Thousands of previously unknown phages discovered in whole-community human gut metagenomes.


Journal

Microbiome
ISSN: 2049-2618
Titre abrégé: Microbiome
Pays: England
ID NLM: 101615147

Informations de publication

Date de publication:
29 03 2021
Historique:
received: 06 10 2020
accepted: 02 02 2021
entrez: 30 3 2021
pubmed: 31 3 2021
medline: 28 4 2021
Statut: epublish

Résumé

Double-stranded DNA bacteriophages (dsDNA phages) play pivotal roles in structuring human gut microbiomes; yet, the gut virome is far from being fully characterized, and additional groups of phages, including highly abundant ones, continue to be discovered by metagenome mining. A multilevel framework for taxonomic classification of viruses was recently adopted, facilitating the classification of phages into evolutionary informative taxonomic units based on hallmark genes. Together with advanced approaches for sequence assembly and powerful methods of sequence analysis, this revised framework offers the opportunity to discover and classify unknown phage taxa in the human gut. A search of human gut metagenomes for circular contigs encoding phage hallmark genes resulted in the identification of 3738 apparently complete phage genomes that represent 451 putative genera. Several of these phage genera are only distantly related to previously identified phages and are likely to found new families. Two of the candidate families, "Flandersviridae" and "Quimbyviridae", include some of the most common and abundant members of the human gut virome that infect Bacteroides, Parabacteroides, and Prevotella. The third proposed family, "Gratiaviridae," consists of less abundant phages that are distantly related to the families Autographiviridae, Drexlerviridae, and Chaseviridae. Analysis of CRISPR spacers indicates that phages of all three putative families infect bacteria of the phylum Bacteroidetes. Comparative genomic analysis of the three candidate phage families revealed features without precedent in phage genomes. Some "Quimbyviridae" phages possess Diversity-Generating Retroelements (DGRs) that generate hypervariable target genes nested within defense-related genes, whereas the previously known targets of phage-encoded DGRs are structural genes. Several "Flandersviridae" phages encode enzymes of the isoprenoid pathway, a lipid biosynthesis pathway that so far has not been known to be manipulated by phages. The "Gratiaviridae" phages encode a HipA-family protein kinase and glycosyltransferase, suggesting these phages modify the host cell wall, preventing superinfection by other phages. Hundreds of phages in these three and other families are shown to encode catalases and iron-sequestering enzymes that can be predicted to enhance cellular tolerance to reactive oxygen species. Analysis of phage genomes identified in whole-community human gut metagenomes resulted in the delineation of at least three new candidate families of Caudovirales and revealed diverse putative mechanisms underlying phage-host interactions in the human gut. Addition of these phylogenetically classified, diverse, and distinct phages to public databases will facilitate taxonomic decomposition and functional characterization of human gut viromes. Video abstract.

Sections du résumé

BACKGROUND
Double-stranded DNA bacteriophages (dsDNA phages) play pivotal roles in structuring human gut microbiomes; yet, the gut virome is far from being fully characterized, and additional groups of phages, including highly abundant ones, continue to be discovered by metagenome mining. A multilevel framework for taxonomic classification of viruses was recently adopted, facilitating the classification of phages into evolutionary informative taxonomic units based on hallmark genes. Together with advanced approaches for sequence assembly and powerful methods of sequence analysis, this revised framework offers the opportunity to discover and classify unknown phage taxa in the human gut.
RESULTS
A search of human gut metagenomes for circular contigs encoding phage hallmark genes resulted in the identification of 3738 apparently complete phage genomes that represent 451 putative genera. Several of these phage genera are only distantly related to previously identified phages and are likely to found new families. Two of the candidate families, "Flandersviridae" and "Quimbyviridae", include some of the most common and abundant members of the human gut virome that infect Bacteroides, Parabacteroides, and Prevotella. The third proposed family, "Gratiaviridae," consists of less abundant phages that are distantly related to the families Autographiviridae, Drexlerviridae, and Chaseviridae. Analysis of CRISPR spacers indicates that phages of all three putative families infect bacteria of the phylum Bacteroidetes. Comparative genomic analysis of the three candidate phage families revealed features without precedent in phage genomes. Some "Quimbyviridae" phages possess Diversity-Generating Retroelements (DGRs) that generate hypervariable target genes nested within defense-related genes, whereas the previously known targets of phage-encoded DGRs are structural genes. Several "Flandersviridae" phages encode enzymes of the isoprenoid pathway, a lipid biosynthesis pathway that so far has not been known to be manipulated by phages. The "Gratiaviridae" phages encode a HipA-family protein kinase and glycosyltransferase, suggesting these phages modify the host cell wall, preventing superinfection by other phages. Hundreds of phages in these three and other families are shown to encode catalases and iron-sequestering enzymes that can be predicted to enhance cellular tolerance to reactive oxygen species.
CONCLUSIONS
Analysis of phage genomes identified in whole-community human gut metagenomes resulted in the delineation of at least three new candidate families of Caudovirales and revealed diverse putative mechanisms underlying phage-host interactions in the human gut. Addition of these phylogenetically classified, diverse, and distinct phages to public databases will facilitate taxonomic decomposition and functional characterization of human gut viromes. Video abstract.

