Comparative Genomics and Pan-Genomics of the Myxococcaceae, including a Description of Five Novel Species: Myxococcus eversor sp. nov., Myxococcus llanfairpwllgwyngyllgogerychwyrndrobwllllantysiliogogogochensis sp. nov., Myxococcus vastator sp. nov., Pyxidicoccus caerfyrddinensis sp. nov., and Pyxidicoccus trucidator sp. nov.
antimicrobials
comparative genomics
myxobacteria
pharmaceuticals
predator
prey
Journal
Genome biology and evolution
ISSN: 1759-6653
Titre abrégé: Genome Biol Evol
Pays: England
ID NLM: 101509707
Informations de publication
Date de publication:
06 12 2020
06 12 2020
Historique:
accepted:
29
09
2020
pubmed:
7
10
2020
medline:
6
10
2021
entrez:
6
10
2020
Statut:
ppublish
Résumé
Members of the predatory Myxococcales (myxobacteria) possess large genomes, undergo multicellular development, and produce diverse secondary metabolites, which are being actively prospected for novel drug discovery. To direct such efforts, it is important to understand the relationships between myxobacterial ecology, evolution, taxonomy, and genomic variation. This study investigated the genomes and pan-genomes of organisms within the Myxococcaceae, including the genera Myxococcus and Corallococcus, the most abundant myxobacteria isolated from soils. Previously, ten species of Corallococcus were known, whereas six species of Myxococcus phylogenetically surrounded a third genus (Pyxidicoccus) composed of a single species. Here, we describe draft genome sequences of five novel species within the Myxococcaceae (Myxococcus eversor, Myxococcus llanfairpwllgwyngyllgogerychwyrndrobwllllantysiliogogogochensis, Myxococcus vastator, Pyxidicoccus caerfyrddinensis, and Pyxidicoccus trucidator) and for the Pyxidicoccus type species strain, Pyxidicoccus fallax DSM 14698T. Genomic and physiological comparisons demonstrated clear differences between the five novel species and every other Myxococcus or Pyxidicoccus spp. type strain. Subsequent analyses of type strain genomes showed that both the Corallococcus pan-genome and the combined Myxococcus and Pyxidicoccus (Myxococcus/Pyxidicoccus) pan-genome are large and open, but with clear differences. Genomes of Corallococcus spp. are generally smaller than those of Myxococcus/Pyxidicoccus spp. but have core genomes three times larger. Myxococcus/Pyxidicoccus spp. genomes are more variable in size, with larger and more unique sets of accessory genes than those of Corallococcus species. In both genera, biosynthetic gene clusters are relatively enriched in the shell pan-genomes, implying they grant a greater evolutionary benefit than other shell genes, presumably by conferring selective advantages during predation.
Identifiants
pubmed: 33022031
pii: 5918458
doi: 10.1093/gbe/evaa212
pmc: PMC7846144
doi:
Substances chimiques
RNA, Ribosomal, 16S
0
Types de publication
Comparative Study
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Pagination
2289-2302Commentaires et corrections
Type : ErratumIn
Informations de copyright
© The Author(s) 2020. Published by Oxford University Press on behalf of the Society for Molecular Biology and Evolution.
Références
Environ Microbiol. 2016 Mar;18(3):766-79
pubmed: 26663201
Front Microbiol. 2019 Apr 24;10:834
pubmed: 31068915
Proc Natl Acad Sci U S A. 2005 Sep 27;102(39):13950-5
pubmed: 16172379
BMC Bioinformatics. 2013 Feb 21;14:60
pubmed: 23432962
Trends Microbiol. 2015 Oct;23(10):598-605
pubmed: 26433693
Sci Rep. 2018 Nov 9;8(1):16600
pubmed: 30413766
J Comput Biol. 2012 May;19(5):455-77
pubmed: 22506599
Microbiologyopen. 2016 Apr;5(2):268-78
pubmed: 26669488
Appl Environ Microbiol. 2020 Jan 7;86(2):
pubmed: 31676482
Int J Syst Evol Microbiol. 2017 May;67(5):1613-1617
pubmed: 28005526
Nat Prod Rep. 2017 Feb 1;34(2):135-160
pubmed: 27907217
Bioinformatics. 2009 Jul 15;25(14):1754-60
pubmed: 19451168
Nat Commun. 2019 May 16;10(1):2182
pubmed: 31097708
Mar Drugs. 2018 Sep 05;16(9):
pubmed: 30189599
J Bacteriol. 1941 Aug;42(2):193-223
pubmed: 16560449
Front Microbiol. 2017 Aug 22;8:1593
pubmed: 28878752
Microb Genom. 2018 Feb;4(2):
pubmed: 29345219
Nucleic Acids Res. 2018 Jan 4;46(D1):D851-D860
pubmed: 29112715
Bioinformatics. 2015 Nov 15;31(22):3691-3
pubmed: 26198102
Int J Syst Evol Microbiol. 2015 Mar;65(Pt 3):745-753
pubmed: 24591423
Bioessays. 2019 Apr;41(4):e1800247
pubmed: 30919490
Sci Rep. 2016 Dec 07;6:38392
pubmed: 27924912
Nucleic Acids Res. 2008 Jul 1;36(Web Server issue):W465-9
pubmed: 18424797
Microorganisms. 2018 Jul 19;6(3):
pubmed: 30029487
Genome Biol. 2014 Mar 03;15(3):R46
pubmed: 24580807
Int J Syst Evol Microbiol. 2018 Oct;68(10):3101-3110
pubmed: 30113300
Mol Phylogenet Evol. 2010 Nov;57(2):878-87
pubmed: 20807581
Front Microbiol. 2019 Nov 13;10:2650
pubmed: 31798566
Int J Syst Evol Microbiol. 2018 Jan;68(1):461-466
pubmed: 29292687
Proc Natl Acad Sci U S A. 2009 Nov 10;106(45):19126-31
pubmed: 19855009
Mar Drugs. 2018 Aug 29;16(9):
pubmed: 30158489
Front Microbiol. 2017 Mar 14;8:439
pubmed: 28352265
Mol Omics. 2020 Aug 1;16(4):387-397
pubmed: 32373862
Int J Syst Evol Microbiol. 2018 Nov;68(11):3576-3586
pubmed: 30234476
Bioinformatics. 2014 Jul 15;30(14):2068-9
pubmed: 24642063
Appl Environ Microbiol. 2018 Oct 30;84(22):
pubmed: 30194103
Nat Commun. 2018 Feb 23;9(1):803
pubmed: 29476047
PLoS One. 2016 Feb 22;11(2):e0148593
pubmed: 26900859
Nucleic Acids Res. 2019 Jul 2;47(W1):W81-W87
pubmed: 31032519
Front Microbiol. 2018 Dec 19;9:3187
pubmed: 30619233
Biotechnol Biofuels. 2018 Jul 17;11:193
pubmed: 30026808