Structures and functions of coronavirus replication-transcription complexes and their relevance for SARS-CoV-2 drug design

被引:304
作者
Malone, Brandon [1 ]
Urakova, Nadya [2 ]
Snijder, Eric J. [2 ]
Campbell, Elizabeth A. [1 ]
机构
[1] Rockefeller Univ, Lab Mol Biophys, 1230 York Ave, New York, NY 10021 USA
[2] Leiden Univ, Med Ctr, Dept Med Microbiol, Leiden, Netherlands
关键词
DEPENDENT RNA-POLYMERASE; SARS-CORONAVIRUS; HEPATITIS-VIRUS; NUCLEOCAPSID PROTEIN; ENZYMATIC-ACTIVITIES; MOLECULAR-BIOLOGY; FIDELITY; HELICASE; GENOME; REVEALS;
D O I
10.1038/s41580-021-00432-z
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) has killed millions of people and continues to cause massive global upheaval. Coronaviruses are positive-strand RNA viruses with an unusually large genome of similar to 30 kb. They express an RNA-dependent RNA polymerase and a cohort of other replication enzymes and supporting factors to transcribe and replicate their genomes. The proteins performing these essential processes are prime antiviral drug targets, but drug discovery is hindered by our incomplete understanding of coronavirus RNA synthesis and processing. In infected cells, the RNA-dependent RNA polymerase must coordinate with other viral and host factors to produce both viral mRNAs and new genomes. Recent research aiming to decipher and contextualize the structures, functions and interplay of the subunits of the SARS-CoV-2 replication and transcription complex proteins has burgeoned. In this Review, we discuss recent advancements in our understanding of the molecular basis and complexity of the coronavirus RNA-synthesizing machinery. Specifically, we outline the mechanisms and regulation of RNA translation, replication and transcription. We also discuss the composition of the replication and transcription complexes and their suitability as targets for antiviral therapy.
引用
收藏
页码:21 / 39
页数:19
相关论文
共 170 条
[1]   Mechanism of Nucleic Acid Unwinding by SARS-CoV Helicase [J].
Adedeji, Adeyemi O. ;
Marchand, Bruno ;
te Velthuis, Aartjan J. W. ;
Snijder, Eric J. ;
Weiss, Susan ;
Eoff, Robert L. ;
Singh, Kamalendra ;
Sarafianos, Stefan G. .
PLOS ONE, 2012, 7 (05) :e36521
[2]   Small-Molecule Antiviral β-D-N4-Hydroxycytidine Inhibits a Proofreading-Intact Coronavirus with a High Genetic Barrier to Resistance [J].
Agostini, Maria L. ;
Pruijssers, Andrea J. ;
Chappell, James D. ;
Gribble, Jennifer ;
Lu, Xiaotao ;
Andres, Erica L. ;
Bluemling, Gregory R. ;
Lockwood, Mark A. ;
Sheahan, Timothy P. ;
Sims, Amy C. ;
Natchus, Michael G. ;
Saindane, Manohar ;
Kolykhalov, Alexander A. ;
Painter, George R. ;
Baric, Ralph S. ;
Denison, Mark R. .
JOURNAL OF VIROLOGY, 2019, 93 (24)
[3]   Coronavirus Susceptibility to the Antiviral Remdesivir (GS-5734) Is Mediated by the Viral Polymerase and the Proofreading Exoribonuclease [J].
Agostini, Maria L. ;
Andres, Erica L. ;
Sims, Amy C. ;
Graham, Rachel L. ;
Sheahan, Timothy P. ;
Lu, Xiaotao ;
Smith, Everett Clinton ;
Case, James Brett ;
Feng, Joy Y. ;
Jordan, Robert ;
Ray, Adrian S. ;
Cihlar, Tomas ;
Siegel, Dustin ;
Mackman, Richard L. ;
Clarke, Michael O. ;
Baric, Ralph S. ;
Denison, Mark R. .
MBIO, 2018, 9 (02)
[4]   The SARS-CoV-2 Conserved Macrodomain Is a Mono-ADP-Ribosylhydrolase [J].
Alhammad, Yousef M. O. ;
Kashipathy, Maithri M. ;
Roy, Anuradha ;
Gagne, Jean-Philippe ;
McDonald, Peter ;
Gao, Philip ;
Nonfoux, Louis ;
Battaile, Kevin P. ;
Johnson, David K. ;
Holmstrom, Erik D. ;
Poirier, Guy G. ;
Lovell, Scott ;
Fehr, Anthony R. .
JOURNAL OF VIROLOGY, 2021, 95 (03)
[5]   Coronavirus main proteinase (3CLpro) structure:: Basis for design of anti-SARS drugs [J].
Anand, K ;
Ziebuhr, J ;
Wadhwani, P ;
Mesters, JR ;
Hilgenfeld, R .
SCIENCE, 2003, 300 (5626) :1763-1767
[6]   Severe Acute Respiratory Syndrome Coronavirus Nonstructural Proteins 3, 4, and 6 Induce Double-Membrane Vesicles [J].
Angelini, Megan M. ;
Akhlaghpour, Marzieh ;
Neuman, Benjamin W. ;
Buchmeier, Michael J. .
MBIO, 2013, 4 (04)
[7]   Structural basis for RNA replication by the hepatitis C virus polymerase [J].
Appleby, Todd C. ;
Perry, Jason K. ;
Murakami, Eisuke ;
Barauskas, Ona ;
Feng, Joy ;
Cho, Aesop ;
Fox, David, III ;
Wetmore, Diana R. ;
McGrath, Mary E. ;
Ray, Adrian S. ;
Sofia, Michael J. ;
Swaminathan, S. ;
Edwards, Thomas E. .
SCIENCE, 2015, 347 (6223) :771-775
[8]   The SARS-CoV-2 Nucleocapsid Protein and Its Role in Viral Structure, Biological Functions, and a Potential Target for Drug or Vaccine Mitigation [J].
Bai, Zhihua ;
Cao, Ying ;
Liu, Wenjun ;
Li, Jing .
VIRUSES-BASEL, 2021, 13 (06)
[9]   SARS-CoV-2 Disrupts Splicing, Translation, and Protein Trafficking to Suppress Host Defenses [J].
Banerjee, Abhik K. ;
Blanco, Mario R. ;
Bruce, Emily A. ;
Honson, Drew D. ;
Chen, Linlin M. ;
Chow, Amy ;
Bhat, Prashant ;
Ollikainen, Noah ;
Quinodoz, Sofia A. ;
Loney, Colin ;
Thai, Jasmine ;
Miller, Zachary D. ;
Lin, Aaron E. ;
Schmidt, Madaline M. ;
Stewart, Douglas G. ;
Goldfarb, Daniel ;
De Lorenzo, Giuditta ;
Rihn, Suzannah J. ;
Voorhees, Rebecca M. ;
Botten, Jason W. ;
Majumdar, Devdoot ;
Guttman, Mitchell .
CELL, 2020, 183 (05) :1325-+
[10]  
Beigel JH, 2020, NEW ENGL J MED, V383, P1813, DOI [10.1056/NEJMoa2007764, 10.1056/NEJMc2022236]