Amino acid substitutions in NSP6 and NSP13 of SARS-CoV-2 contribute to superior virus growth at low temperatures

被引:0
|
作者
Furusawa, Yuri [1 ,2 ]
Kiso, Maki [3 ]
Uraki, Ryuta [1 ,2 ,3 ]
Sakai-Tagawa, Yuko [2 ]
Nagai, Hiroyuki [4 ]
Koga, Michiko [4 ,5 ]
Kashima, Yukie [6 ]
Hojo, Masayuki [7 ]
Iwamoto, Noriko [8 ]
Iwatsuki-Horimoto, Kiyoko [3 ]
Ohmagari, Norio [8 ]
Suzuki, Yutaka [6 ]
Yotsuyanagi, Hiroshi [4 ,5 ]
Halfmann, Peter J. [9 ]
Kamitani, Wataru [10 ]
Yamayoshi, Seiya [1 ,2 ,3 ,11 ]
Kawaoka, Yoshihiro [1 ,2 ,3 ,9 ]
机构
[1] Natl Ctr Global Hlth & Med Res Inst, Res Ctr Global Viral Dis, Tokyo, Tokyo, Japan
[2] Univ Tokyo, Inst Med Sci, Div Virol, Tokyo, Tokyo, Japan
[3] Univ Tokyo, Pandem Preparedness Infect & Adv Res Ctr, Tokyo, Tokyo, Japan
[4] Univ Tokyo, IMSUT Hosp, Inst Med Sci, Dept Infect Dis & Appl Immunol, Tokyo, Tokyo, Japan
[5] Univ Tokyo, Inst Med Sci, Adv Clin Res Ctr, Div Infect Dis, Tokyo, Tokyo, Japan
[6] Univ Tokyo, Grad Sch Frontier Sci, Dept Computat Biol & Med Sci, Tokyo, Tokyo, Japan
[7] Natl Ctr Global Hlth & Med, Dept Resp Dis, Tokyo, Tokyo, Japan
[8] Natl Ctr Global Hlth & Med, Dis Control & Prevent Ctr, Tokyo, Tokyo, Japan
[9] Univ Wisconsin, Sch Vet Med, Dept Pathobiol Sci, Madison, WI 53706 USA
[10] Gunma Univ, Grad Sch Med, Dept Infect Dis & Host Def, Gunma, Japan
[11] Univ Tokyo, Inst Med Sci, Int Res Ctr Infect Dis, Tokyo, Tokyo, Japan
关键词
SARS-CoV-2; COVID-19; coronavirus;
D O I
10.1128/jvi.02217-24
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
In general, severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) replicates well at 37 degrees C, which is the temperature of the human lower respiratory tract, but it poorly at 30 degrees C-32 degrees C, which is the temperature of the human upper respiratory tract. The replication efficiency of SARS-CoV-2 in the upper respiratory tract may directly affect its transmissibility. In this study, an XBB.1.5 isolate showed superior replicative ability at 32 degrees C and 30 degrees C, whereas most other Omicron sub-variant isolates showed limited growth. Deep sequencing analysis demonstrated that the frequencies of viruses possessing the NSP6-S163P and NSP13-P238S substitutions increased to more than 97% during propagation of the XBB.1.5 isolate at 32 degrees C but did not reach 55% at 37 degrees C. Reverse genetics revealed that these substitutions contributed to superior virus growth in vitro at these low temperatures by improving virus genome replication. Mutant virus possessing both substitutions showed slightly higher virus titers in the upper respiratory tract of hamsters compared to the parental virus; however, transmissibility between hamsters was similar for the mutant and parental viruses. Taken together, our findings indicate that NSP6-S163P and NSP13-P238S contribute to superior virus growth at low temperatures in vitro and in the upper respiratory tract of hamsters. IMPORTANCE Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) replicates efficiently at 37 degrees C. However, the temperature of the human upper airway is 30 degrees C-32 degrees C. Therefore, the replicative ability of SARS-CoV-2 at low temperatures could influence virus replication in the upper airway and transmissibility. In this study, we assessed the growth of Omicron sub-variants at low temperatures and found that an XBB.1.5 isolate showed increased replicative ability. By deep sequencing analysis and reverse genetics, we found that amino acid changes in NSP6 and NSP13 contribute to the low-temperature growth; these changes improved RNA polymerase activity at low temperatures and enhanced virus replication in the upper airway of hamsters. Although these substitutions alone did not drastically affect virus transmissibility, in combination with other substitutions, they could affect virus replication in humans. Furthermore, since these substitutions enhance virus replication in cultured cells, they could be used to improve the production of inactivated or live attenuated vaccine virus.