Identifiants

pubmed: 33781338
doi: 10.1186/s40168-021-01017-w
pii: 10.1186/s40168-021-01017-w
pmc: PMC8008677
doi:

Types de publication

Journal Article Research Support, N.I.H., Intramural Research Support, Non-U.S. Gov't Video-Audio Media

Langues

eng

Sous-ensembles de citation

IM

Pagination

78

Références

J Mol Biol. 1975 Feb 5;91(4):439-62
pubmed: 1097697
Int J Mol Sci. 2014 Aug 15;15(8):14234-46
pubmed: 25196521
J Bacteriol. 1996 Dec;178(23):6895-903
pubmed: 8955312
Cell Host Microbe. 2017 Jul 12;22(1):38-47.e4
pubmed: 28704651
Nat Biotechnol. 2019 Jun;37(6):632-639
pubmed: 31061483
Proc Natl Acad Sci U S A. 2012 Mar 6;109(10):3962-6
pubmed: 22355105
Bioinformatics. 2012 Mar 1;28(5):614-8
pubmed: 22238260
Microbiome. 2018 Apr 10;6(1):68
pubmed: 29631623
Microbiology (Reading). 2012 Jun;158(Pt 6):1389-1401
pubmed: 22466083
Curr Opin Virol. 2019 Aug;37:52-57
pubmed: 31255903
Nat Commun. 2020 Jul 29;11(1):3784
pubmed: 32728052
Sci Rep. 2016 May 06;6:25448
pubmed: 27150669
Nat Commun. 2021 Feb 16;12(1):1044
pubmed: 33594055
Commun Biol. 2020 Jun 22;3(1):321
pubmed: 32572116
Mol Cell. 2013 Oct 24;52(2):248-54
pubmed: 24095282
Nature. 2012 Jun 13;486(7402):207-14
pubmed: 22699609
Annu Rev Microbiol. 2020 Sep 8;74:521-543
pubmed: 32680453
Genome Res. 2019 Jun;29(6):961-968
pubmed: 31048319
ISME J. 2014 Jul;8(7):1391-402
pubmed: 24621522
Microbiome. 2018 Apr 3;6(1):65
pubmed: 29615108
Microbiome. 2018 Oct 23;6(1):191
pubmed: 30352623
J Mol Biol. 2020 Feb 14;432(4):765-785
pubmed: 31857085
Bioinformatics. 2008 Aug 15;24(16):1757-64
pubmed: 18567917
J Gen Virol. 2018 Sep;99(9):1331-1343
pubmed: 30016225
Nucleic Acids Res. 2020 Jan 8;48(D1):D265-D268
pubmed: 31777944
J Bacteriol. 1982 Sep;151(3):1581-90
pubmed: 7107560
Proc Natl Acad Sci U S A. 2013 Jul 23;110(30):12450-5
pubmed: 23836644
Cell Host Microbe. 2019 Feb 13;25(2):285-299.e8
pubmed: 30763538
mBio. 2018 Mar 20;9(2):
pubmed: 29559574
BMC Bioinformatics. 2019 Sep 14;20(1):473
pubmed: 31521110
Cell Host Microbe. 2020 Jul 8;28(1):23-30.e5
pubmed: 32325051
Nat Commun. 2018 Nov 30;9(1):5114
pubmed: 30504855
Trends Genet. 2006 Mar;22(3):174-81
pubmed: 16460832
Nucleic Acids Res. 2018 Oct 12;46(18):9711-9725
pubmed: 30007279
PLoS Pathog. 2011 Dec;7(12):e1002323
pubmed: 22216001
Bioinformatics. 2020 Aug 15;36(14):4126-4129
pubmed: 32413137
Proc Natl Acad Sci U S A. 2013 Jul 30;110(31):12798-803
pubmed: 23858439
Cell Host Microbe. 2020 Sep 9;28(3):371-379.e5
pubmed: 32652063
Nat Commun. 2021 May 24;12(1):3076
pubmed: 34031405
Nat Rev Microbiol. 2016 Jan;14(1):20-32
pubmed: 26499895
J Mol Biol. 2010 Oct 29;403(3):468-79
pubmed: 20826161
Nature. 2004 Sep 23;431(7007):476-81
pubmed: 15386016
J Bacteriol. 2012 Jan;194(1):15-27
pubmed: 22020642
Viruses. 2019 Nov 21;11(12):
pubmed: 31766550
CRISPR J. 2019 Feb;2(1):23-30
pubmed: 31021234
mBio. 2017 Sep 19;8(5):
pubmed: 28928211
Microorganisms. 2020 Dec 08;8(12):
pubmed: 33302408
Mol Cell. 2004 Oct 8;16(1):11-21
pubmed: 15469818
Nucleic Acids Res. 1997 Mar 1;25(5):955-64
pubmed: 9023104
Proc Natl Acad Sci U S A. 2013 Jun 25;110(26):10771-6
pubmed: 23690590
mBio. 2018 Nov 27;9(6):
pubmed: 30482837
ISME J. 2017 Dec;11(12):2864-2868
pubmed: 28742071
Proc Natl Acad Sci U S A. 1974 Feb;71(2):586-9
pubmed: 4592695
Virus Evol. 2019 Jun 08;5(1):vez013
pubmed: 31191981
J Mol Biol. 2006 Jun 2;359(2):496-507
pubmed: 16631788
Mol Microbiol. 1999 Mar;31(5):1477-88
pubmed: 10200966
Bioinformatics. 2018 Sep 1;34(17):i884-i890
pubmed: 30423086
Nucleic Acids Res. 2018 Jan 9;46(1):11-24
pubmed: 29186518
Elife. 2020 Feb 26;9:
pubmed: 32101166
