TY - JOUR
T1 - Electron transport chains in organohalide-respiring bacteria and bioremediation implications
AU - Wang, Shanquan
AU - Qiu, Lan
AU - Liu, Xiaowei
AU - Xu, Guofang
AU - Siegert, Michael
AU - Lu, Qihong
AU - Juneau, Philippe
AU - Yu, Ling
AU - Liang, Dawei
AU - He, Zhili
AU - Qiu, Rongliang
N1 - Publisher Copyright:
© 2018 Elsevier Inc.
PY - 2018/7/1
Y1 - 2018/7/1
N2 - In situ remediation employing organohalide-respiring bacteria represents a promising solution for cleanup of persistent organohalide pollutants. The organohalide-respiring bacteria conserve energy by utilizing H2 or organic compounds as electron donors and organohalides as electron acceptors. Reductive dehalogenase (RDase), a terminal reductase of the electron transport chain in organohalide-respiring bacteria, is the key enzyme that catalyzes halogen removal. Accumulating experimental evidence thus far suggests that there are distinct models for respiratory electron transfer in organohalide-respirers of different lineages, e.g., Dehalococcoides, Dehalobacter, Desulfitobacterium and Sulfurospirillum. In this review, to connect the knowledge in organohalide-respiratory electron transport chains to bioremediation applications, we first comprehensively review molecular components and their organization, together with energetics of the organohalide-respiratory electron transport chains, as well as recent elucidation of intramolecular electron shuttling and halogen elimination mechanisms of RDases. We then highlight the implications of organohalide-respiratory electron transport chains in stimulated bioremediation. In addition, major challenges and further developments toward understanding the organohalide-respiratory electron transport chains and their bioremediation applications are identified and discussed.
AB - In situ remediation employing organohalide-respiring bacteria represents a promising solution for cleanup of persistent organohalide pollutants. The organohalide-respiring bacteria conserve energy by utilizing H2 or organic compounds as electron donors and organohalides as electron acceptors. Reductive dehalogenase (RDase), a terminal reductase of the electron transport chain in organohalide-respiring bacteria, is the key enzyme that catalyzes halogen removal. Accumulating experimental evidence thus far suggests that there are distinct models for respiratory electron transfer in organohalide-respirers of different lineages, e.g., Dehalococcoides, Dehalobacter, Desulfitobacterium and Sulfurospirillum. In this review, to connect the knowledge in organohalide-respiratory electron transport chains to bioremediation applications, we first comprehensively review molecular components and their organization, together with energetics of the organohalide-respiratory electron transport chains, as well as recent elucidation of intramolecular electron shuttling and halogen elimination mechanisms of RDases. We then highlight the implications of organohalide-respiratory electron transport chains in stimulated bioremediation. In addition, major challenges and further developments toward understanding the organohalide-respiratory electron transport chains and their bioremediation applications are identified and discussed.
KW - Bioremediation
KW - Electron transport chain
KW - Microbial reductive dehalogenation
KW - Organohalide-respiring bacteria
UR - https://www.scopus.com/pages/publications/85045052816
U2 - 10.1016/j.biotechadv.2018.03.018
DO - 10.1016/j.biotechadv.2018.03.018
M3 - 文献综述
C2 - 29631017
AN - SCOPUS:85045052816
SN - 0734-9750
VL - 36
SP - 1194
EP - 1206
JO - Biotechnology Advances
JF - Biotechnology Advances
IS - 4
ER -