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Responses of methanotrophic activity in soils and cultures to water stress.

机译:土壤和培养物中甲烷营养活动对水分胁迫的响应。

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Diffusive gas transport at high water contents and physiological water stress at low water contents limited atmospheric methane consumption rates during experimental manipulations of soil water content and water potential. Maximum rates of atmospheric methane consumption occurred at a soil water content of 25% (grams per gram [dry weight]) and a water potential of about -0.2 MPa. In contrast, uptake rates were highest at a water content of 38% and a water potential of -0.03 MPa when methane was initially present at 200 ppm. Uptake rates of atmospheric and elevated methane decreased when water potentials were reduced by adding either ionic or nonionic solutes to soils with a fixed water content. Uptake rates during these manipulations were lower when sodium chloride or potassium chloride was used to adjust water potential rather than sucrose. The response of methane consumption by soils to water potential was somewhat less pronounced than the response of methanotrophic cultures (e.g., Methylosinus trichosporium OB3b, Methylomonas rubra [= M. methanica], an isolate from a freshwater peat, and an isolate from an intertidal marine mudflat). However, unlike soils, methanotrophic cultures exhibited a stronger adverse response to nonionic solutes than to sodium chloride.
机译:在土壤水含量和水势的实验操作期间,高水分含量下的扩散气体传输和低水分含量下的生理水分胁迫限制了大气甲烷的消耗速率。大气甲烷消耗的最大速率发生在土壤含水量为25%(克/克[干重])和约-0.2 MPa的水势时。相反,当甲烷最初含量为200 ppm时,在38%的水含量和-0.03 MPa的水势下,吸收率最高。当通过向水含量固定的土壤中添加离子或非离子溶质而降低水势时,大气和高甲烷的吸收率会降低。当使用氯化钠或氯化钾而不是蔗糖来调节水势时,在这些操作过程中的摄取率较低。土壤甲烷消耗对水势的响应要比甲烷营养培养的响应(例如,甲烷三栖孢霉OB3b,甲基甲烷单胞菌[= M. methanica],淡水泥炭的分离物和潮间带海洋分离物)的响应稍差。泥滩)。但是,与土壤不同,甲烷营养培养物对非离子溶质的不良反应要强于对氯化钠的不良反应。

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