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首页> 外文期刊>Soil Biology & Biochemistry >Carbon pulses but not phosphorus pulses are related to decreases in microbial biomass during repeated drying and rewetting of soils
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Carbon pulses but not phosphorus pulses are related to decreases in microbial biomass during repeated drying and rewetting of soils

机译:碳脉冲而不是磷脉冲与土壤反复干燥和重新润湿过程中微生物量的减少有关

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摘要

Drying and rewetting cycles are known to be important for the turnover of carbon (C) in soil, but less is known about the turnover of phosphorus (P) and its relation to C cycling. In this study the effects of repeated drying-rewetting (DRW) cycles on phosphorus (P) and carbon (C) pulses and microbial biomass were investigated. Soil (Chromic Luvisol) was amended with different C substrates (glucose, cellulose, starch; 2.5 g C kg-1) to manipulate the size and community composition of the microbial biomass, thereby altering P mineralisation and immobilisation and the forms and availability of P. Subsequently, soils were either subjected to three DRW cycles (1 week dry/1 week moist) or incubated at constant water content (70% water filled pore space). Rewetting dry soil always produced an immediate pulse in respiration, between 2 and 10 times the basal rates of the moist incubated controls, but respiration pulses decreased with consecutive DRW cycles. DRW increased total CO2 production in glucose and starch amended and non-amended soils, but decreased it in cellulose amended soil. Large differences between the soils persisted when respiration was expressed per unit of microbial biomass. In all soils, a large reduction in microbial biomass (C and P) occurred after the first DRW event, and microbial C and P remained lower than in the moist control. Pulses in extractable organic C (EOC) after rewetting were related to changes in microbial C only during the first DRW cycle; EOC concentrations were similar in all soils despite large differences in microbial C and respiration rates. Up to 7 mg kg-1 of resin extractable P (Presin) was released after rewetting, representing a 35-40% increase in P availability. However, the pulse in Presin had disappeared after 7 d of moist incubation. Unlike respiration and reductions in microbial P due to DRW, pulses in Presin increased during subsequent DRW cycles, indicating that the source of the P pulse was probably not the microbial biomass. Microbial community composition as indicated by fatty acid methyl ester (FAME) analysis showed that in amended soils, DRW resulted in a reduction in fungi and an increase in Gram-positive bacteria. In contrast, the microbial community in the non-amended soil was not altered by DRW. The non-selective reduction in the microbial community in the non-amended soil suggests that indigenous microbial communities may be more resilient to DRW. In conclusion, DRW cycles result in C and P pulses and alter the microbial community composition. Carbon pulses but not phosphorus pulses are related to changes in microbial biomass. The transient pulses in available P could be important for P availability in soils under Mediterranean climates.
机译:干燥和再湿循环对于土壤中碳(C)的周转很重要,但对磷(P)的周转及其与C循环的关系知之甚少。在这项研究中,研究了反复干燥-再湿(DRW)循环对磷(P)和碳(C)脉冲以及微生物生物量的影响。用不同的C底物(葡萄糖,纤维素,淀粉; 2.5 g C kg-1)对土壤(Chromic Luvisol)进行修正,以控制微生物生物量的大小和群落组成,从而改变P的矿化和固定化以及P的形式和可用性随后,对土壤进行三个DRW循环(干燥1周/湿润1周)或在恒定的水分含量(70%的水填充孔隙空间)下孵育。重新润湿干燥的土壤总是会立即产生呼吸脉冲,是潮湿温育对照的基础速率的2到10倍,但是随着连续的DRW循环,呼吸脉冲减少。 DRW增加了葡萄糖和淀粉改良土壤和未改良土壤中的总CO2产量,但降低了纤维素改良土壤中的CO2总产量。当每单位微生物生物量表达呼吸时,土壤之间仍然存在很大差异。在所有土壤中,第一次DRW事件发生后,微生物生物量(C和P)大大减少,微生物C和P仍然低于潮湿对照。重新润湿后,可萃取有机碳(EOC)的脉冲仅在第一个DRW循环中与微生物C的变化有关。尽管微生物C和呼吸速率差异很大,但所有土壤中的EOC浓度均相似。重新润湿后释放出高达7 mg kg-1的可提取树脂的P(松香),这表明P的利用率增加了35-40%。但是,湿润培养7天后,Presin中的脉冲消失了。与DRW引起的呼吸作用和微生物P减少不同,Presin中的脉冲在随后的DRW循环中增加,这表明P脉冲的来源可能不是微生物生物量。脂肪酸甲酯(FAME)分析表明,微生物群落组成表明,在改良土壤中,DRW导致真菌减少,革兰氏阳性细菌增加。相反,DRW不会改变未改良土壤中的微生物群落。在未改良的土壤中微生物群落的非选择性减少表明,土著微生物群落对DRW的抵抗力可能更大。总之,DRW循环会导致C和P脉冲并改变微生物群落组成。碳脉冲而不是磷脉冲与微生物生物量的变化有关。有效磷的瞬时脉冲对于地中海气候下土壤中磷的有效性可能很重要。

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