microbial denitrification
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2021 ◽  
Vol 825 (1) ◽  
pp. 012011
Author(s):  
Wang Siyu ◽  
Yang Long ◽  
Wang Xiangchun ◽  
Zhou Yuan

2021 ◽  
pp. 125636
Author(s):  
Yinhao Liao ◽  
Shengjie Li ◽  
Xianfang Zhu ◽  
Zhengzhu Dang ◽  
Shuangyu Tang ◽  
...  

2021 ◽  
Vol 754 ◽  
pp. 141965
Author(s):  
Haiguang Yuan ◽  
Shaobin Huang ◽  
Jianqi Yuan ◽  
Yingying You ◽  
Yongqing Zhang

2020 ◽  
Author(s):  
Takehiko Tosha ◽  
Raika Yamagiwa ◽  
Hitomi Sawai ◽  
Yoshitsugu Shiro

2020 ◽  
Vol 96 (8) ◽  
Author(s):  
Mª Blanca Pascual ◽  
Miguel Ángel Sánchez-Monedero ◽  
María L Cayuela ◽  
Shun Li ◽  
Stefan B Haderlein ◽  
...  

ABSTRACT Biochar (BC) has been shown to influence microbial denitrification and mitigate soil N2O emissions. However, it is unclear if BC is able to directly stimulate the microbial reduction of N2O to N2. We hypothesized that the ability of BC to lower N2O emissions could be related not only to its ability to store electrons, but to donate them to bacteria that enzymatically reduce N2O. Therefore, we carried out anoxic incubations with Paracoccus denitrificans, known amounts of N2O, and nine contrasting BCs, in the absence of any other electron donor or acceptor. We found a strong and direct correlation between the extent and rates of N2O reduction with BC's EDC/EEC (electron donating capacity/electron exchange capacity). Apart from the redox capacity, other BC properties were found to regulate the BC's ability to increase N2O reduction by P. denitrificans. For this specific BC series, we found that a high H/C and ash content, low surface area and poor lignin feedstocks favored N2O reduction. This provides valuable information for producing tailored BCs with the potential to assist and promote the reduction of N2O in the pursuit of reducing this greenhouse gas emissions.


2020 ◽  
Author(s):  
Kuppusamy Sathishkumar ◽  
Yi Li ◽  
Rana Muhammad Adnan Ikram

<p>Biochar is extensively used in environmental pollutant remediation because of its diverse property, however the effect of biochar on microbial nitrate reduction and electrochemical behavior of biochar remain unknown. Also electron transfer from the microbial cells to electron donor or acceptor have been transport across the extracellular polymeric substances (EPS), however it was unclear whether extracellular polymeric substances captured or enhance the electrons.  Hence, aim of the present study is to investigate the electrochemical behavior of biochar and its effects on microbial nitrate reduction and elucidate the role of extracellular polymeric substances in extracellular electron transfer (EET).  The biochar was prepared at different pyrolysis temperatures (400 °C, 500 °C and 600 °C) and their electrochemical behavior was characterized by electrochemical analysis (cyclic voltammetry, electrochemical impedance spectrum, chronoamperometry). Results demonstrated that all the biochars could donate and accept the electrons, impact of biochar on microbial nitrate reduction was studied and the results showed that biochar prepared at 400 °C significantly enhances microbial nitrate reduction process. Phenol O-H and quinone C=O surface functional groups on the biochar contributes in the overall electron exchange which accelerated the nitrate reduction. The role of EPS in EET by electrochemical analysis results reveals that outer membrane c-type cytochrome and flavin protein from the biofilm was involved in electron transfer process, and EPS act as transient media for microbial EET. Overall, present study suggested that biochar could be used as eco-friendly material for the enhancement of microbial denitrification.</p>


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