引用
收藏
页数:15
相关论文
共 50 条
  • [1] The multiple roles of nsp6 in the molecular pathogenesis of SARS-CoV-2
    Bills, Cody
    Xie, Xuping
    Shi, Pei-Yong
    ANTIVIRAL RESEARCH, 2023, 213
  • [2] SARS-CoV-2 nsp13, nsp14, nsp15 and orf6 function as potent interferon antagonists
    Yuen, Chun-Kit
    Lam, Joy-Yan
    Wong, Wan-Man
    Mak, Long-Fung
    Wang, Xiaohui
    Chu, Hin
    Cai, Jian-Piao
    Jin, Dong-Yan
    To, Kelvin Kai-Wang
    Chan, Jasper Fuk-Woo
    Yuen, Kwok-Yung
    Kok, Kin-Hang
    EMERGING MICROBES & INFECTIONS, 2020, 9 (01) : 1418 - 1428
  • [3] What a twist: structural biology of the SARS-CoV-2 helicase nsp13
    Horrell, Sam
    Martino, Sam
    Kirsten, Ferdinand
    Berta, Denes
    Santoni, Gianluca
    Thorn, Andrea
    CRYSTALLOGRAPHY REVIEWS, 2023, 29 (04) : 202 - 227
  • [4] Structure, mechanism and crystallographic fragment screening of the SARS-CoV-2 NSP13 helicase
    Newman, Joseph A.
    Douangamath, Alice
    Yadzani, Setayesh
    Yosaatmadja, Yuliana
    Aimon, Antony
    Brandao-Neto, Jose
    Dunnett, Louise
    Gorrie-stone, Tyler
    Skyner, Rachael
    Fearon, Daren
    Schapira, Matthieu
    von Delft, Frank
    Gileadi, Opher
    NATURE COMMUNICATIONS, 2021, 12 (01)
  • [5] In-Silico targeting of SARS-CoV-2 NSP6 for drug and natural products repurposing
    Abdelkader, Ahmed
    Elzemrany, Amal A.
    El-Nadi, Mennatullah
    Elsabbagh, Sherif A.
    Shehata, Moustafa A.
    Eldehna, Wagdy M.
    El-Hadidi, Mohamed
    Ibrahim, Tamer M.
    VIROLOGY, 2022, 573 : 96 - 110
  • [6] The stalk domain of SARS-CoV-2 NSP13 is essential for its helicase activity
    Yue, Kun
    Yao, Bin
    Shi, Yingchao
    Yang, Yang
    Qian, Zhaohui
    Ci, Yali
    Shi, Lei
    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2022, 601 : 129 - 136
  • [7] In Silico Insights towards the Identification of SARS-CoV-2 NSP13 Helicase Druggable Pockets
    Ricci, Federico
    Gitto, Rosaria
    Pitasi, Giovanna
    De Luca, Laura
    BIOMOLECULES, 2022, 12 (04)
  • [8] Discovery of COVID-19 Inhibitors Targeting the SARS-CoV-2 Nsp13 Helicase
    White, Mark Andrew
    Lin, Wei
    Cheng, Xiaodong
    JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2020, 11 (21) : 9144 - 9151
  • [9] Screening of FDA-approved compound library identifies potential small-molecule inhibitors of SARS-CoV-2 non-structural proteins NSP1, NSP4, NSP6 and NSP13: molecular modeling and molecular dynamics studies
    Shobana Sundar
    Lokesh Thangamani
    Shanmughavel Piramanayagam
    Chandrasekar Narayanan Rahul
    Natarajan Aiswarya
    Kanagaraj Sekar
    Jeyakumar Natarajan
    Journal of Proteins and Proteomics, 2021, 12 (3) : 161 - 175
  • [10] In Silico Binding of 2-Aminocyclobutanones to SARS-CoV-2 Nsp13 Helicase and Demonstration of Antiviral Activity
    Mohammad, Thahani S. Habeeb
    Gupta, Yash
    Reidl, Cory T.
    Nicolaescu, Vlad
    Gula, Haley
    Durvasula, Ravi
    Kempaiah, Prakasha
    Becker, Daniel P.
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2023, 24 (06)