu Gao & Muding Rao & Jianxia Feng & Zhaoyong Zhang & Ruxi Qi & Xiaomin Ma & Hong Liu & Beibei Y, 2024. "Identification of a highly conserved neutralizing epitope within the RBD region of diverse SARS-CoV-2 variants," Nature Communications, Nature, vol. 15(1), pages 1-15, December.

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