Literature DB >> 29945088

Responses of microbial carbon metabolism and function diversity induced by complex fungal enzymes in lignocellulosic waste composting.

Zhuotong Zeng1, Xueying Guo2, Piao Xu2, Rong Xiao3, Danlian Huang4, Xiaomin Gong2, Min Cheng2, Huan Yi2, Tao Li2, Guangming Zeng5.   

Abstract

Composting is an economic and effective technology for solid waste treatment, which is an essential method to promote the biogeochemical cycle of contaminants. However, the application of this technology was limited by the bio-degradative recalcitrance of lignin and other kind of phytotoxic substances release. The combination with microorganisms and enzymes is a popular and efficient way to enhanced composting. This study, referring to metabolic mechanisms, fungal molecular and biogeochemical cycles, was performed to investigate the effects of lignin degradation, carbon metabolic diversity, as well as the related changes induced by these two kinds of complex enzymes in composting. The biological diversity is important indicator in ecosystem, which concerns the environmental applicability of one technology. The carbon metabolism diversity reflected the biogeochemical cycles of organic matter, which was also an essential input to analyze the effects of composting. The changes on the diversity characteristics of carbon are essential to comprehensively understand the deep mechanisms of this process, and extended the application of complex enzymes in the field of enhanced composting. The analysis of Biolog revealed that the utilization of pyruvic acid methyl ester, α-Cyclodextrin, d-Mannitol, d-Galacturonic, Itaconic acid and l-asparagine were deeply promoted, and that of d, l-α-Glycerol-phosphate, l-Threonine, Glycyl-l-Glutamic acid and putrescine were depressed by adding the complex enzyme in composting. Moreover, according to the data, the addition of complex enzymes improved the degradation efficiency and the metabolic capacity of carbon in composting. These findings undoubtedly contribute to the development of enzyme-based technologies and the applications of complex enzymes in composting, which is of great benefit to eliminate the limitation and extend the application of composting.
Copyright © 2018 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Biogeochemical cycle; Carbon metabolic diversity; Complex enzymes; Degradation; Enhanced composting; Ligninolytic microorganisms

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Year:  2018        PMID: 29945088     DOI: 10.1016/j.scitotenv.2018.06.102

Source DB:  PubMed          Journal:  Sci Total Environ        ISSN: 0048-9697            Impact factor:   7.963


  3 in total

1.  The microbial metabolic activity on carbohydrates and polymers impact the biodegradability of landfilled solid waste.

Authors:  Christian Brandstaetter; Nora Fricko; Mohammad J Rahimi; Johann Fellner; Wolfgang Ecker-Lala; Irina S Druzhinina
Journal:  Biodegradation       Date:  2021-11-23       Impact factor: 3.909

2.  Effects of urease inhibitors on enzymatic activities and fungal communities during the biosolids composting.

Authors:  Jishao Jiang; Yang Wang; Dou Yu; Jingyu Li; Jin Han; Huilin Cui; Ronghui Cheng; Xing Yao; Guangxuan Yan; Yunbei Li; Guifen Zhu
Journal:  RSC Adv       Date:  2021-11-23       Impact factor: 4.036

3.  Assessing the Microbial Communities in Four Different Daqus by Using PCR-DGGE, PLFA, and Biolog Analyses.

Authors:  Yuxi Ling; Wenying Li; Tong Tong; Zuming Li; Qian Li; Zhihui Bai; Guijun Wang; Jiahao Chen; Yuguang Wang
Journal:  Pol J Microbiol       Date:  2020
  3 in total

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