首页> 外文期刊>Biodegradation >Thermodynamic and kinetic analysis of the H2 threshold for Methanobacterium bryantii M.o.H.
【24h】

Thermodynamic and kinetic analysis of the H2 threshold for Methanobacterium bryantii M.o.H.

机译:Bryantii M.o.H.甲烷杆菌H2阈值的热力学和动力学分析。

获取原文
获取原文并翻译 | 示例
           

摘要

H2 thresholds, concentrations below which H2 consumption by a microbial group stops, have been associated with microbial respiratory processes such as dechlorination, denitrification, sulfate reduction, and methanogenesis. Researchers have proposed that observed H2 thresholds occur when the available Gibbs free energy is minimal (DeltaG approximately 0) for a specific respiratory reaction. Others suggest that microbial kinetics also may play a role in controlling the thresholds. Here, we comprehensively evaluate H2 thresholds in light of microbial thermodynamic and kinetic principles. We show that a thermodynamic H2 threshold for Methanobacterium bryantii M.o.H. is not controlled by DeltaG for methane production from H2 + HCO3-. We repeatedly attain a H2 threshold near 0.4 nM, with a range of 0.2-1 nM, and DeltaG for methanogenesis from H2 + HCO3- is positive, +5 to +7 kJ/mol-H2, at the threshold in most cases. We postulate that the H2 threshold is controlled by a separate reaction other than methane production. The electrons from H2 oxidation are transferred to an electron sink that is a solid-phase component of the cells. We also show that a kinetic threshold (S(min)) occurs at a theoretically computed H2 concentration of about 2400 nM at which biomass growth shifts from positive to negative.
机译:H 2阈值(低于此浓度的微生物组停止消耗H 2)与微生物呼吸过程有关,例如脱氯,反硝化,硫酸盐还原和甲烷化。研究人员提出,当特定呼吸反应的可用吉布斯自由能极小(DeltaG约为0)时,就会出现观察到的H2阈值。其他人认为,微生物动力学也可能在控制阈值中起作用。在这里,我们根据微生物的热力学和动力学原理全面评估了H2阈值。我们显示了甲烷甲烷杆菌M.o.H的热力学H2阈值。 H2 + HCO3-产生的甲烷不受DeltaG的控制。我们反复获得的H2阈值接近0.4 nM,范围为0.2-1 nM,并且在大多数情况下,H2 + HCO3-甲烷生成的DeltaG为正值,从+5到+7 kJ / mol-H2。我们假设H2阈值受甲烷生成以外的单独反应控制。来自H2氧化的电子被转移到电子吸收器,该电子吸收器是细胞的固相成分。我们还表明,动力学阈值(S(min))在理论计算的H2浓度约为2400 nM时发生,在该浓度下生物量的增长从正向负移。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号