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Bacterial β‐glucosidase function and metabolic activity depend on soil management in semiarid rainfed agriculture

机译:半干旱雨养农业中细菌的β-葡萄糖苷酶功能和代谢活性取决于土壤管理

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AbstractGenomic and transcriptomic approaches were used to gain insights into the relationship between soil management and bacterial-mediated functions in an olive orchard agroecosystem. Four management practices were assessed in a 30-year trial in a semiarid Mediterranean region. Transcriptional activity of bacterial 16S rRNA genes increased in noncovered soils, indicating higher microbial maintenance requirements to thrive in less favorable environmental conditions. The 16S rRNA transcript:gene copy ratio confirmed this assumption and pointed toward a much higher constitutive expression from rRNA operons in noncovered soils and to even higher expression levels when spontaneous vegetation was removed chemically. As described for 16S rRNA, potential transcription did not reveal the real transcription of bacterial β-glucosidase genes, and higher gene expression in noncovered soils plus herbicides was evidenced. Since no relationship between total or soluble organic carbon and bacterial β-glucosidase transcription was found, the above hypothesis could indicate either that soluble organic carbon is not the main pool of enzyme-inducing substrates or that constitutive production of bacterial β-glucosidase enzymes increases as soil conditions worsen.
机译:摘要基因组学和转录组学方法被用于深入了解橄榄园农业生态系统中土壤管理与细菌介导的功能之间的关系。在一个半干旱的地中海地区进行的为期30年的试验中,评估了四种管理方法。在未覆盖的土壤中,细菌16S rRNA基因的转录活性增加,这表明较高的微生物维持要求使其在不利的环境条件下壮成长。 16S rRNA转录物:基因的复制比率证实了这一假设,并指出在未覆盖的土壤中rRNA操纵子的组成性表达要高得多,而化学去除自发性植被时的表达水平甚至更高。如针对16S rRNA所述,潜在的转录并未揭示细菌β-葡萄糖苷酶基因的真实转录,并且证明了在未覆盖土壤和除草剂中更高的基因表达。由于未发现总有机碳或可溶性有机碳与细菌β-葡萄糖苷酶转录之间的关系,因此上述假设可能表明可溶性有机碳不是酶诱导底物的主要来源,或者细菌β-葡萄糖苷酶的组成型产量随着土壤条件恶化。

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