Literature DB >> 29482868

Characterization and high-quality draft genome sequence of Herbivorax saccincola A7, an anaerobic, alkaliphilic, thermophilic, cellulolytic, and xylanolytic bacterium.

Shimpei Aikawa1, Sirilak Baramee2, Junjarus Sermsathanaswadi3, Phakhinee Thianheng4, Chakrit Tachaapaikoon2, Ayumi Shikata5, Rattiya Waeonukul2, Patthra Pason2, Khanok Ratanakhanokchai4, Akihiko Kosugi6.   

Abstract

An anaerobic, cellulolytic-xylanolytic bacterium, designated strain A7, was isolated from a cellulose-degrading bacterial community inhabiting bovine manure compost on Ishigaki Island, Japan, by enrichment culture using unpretreated corn stover as the sole carbon source. The strain was Gram-positive, non-endospore forming, non-motile, and formed orange colonies on solid medium. Strain A7 was identified as Herbivorax saccincola by DNA-DNA hybridization, and phylogenetic analysis based on 16S rRNA gene sequences showed that it was closely related to H. saccincola GGR1 (= DSM 101079T). H. saccincola A7 (= JCM 31827=DSM 104321) had quite similar phenotypic characteristics to those of strain GGR1. However, the optimum growth of A7 was at alkaline pH (9.0) and 55°C, compared to pH 7.0 at 60°C for GGR1, and the fatty acid profile of A7 contained 1.7-times more C17:0 iso than GGR1. The draft genome sequence revealed that H. saccincola A7 possessed a cellulosome-like extracellular macromolecular complex, which has also been found for Clostridium thermocellum and C. clariflavum. H. saccincola A7 contained more glycoside hydrolases (GHs) belonging to GH families-11 and -2, and more diversity of xylanolytic enzymes, than C. thermocellum and C. clariflavum. H. saccincola A7 could grow on xylan because it encoded essential genes for xylose metabolism, such as a xylose transporter, xylose isomerase, xylulokinase, and ribulose-phosphate 3-epimerase, which are absent from C. thermocellum. These results indicated that H. saccincola A7 has great potential as a microorganism that can effectively degrade lignocellulosic biomass.
Copyright © 2018 Elsevier GmbH. All rights reserved.

Entities:  

Keywords:  Alkaliphile; Cellulolytic bacterium; Cellulosome; Genome sequence; Herbivorax saccincola; Lignocellulose

Mesh:

Substances:

Year:  2018        PMID: 29482868     DOI: 10.1016/j.syapm.2018.01.010

Source DB:  PubMed          Journal:  Syst Appl Microbiol        ISSN: 0723-2020            Impact factor:   4.022


  4 in total

Review 1.  Management of microbial enzymes for biofuels and biogas production by using metagenomic and genome editing approaches.

Authors:  J Rajesh Banu; Gopalakrishnan Kumar; Indranil Chattopadhyay
Journal:  3 Biotech       Date:  2021-09-08       Impact factor: 2.893

2.  Creation of a functional hyperthermostable designer cellulosome.

Authors:  Amaranta Kahn; Sarah Moraïs; Anastasia P Galanopoulou; Daehwan Chung; Nicholas S Sarai; Neal Hengge; Dimitris G Hatzinikolaou; Michael E Himmel; Yannick J Bomble; Edward A Bayer
Journal:  Biotechnol Biofuels       Date:  2019-02-28       Impact factor: 6.040

3.  Draft genome sequence data of the facultative, thermophilic, xylanolytic bacterium Paenibacillus sp. strain DA-C8.

Authors:  Chinda Chhe; Ayaka Uke; Sirilak Baramee; Umbhorn Ungkulpasvich; Chakrit Tachaapaikoon; Patthra Pason; Rattiya Waeonukul; Khanok Ratanakhanokchai; Akihiko Kosugi
Journal:  Data Brief       Date:  2021-01-22

4.  The Cellulosome Paradigm in An Extreme Alkaline Environment.

Authors:  Paripok Phitsuwan; Sarah Moraïs; Bareket Dassa; Bernard Henrissat; Edward A Bayer
Journal:  Microorganisms       Date:  2019-09-12
  4 in total

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