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首页> 外文期刊>Applied and Environmental Microbiology >Carbohydrate Hydrolysis and Transport in the Extreme Thermoacidophile Sulfolobus solfataricus
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Carbohydrate Hydrolysis and Transport in the Extreme Thermoacidophile Sulfolobus solfataricus

机译:极端嗜热嗜酸菌Sulfolobus solfataricus中的碳水化合物水解和运输。

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Extremely thermoacidophilic microbes, such as Sulfolobus solfataricus, are strict chemoheterotrophs despite their geologic niche. To clarify their ecophysiology, the overlapping roles of endoglucanases and carbohydrate transporters were examined during growth on soluble cellodextrins as the sole carbon and energy source. Strain-specific differences in genome structure implied a unique role for one of three endogenous endoglucanases. Plasmid-based endoglucanase expression promoted the consumption of oligosaccharides, including cellohexaose (G6) through cellonanaose (G9). Protein transporters required for cellodextrin uptake were identified through mutagenesis and complementation of an ABC transporter cassette, including a putative oligosaccharide binding protein. In addition, ablation of the binding protein compromised growth on glucose and alpha-linked oligosaccharides while inactivation of a previously described glucose transporter had no apparent impact. These data demonstrate that S. solfataricus employs a redundant mechanism for soluble cellodextrin catabolism having both substrate uptake and extracytoplasmic hydrolytic components.
机译:尽管嗜热嗜酸性微生物具有地质优势,但它们具有极强的嗜酸性微生物,例如Sulfolobus solfataricus。为了阐明它们的生态生理学,在以可溶性纤维糊精为唯一碳和能源的生长过程中,检查了内切葡聚糖酶和碳水化合物转运蛋白的重叠作用。菌株特异性的基因组结构差异暗示了三种内源性内切葡聚糖酶之一的独特作用。基于质粒的内切葡聚糖酶的表达促进了低聚糖的消耗,包括低聚纤维素(G6)和纤维素(G9)。通过诱变和互补ABC转运蛋白盒(包括推定的寡糖结合蛋白)来鉴定纤维糊精摄取所需的蛋白转运蛋白。另外,结合蛋白的消融损害了葡萄糖和α-连接的寡糖上的生长,而先前描述的葡萄糖转运蛋白的失活没有明显的影响。这些数据表明,S。solfataricus采用了一种冗余的机制来溶解可溶性纤维糊精分解代谢,同时具有底物摄取和胞质外水解成分。

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