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Study on the hydrogen production ability of high-efficiency bacteria and synergistic fermentation of maize straw by a combination of strains

Based on the principle of reciprocal symbiosis and co-metabolism of mixed culture microorganisms, a group of high-efficiency maize straw-degrading hydrogen-producing complex bacteria X9 + B2 was developed by a strain matching optimization experiment. Systematic research and optimization experiments...

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Autores principales: Bao, Hongxu, Zhang, Xin, Su, Hongzhi, Li, Liangyu, Lv, Zhizhong, Zhang, Xinyue
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9062066/
https://www.ncbi.nlm.nih.gov/pubmed/35517707
http://dx.doi.org/10.1039/c9ra00165d
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author Bao, Hongxu
Zhang, Xin
Su, Hongzhi
Li, Liangyu
Lv, Zhizhong
Zhang, Xinyue
author_facet Bao, Hongxu
Zhang, Xin
Su, Hongzhi
Li, Liangyu
Lv, Zhizhong
Zhang, Xinyue
author_sort Bao, Hongxu
collection PubMed
description Based on the principle of reciprocal symbiosis and co-metabolism of mixed culture microorganisms, a group of high-efficiency maize straw-degrading hydrogen-producing complex bacteria X9 + B2 was developed by a strain matching optimization experiment. Systematic research and optimization experiments were carried out on the mechanism of the main controlling factors affecting the hydrogen production of the complex bacteria. The results showed that the optimum conditions for the acid blasting pre-treatment of maize straw as a substrate were as follows: when the inoculation amount was 6% and the inoculum ratio was 1 : 1, at which point, we needed to simultaneously inoculate, the initial pH was 6, the substrate concentration was 12 g L(−1), and the culture time was 40 h. The complex bacteria adopted the variable temperature and speed regulation hydrogen production operational mode; after the initial temperature of 37 °C for 8 hours, the temperature was gradually increased to 40 °C for 3 hours. The initial shaker speed was 90 rpm for 20 hours, and the speed was gradually increased to 130 rpm. The maximum hydrogen production rate obtained by the complex bacteria under these conditions was 12.6 mmol g(−1), which was 1.6 times that of the single strain X9 with a maximum hydrogen production rate of 5.7 mmol g(−1). Through continuous subculturing and the 10(th), 20(th), 40(th), 60(th), 80(th), 100(th) and 120(th) generation fermentation hydrogen production stability test analysis, no significant difference was observed between generations; the maximum difference was not more than 5%, indicating better functional properties and stability.
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spelling pubmed-90620662022-05-04 Study on the hydrogen production ability of high-efficiency bacteria and synergistic fermentation of maize straw by a combination of strains Bao, Hongxu Zhang, Xin Su, Hongzhi Li, Liangyu Lv, Zhizhong Zhang, Xinyue RSC Adv Chemistry Based on the principle of reciprocal symbiosis and co-metabolism of mixed culture microorganisms, a group of high-efficiency maize straw-degrading hydrogen-producing complex bacteria X9 + B2 was developed by a strain matching optimization experiment. Systematic research and optimization experiments were carried out on the mechanism of the main controlling factors affecting the hydrogen production of the complex bacteria. The results showed that the optimum conditions for the acid blasting pre-treatment of maize straw as a substrate were as follows: when the inoculation amount was 6% and the inoculum ratio was 1 : 1, at which point, we needed to simultaneously inoculate, the initial pH was 6, the substrate concentration was 12 g L(−1), and the culture time was 40 h. The complex bacteria adopted the variable temperature and speed regulation hydrogen production operational mode; after the initial temperature of 37 °C for 8 hours, the temperature was gradually increased to 40 °C for 3 hours. The initial shaker speed was 90 rpm for 20 hours, and the speed was gradually increased to 130 rpm. The maximum hydrogen production rate obtained by the complex bacteria under these conditions was 12.6 mmol g(−1), which was 1.6 times that of the single strain X9 with a maximum hydrogen production rate of 5.7 mmol g(−1). Through continuous subculturing and the 10(th), 20(th), 40(th), 60(th), 80(th), 100(th) and 120(th) generation fermentation hydrogen production stability test analysis, no significant difference was observed between generations; the maximum difference was not more than 5%, indicating better functional properties and stability. The Royal Society of Chemistry 2019-03-19 /pmc/articles/PMC9062066/ /pubmed/35517707 http://dx.doi.org/10.1039/c9ra00165d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Bao, Hongxu
Zhang, Xin
Su, Hongzhi
Li, Liangyu
Lv, Zhizhong
Zhang, Xinyue
Study on the hydrogen production ability of high-efficiency bacteria and synergistic fermentation of maize straw by a combination of strains
title Study on the hydrogen production ability of high-efficiency bacteria and synergistic fermentation of maize straw by a combination of strains
title_full Study on the hydrogen production ability of high-efficiency bacteria and synergistic fermentation of maize straw by a combination of strains
title_fullStr Study on the hydrogen production ability of high-efficiency bacteria and synergistic fermentation of maize straw by a combination of strains
title_full_unstemmed Study on the hydrogen production ability of high-efficiency bacteria and synergistic fermentation of maize straw by a combination of strains
title_short Study on the hydrogen production ability of high-efficiency bacteria and synergistic fermentation of maize straw by a combination of strains
title_sort study on the hydrogen production ability of high-efficiency bacteria and synergistic fermentation of maize straw by a combination of strains
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9062066/
https://www.ncbi.nlm.nih.gov/pubmed/35517707
http://dx.doi.org/10.1039/c9ra00165d
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