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Photo-fermentative bacteria aggregation triggered by L-cysteine during hydrogen production

BACKGROUND: Hydrogen recovered from organic wastes and solar energy by photo-fermentative bacteria (PFB) has been suggested as a promising bioenergy strategy. However, the use of PFB for hydrogen production generally suffers from a serious biomass washout from photobioreactor, due to poor flocculati...

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Autores principales: Xie, Guo-Jun, Liu, Bing-Feng, Xing, De-Feng, Nan, Jun, Ding, Jie, Ren, Nan-Qi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3648407/
https://www.ncbi.nlm.nih.gov/pubmed/23639008
http://dx.doi.org/10.1186/1754-6834-6-64
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author Xie, Guo-Jun
Liu, Bing-Feng
Xing, De-Feng
Nan, Jun
Ding, Jie
Ren, Nan-Qi
author_facet Xie, Guo-Jun
Liu, Bing-Feng
Xing, De-Feng
Nan, Jun
Ding, Jie
Ren, Nan-Qi
author_sort Xie, Guo-Jun
collection PubMed
description BACKGROUND: Hydrogen recovered from organic wastes and solar energy by photo-fermentative bacteria (PFB) has been suggested as a promising bioenergy strategy. However, the use of PFB for hydrogen production generally suffers from a serious biomass washout from photobioreactor, due to poor flocculation of PFB. In the continuous operation, PFB cells cannot be efficiently separated from supernatant and rush out with effluent from reactor continuously, which increased the effluent turbidity, meanwhile led to increases in pollutants. Moreover, to replenish the biomass washout, substrate was continuously utilized for cell growth rather than hydrogen production. Consequently, the poor flocculability not only deteriorated the effluent quality, but also decreased the potential yield of hydrogen from substrate. Therefore, enhancing the flocculability of PFB is urgent necessary to further develop photo-fermentative process. RESULTS: Here, we demonstrated that L-cysteine could improve hydrogen production of Rhodopseudomonas faecalis RLD-53, and more importantly, simultaneously trigger remarkable aggregation of PFB. Experiments showed that L-cysteine greatly promoted the production of extracellular polymeric substances, especially secretion of protein containing more disulfide bonds, and help for enhancement stability of floc of PFB. Through formation of disulfide bonds, L-cysteine not only promoted production of EPS, in particular the secretion of protein, but also stabilized the final confirmation of protein in EPS. In addition, the cell surface elements and functional groups, especially surface charged groups, have also been changed by L-cysteine. Consequently, absolute zeta potential reached a minimum value at 1.0 g/l of L-cysteine, which obviously decreased electrostatic repulsion interaction energy based on DLVO theory. Total interaction energy barrier decreased from 389.77 KT at 0.0 g/l of L-cysteine to 127.21 kT at 1.0 g/l. CONCLUSIONS: Thus, the strain RLD-53 overcame the total energy barrier and flocculated effectively. After a short settlement, the biomass rush out will be significantly reduced and the effluent quality will be greatly improved in the continuous operation. Furthermore, aggregation of PFB could enable high biomass hold-up of photobioreactor, which allows the photobioreactor to operate at low hydraulic retention time and high organic loading rate. Therefore, the described flocculation behaviour during photo-hydrogen production is potentially suitable for practicable application.
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spelling pubmed-36484072013-05-10 Photo-fermentative bacteria aggregation triggered by L-cysteine during hydrogen production Xie, Guo-Jun Liu, Bing-Feng Xing, De-Feng Nan, Jun Ding, Jie Ren, Nan-Qi Biotechnol Biofuels Research BACKGROUND: Hydrogen recovered from organic wastes and solar energy by photo-fermentative bacteria (PFB) has been suggested as a promising bioenergy strategy. However, the use of PFB for hydrogen production generally suffers from a serious biomass washout from photobioreactor, due to poor flocculation of PFB. In the continuous operation, PFB cells cannot be efficiently separated from supernatant and rush out with effluent from reactor continuously, which increased the effluent turbidity, meanwhile led to increases in pollutants. Moreover, to replenish the biomass washout, substrate was continuously utilized for cell growth rather than hydrogen production. Consequently, the poor flocculability not only deteriorated the effluent quality, but also decreased the potential yield of hydrogen from substrate. Therefore, enhancing the flocculability of PFB is urgent necessary to further develop photo-fermentative process. RESULTS: Here, we demonstrated that L-cysteine could improve hydrogen production of Rhodopseudomonas faecalis RLD-53, and more importantly, simultaneously trigger remarkable aggregation of PFB. Experiments showed that L-cysteine greatly promoted the production of extracellular polymeric substances, especially secretion of protein containing more disulfide bonds, and help for enhancement stability of floc of PFB. Through formation of disulfide bonds, L-cysteine not only promoted production of EPS, in particular the secretion of protein, but also stabilized the final confirmation of protein in EPS. In addition, the cell surface elements and functional groups, especially surface charged groups, have also been changed by L-cysteine. Consequently, absolute zeta potential reached a minimum value at 1.0 g/l of L-cysteine, which obviously decreased electrostatic repulsion interaction energy based on DLVO theory. Total interaction energy barrier decreased from 389.77 KT at 0.0 g/l of L-cysteine to 127.21 kT at 1.0 g/l. CONCLUSIONS: Thus, the strain RLD-53 overcame the total energy barrier and flocculated effectively. After a short settlement, the biomass rush out will be significantly reduced and the effluent quality will be greatly improved in the continuous operation. Furthermore, aggregation of PFB could enable high biomass hold-up of photobioreactor, which allows the photobioreactor to operate at low hydraulic retention time and high organic loading rate. Therefore, the described flocculation behaviour during photo-hydrogen production is potentially suitable for practicable application. BioMed Central 2013-05-03 /pmc/articles/PMC3648407/ /pubmed/23639008 http://dx.doi.org/10.1186/1754-6834-6-64 Text en Copyright © 2013 Xie et al.; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Xie, Guo-Jun
Liu, Bing-Feng
Xing, De-Feng
Nan, Jun
Ding, Jie
Ren, Nan-Qi
Photo-fermentative bacteria aggregation triggered by L-cysteine during hydrogen production
title Photo-fermentative bacteria aggregation triggered by L-cysteine during hydrogen production
title_full Photo-fermentative bacteria aggregation triggered by L-cysteine during hydrogen production
title_fullStr Photo-fermentative bacteria aggregation triggered by L-cysteine during hydrogen production
title_full_unstemmed Photo-fermentative bacteria aggregation triggered by L-cysteine during hydrogen production
title_short Photo-fermentative bacteria aggregation triggered by L-cysteine during hydrogen production
title_sort photo-fermentative bacteria aggregation triggered by l-cysteine during hydrogen production
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3648407/
https://www.ncbi.nlm.nih.gov/pubmed/23639008
http://dx.doi.org/10.1186/1754-6834-6-64
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