Nat Microbiol. 2019 Apr;4(4):693-700
pubmed: 30692672
Cell Host Microbe. 2020 Jul 8;28(1):31-40.e9
pubmed: 32325050
Cell Host Microbe. 2019 Sep 11;26(3):325-335.e5
pubmed: 31492655
Nat Microbiol. 2019 Nov;4(11):1895-1906
pubmed: 31332386
Bioinformatics. 2019 Nov 1;35(22):4537-4542
pubmed: 31329826
Front Microbiol. 2018 Dec 14;9:3053
pubmed: 30619142
PLoS Biol. 2008 Jun 3;6(6):e131
pubmed: 18532877
Methods Mol Biol. 2009;502:91-111
pubmed: 19082553
Nucleic Acids Res. 2017 Jan 4;45(D1):D170-D176
pubmed: 27899574
J Bacteriol. 2006 May;188(10):3470-6
pubmed: 16672600
Nucleic Acids Res. 2020 Dec 2;48(21):e121
pubmed: 33045744
mBio. 2016 Aug 02;7(4):
pubmed: 27486193
Nat Commun. 2014 Jul 24;5:4498
pubmed: 25058116
Genome Res. 2003 Nov;13(11):2498-504
pubmed: 14597658
Mol Microbiol. 2011 Nov;82(3):567-77
pubmed: 21985444
BMC Genomics. 2020 Sep 25;21(1):664
pubmed: 32977771
Nat Commun. 2018 Jul 25;9(1):2919
pubmed: 30046034
Annu Rev Microbiol. 1994;48:193-222
pubmed: 7826005
Cell Host Microbe. 2019 Feb 13;25(2):210-218
pubmed: 30763535
Microbiol Mol Biol Rev. 2003 Mar;67(1):86-156, table of contents
pubmed: 12626685
Nat Commun. 2019 Nov 21;10(1):5288
pubmed: 31754112
Proc Natl Acad Sci U S A. 2018 Apr 17;115(16):4170-4175
pubmed: 29610310
Nat Methods. 2012 Mar 04;9(4):357-9
pubmed: 22388286
Nat Microbiol. 2018 Jan;3(1):38-46
pubmed: 29133882
Gastroenterology. 2014 Nov;147(5):1055-63.e8
pubmed: 25046162
J Bacteriol. 2004 Nov;186(21):7032-68
pubmed: 15489417
Nat Rev Microbiol. 2018 Jan;16(1):12-17
pubmed: 29062071
Sci Rep. 2020 Feb 18;10(1):2865
pubmed: 32071324
Annu Rev Virol. 2016 Sep 29;3(1):197-214
pubmed: 27741409
Cell. 2019 Sep 5;178(6):1452-1464.e13
pubmed: 31474367
Cell Host Microbe. 2019 Feb 13;25(2):261-272.e5
pubmed: 30763537
J Mol Biol. 1993 Nov 5;234(1):124-39
pubmed: 8230192
Microbiol Mol Biol Rev. 2020 Mar 4;84(2):
pubmed: 32132243
Front Microbiol. 2014 Dec 10;5:678
pubmed: 25540641
Science. 2018 Oct 12;362(6411):240-242
pubmed: 30190308
Nucleic Acids Res. 1997 Sep 1;25(17):3389-402
pubmed: 9254694
Nature. 2010 Jul 15;466(7304):334-8
pubmed: 20631792
Science. 2002 Mar 15;295(5562):2091-4
pubmed: 11896279
J Bacteriol. 2015 Oct;197(20):3329-38
pubmed: 26260459
Nat Microbiol. 2018 Jul;3(7):754-766
pubmed: 29867096
Annu Rev Virol. 2020 Sep 29;7(1):37-61
pubmed: 32991269
PLoS One. 2010 Mar 10;5(3):e9490
pubmed: 20224823
Proc Natl Acad Sci U S A. 2014 Jun 24;111(25):9121-6
pubmed: 24927575
J Bacteriol. 2003 Oct;185(20):6220-3
pubmed: 14526037
Science. 2014 May 23;344(6186):909-13
pubmed: 24855270
Nature. 2020 Feb;578(7795):425-431
pubmed: 32051592
Viruses. 2019 Jul 04;11(7):
pubmed: 31277436
Cell Host Microbe. 2019 Oct 9;26(4):527-541.e5
pubmed: 31600503
RNA. 2012 Jan;18(1):145-54
pubmed: 22101242
BMC Bioinformatics. 2010 Mar 08;11:119
pubmed: 20211023
Trends Microbiol. 2020 May;28(5):349-359
pubmed: 32298613
Syst Biol. 2020 Jan 1;69(1):110-123
pubmed: 31127947
Nat Microbiol. 2020 Sep;5(9):1170-1181
pubmed: 32601452
Mol Microbiol. 2003 Jul;49(2):277-300
pubmed: 12886937
Mol Biol Evol. 2008 Aug;25(8):1619-30
pubmed: 18463089
Genome Biol. 2019 Nov 5;20(1):232
pubmed: 31690338
Nat Microbiol. 2019 Aug;4(8):1306-1315
pubmed: 31110365
Annu Rev Microbiol. 2000;54:681-708
pubmed: 11018141
Nat Commun. 2018 Jun 29;9(1):2542
pubmed: 29959318
J Bacteriol. 2002 Oct;184(20):5609-18
pubmed: 12270818
Nucleic Acids Res. 2004 Mar 19;32(5):1792-7
pubmed: 15034147
Nat Rev Microbiol. 2017 Mar;15(3):161-168
pubmed: 28134265
Nat Microbiol. 2019 Oct;4(10):1727-1736
pubmed: 31285584
Proc Natl Acad Sci U S A. 2015 Nov 3;112(44):13675-80
pubmed: 26483471

