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Biodegradation of fibrillated oil palm trunk fiber by a novel thermophilic, anaerobic, xylanolytic bacterium Caldicoprobacter sp. CL-2 isolated from compost.

Authors :
Widyasti, Erma
Shikata, Ayumi
Hashim, Rokiah
Sulaiman, Othman
Sudesh, Kumar
Wahjono, Edi
Kosugi, Akihiko
Source :
Enzyme & Microbial Technology. Apr2018, Vol. 111, p21-28. 8p.
Publication Year :
2018

Abstract

Oil palm trunk (OPT) is one of the most promising lignocellulosic bioresources. To develop effective biodegradation, thermophilic, anaerobic microorganisms were screened from bovine manure compost using fibrillated OPT (f-OPT) pretreated by wet disk milling as the substrate. One thermophilic, anaerobic bacterium, strain CL-2, whose 16S rDNA gene has 98.6% sequence identity with that of Caldicoprobacter faecale DSM 20678 T , exhibited high degradation activity (32.7% reduction in total dry solids of f-OPT). Strain CL-2 did not use cellulose as a carbon source, but used hemicelluloses such as xylan, arabinoxylan, starch and pectin at 70 °C. Phylogenetic and morphologic analyses and the polysaccharide use suggest that CL-2 may be classified as a novel species of Caldicoprobacter , named Caldicoprobacter sp. CL-2. To characterize enzymatic activities of CL-2, extracellular enzymes were prepared from culture broth using beechwood xylan as the carbon source. The extracellular enzymes showed high xylanase activity, but low cellulase activity, suggesting that f-OPT degradation may depend on xylanase activity. To understand the xylanase system of CL-2, a major xylanase was cloned and characterized. The xylanase ( Cal Xyn11A) had a modular structure consisting of a glycoside hydrolase (GH) family-11 domain and a family 36 carbohydrate-binding module. Cal Xyn11A did not show f-OPT degradation activity, but a strong synergistic effect was observed when Cal Xyn11A was added to the extracellular enzyme preparation. These results indicate that, rather than working alone, Cal Xyn11A has an important role in enhancing total lignocellulose degradation activity by cooperation with other GHs. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01410229
Volume :
111
Database :
Academic Search Index
Journal :
Enzyme & Microbial Technology
Publication Type :
Academic Journal
Accession number :
127702240
Full Text :
https://doi.org/10.1016/j.enzmictec.2017.12.009