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Effects of flue gas desulfurization gypsum by-products on microbial biomass and community structure in alkaline-saline soils

机译:烟气脱硫石膏副产物对盐碱土微生物量和群落结构的影响

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Purpose For an alkaline-saline region in Northwest China, we examined the responses of soil microbial communities to flue gas desulfurization gypsum by-products (FGDB), a new ameliorant for alkaline-saline soils. In 2009 and 2010, we collected soils from 0-20 cm and 20-40 cm depths along an experimental FGDB gradient (0, 0.74, 1.49, 2.25, and 3.00 kg FGDB m~(-2)). Materials and methods As a measure of microbial community composition and biomass, we analyzed phospholipid fatty acids (PLFAs). We used real-time quantitative poly-merase chain reaction (qPCR) to measure abundance of bacterial 16 S rRNA copy numbers. Additionally, physico-chemical soil parameters were measured by common laboratory methods. Results and discussion Microbial community composition differed along the FGDB gradient; however, the microbial parameters did not follow a linear response. We found that, in 2009, total PLFA concentrations, and concentrations of total bacterial and Gram-negative bacterial PLFAs were slightly higher at intermediate FGDB concentrations. In 2010, total PLFA concentrations, and concentrations of total bacterial, Gram-positive bacterial, Gram-negative bacterial, and fungal PLFAs as well as the fungal:bacterial PLFA ratio were highest at 1.49 kg FGDB m~(-2) and 3.00 kg FGDB m~(-2). PLFA concentrations often differed between 2009 and 2010; however, the patterns varied across the gradient and across microbial groups. For both years, PLFA concentrations were generally higher at 0-20 cm depth than at 20-40 cm depth. Similar results were obtained for the 16 S rRNA copy numbers of bacteria at 0-20 cm depth. FGDB addition resulted in an increase in soil Ca~(2+) and NO_3~--N and a decrease in pH and electrical conductivity (EC). Shifts in PLFA-based microbial community composition and biomass could partly be explained by pH, soil organic carbon, total nitrogen (TN), soil moisture, EC, inorganic nitrogen, C/N, and Ca~(2-). Indirect effects via shifts in abiotic soil properties, therefore, seem to be an important pathway through which FGDB affect soil microbial communities. Conclusions Our results demonstrate that addition of FGDB leads to significant changes in soil physicochemical and microbial parameters. As such, addition of FGDB can have large impacts on the functioning of soil ecosystems, such as carbon and nitrogen cycling processes.
机译:目的对于中国西北的一个盐碱地区,我们研究了土壤微生物群落对烟碱脱盐石膏副产物(FGDB)(一种新型的盐碱土壤改良剂)的响应。在2009年和2010年,我们沿实验FGDB梯度(0、0.74、1.49、2.25和3.00 kg FGDB m〜(-2))收集了0-20 cm和20-40 cm深度的土壤。材料和方法作为衡量微生物群落组成和生物量的一种方法,我们分析了磷脂脂肪酸(PLFA)。我们使用实时定量聚合酶链反应(qPCR)来测量细菌16 S rRNA拷贝数的丰度。另外,通过常规实验室方法测量理化土壤参数。结果与讨论微生物群落组成随FGDB梯度的不同而不同。但是,微生物参数没有线性响应。我们发现,在中等FGDB浓度下,2009年的总PLFA浓度以及总细菌和革兰氏阴性细菌PLFA的浓度略高。 2010年,总PLFA浓度以及总细菌,革兰氏阳性细菌,革兰氏阴性细菌和真菌PLFA以及真菌:细菌PLFA的浓度最高,分别为1.49 kg FGDB m〜(-2)和3.00 kg FGDB m〜(-2)。 2009年至2010年间,PLFA浓度通常有所不同;但是,模式在整个梯度和整个微生物群之间都不同。两年来,在0-20厘米深度处的PLFA浓度通常都比20-40厘米深度处的浓度高。对于0-20 cm深度的细菌,其16 S rRNA拷贝数获得了相似的结果。 FGDB的添加导致土壤Ca〜(2+)和NO_3〜--N增加,pH和电导率(EC)降低。基于PLFA的微生物群落组成和生物量的变化可以部分解释为pH值,土壤有机碳,总氮(TN),土壤湿度,EC,无机氮,C / N和Ca〜(2-)。因此,通过改变非生物土壤特性产生的间接影响似乎是FGDB影响土壤微生物群落的重要途径。结论我们的结果表明,添加FGDB会导致土壤理化和微生物参数发生重大变化。因此,添加FGDB会对土壤生态系统的功能产生重大影响,例如碳和氮循环过程。

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