Auteurs

Sean Benler (S)

National Center for Biotechnology Information, National Library of Medicine, Bethesda, Maryland, 20894, USA.

Natalya Yutin (N)

National Center for Biotechnology Information, National Library of Medicine, Bethesda, Maryland, 20894, USA.

Dmitry Antipov (D)

Center for Algorithmic Biotechnology, Institute for Translational Biomedicine, St. Petersburg State University, St. Petersburg, 199004, Russia.

Mikhail Rayko (M)

Center for Algorithmic Biotechnology, Institute for Translational Biomedicine, St. Petersburg State University, St. Petersburg, 199004, Russia.

Sergey Shmakov (S)

National Center for Biotechnology Information, National Library of Medicine, Bethesda, Maryland, 20894, USA.

Ayal B Gussow (AB)

National Center for Biotechnology Information, National Library of Medicine, Bethesda, Maryland, 20894, USA.

Pavel Pevzner (P)

Center for Algorithmic Biotechnology, Institute for Translational Biomedicine, St. Petersburg State University, St. Petersburg, 199004, Russia.
Department of Computer Science and Engineering, University of California, San Diego, La Jolla, CA, 92093, USA.

Eugene V Koonin (EV)

National Center for Biotechnology Information, National Library of Medicine, Bethesda, Maryland, 20894, USA. koonin@ncbi.nlm.nih.gov.

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