Tolerance of Sulfolobus SMV1 virus to the immunity of I-A and III-B CRISPR-Cas systems in Sulfolobus islandicus.

None CRISPR-Cas systems I-A CRISPR system III-B Cmr system SMV1 virus anti-CRISPR archaeal host-virus coevolution mini-CRISPR arrays stable virus carrier status

Journal

RNA biology
ISSN: 1555-8584
Titre abrégé: RNA Biol
Pays: United States
ID NLM: 101235328

Informations de publication

Date de publication:
04 2019
Historique:
pubmed: 10 4 2018
medline: 22 11 2019
entrez: 10 4 2018
Statut: ppublish

Résumé

Sulfolobus islandicus Rey15A encodes one Type I-A and two Type III-B systems, all of which are active in mediating nucleic acids interference. However, the effectiveness of each CRISPR system against virus infection was not tested in this archaeon. Here we constructed S. islandicus strains that constitutively express the antiviral immunity from either I-A, or III-B, or I-A plus III-B systems against SMV1 and tested the response of each host to SMV1 infection. We found that, although both CRISPR immunities showed a strong inhibition to viral DNA replication at an early stage of incubation, the host I-A CRISPR immunity gradually lost the control on virus proliferation, allowing accumulation of cellular viral DNA and release of a large number of viral particles. In contrast, the III-B CRISPR immunity showed a tight control on both viral DNA replication and virus particle formation. Furthermore, the SMV1 tolerance to the I-A CRISPR immunity did not result from the occurrence of escape mutations, suggesting the virus probably encodes an anti-CRISPR protein (Acr) to compromise the host I-A CRISPR immunity. Together, this suggests that the interplay between viral Acrs and CRISPR-Cas systems in thermophilic archaea could have shaped the stable virus-host relationship that is observed for many archaeal viruses.

Identifiants

pubmed: 29629622
doi: 10.1080/15476286.2018.1460993
pmc: PMC6546401
doi:

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

549-556

Références

Trends Microbiol. 2005 Nov;13(11):535-42
pubmed: 16154357
Nat Protoc. 2008;3(6):1101-8
pubmed: 18546601
Microbiology. 2009 Mar;155(Pt 3):733-40
pubmed: 19246744
Extremophiles. 2009 Jul;13(4):735-46
pubmed: 19513584
Proc Natl Acad Sci U S A. 2009 Jul 7;106(27):11306-11
pubmed: 19549825
Mol Microbiol. 2011 Jan;79(1):35-49
pubmed: 21166892
J Bacteriol. 2011 Apr;193(7):1672-80
pubmed: 21278296
Mol Microbiol. 2011 Apr;80(2):481-91
pubmed: 21385233
Nucleic Acids Res. 2012 Mar;40(6):2470-80
pubmed: 22139923
Mol Cell. 2012 Feb 10;45(3):303-13
pubmed: 22227115
Appl Environ Microbiol. 2012 Aug;78(16):5630-7
pubmed: 22660711
J Biol Chem. 2012 Sep 28;287(40):33351-63
pubmed: 22767603
Nature. 2013 Jan 17;493(7432):429-32
pubmed: 23242138
Mol Microbiol. 2013 Mar;87(5):1088-99
pubmed: 23320564
RNA Biol. 2013 May;10(5):738-48
pubmed: 23392249
Nucleic Acids Res. 2013 Dec;41(22):10509-17
pubmed: 24021627
Extremophiles. 2014 Jan;18(1):51-60
pubmed: 24163004
Biochem Soc Trans. 2013 Dec;41(6):1416-21
pubmed: 24256230
Mol Microbiol. 2014 Mar;91(5):900-17
pubmed: 24433295
Extremophiles. 2014 May;18(3):473-89
pubmed: 24562787
Mol Cell. 2014 Apr 24;54(2):234-44
pubmed: 24766887
Nucleic Acids Res. 2015 Jan;43(1):406-17
pubmed: 25505143
Microbiol Mol Biol Rev. 2015 Mar;79(1):117-52
pubmed: 25694123
MBio. 2015 Mar 31;6(2):null
pubmed: 25827422
Cell. 2015 May 21;161(5):1164-1174
pubmed: 25959775
Nat Rev Microbiol. 2015 Nov;13(11):722-36
pubmed: 26411297
Nucleic Acids Res. 2016 Feb 29;44(4):e34
pubmed: 26467477
Mol Microbiol. 2016 Feb;99(4):719-28
pubmed: 26514343
Mol Cell. 2015 Nov 5;60(3):385-97
pubmed: 26593719
Cell. 2016 Jan 14;164(1-2):29-44
pubmed: 26771484
Genes Dev. 2016 Feb 15;30(4):447-59
pubmed: 26848045
Genes Dev. 2016 Feb 15;30(4):460-70
pubmed: 26848046
Cell. 2016 Feb 11;164(4):710-21
pubmed: 26853474
J Virol. 2016 May 27;90(12):5693-5699
pubmed: 27053548
Nucleic Acids Res. 2016 May 19;44(9):4233-42
pubmed: 27098036
Science. 2016 Aug 5;353(6299):aad5147
pubmed: 27493190
Trends Microbiol. 2017 Jan;25(1):49-61
pubmed: 27773522
Nucleic Acids Res. 2017 Feb 28;45(4):1983-1993
pubmed: 27986854
Sci China Life Sci. 2017 Apr;60(4):370-385
pubmed: 28251462
Science. 2017 Aug 11;357(6351):605-609
pubmed: 28663439
Nature. 2017 Aug 31;548(7669):543-548
pubmed: 28722012
Elife. 2017 Aug 17;6:
pubmed: 28826484
Cell Host Microbe. 2017 Sep 13;22(3):343-353.e3
pubmed: 28826839
Front Microbiol. 2017 Aug 14;8:1480
pubmed: 28855893
Curr Opin Microbiol. 2017 Jun;37:150-154
pubmed: 28865392
Nucleic Acids Res. 2017 Nov 2;45(19):11305-11314
pubmed: 28977458
Nucleic Acids Res. 2017 Oct 13;45(18):10740-10750
pubmed: 28977519
Nat Rev Microbiol. 2018 Jan;16(1):12-17
pubmed: 29062071
Nat Rev Microbiol. 2017 Nov 10;15(12):724-739
pubmed: 29123227
Prog Mol Biol Transl Sci. 2017;152:1-21
pubmed: 29150001
J Bacteriol. 1997 Aug;179(16):4963-9
pubmed: 9260934

Auteurs

Tong Guo (T)

a Archaea Center, Department of Biology , University of Copenhagen, Copenhagen Biocenter , Copenhagen N , Denmark.

Wenyuan Han (W)

a Archaea Center, Department of Biology , University of Copenhagen, Copenhagen Biocenter , Copenhagen N , Denmark.

Qunxin She (Q)

a Archaea Center, Department of Biology , University of Copenhagen, Copenhagen Biocenter , Copenhagen N , Denmark.
b State Key Laboratory of Agricultural Microbiology and College of Life Science and Technology , Huazhong Agricultural University , Wuhan , China.

Articles similaires

Genome, Viral Ralstonia Composting Solanum lycopersicum Bacteriophages
Prader-Willi Syndrome Humans Angelman Syndrome CRISPR-Cas Systems Human Embryonic Stem Cells
Host Specificity Bacteriophages Genomics Algorithms Escherichia coli
Gene Editing Climate Change Africa South of the Sahara Crops, Agricultural Agriculture

Classifications MeSH