首页> 外文期刊>Applied and Environmental Microbiology >Sulfolobus acidocaldarius Transports Pentoses via a Carbohydrate Uptake Transporter 2 (CUT2)-Type ABC Transporter and Metabolizes Them through the Aldolase-Independent Weimberg Pathway
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Sulfolobus acidocaldarius Transports Pentoses via a Carbohydrate Uptake Transporter 2 (CUT2)-Type ABC Transporter and Metabolizes Them through the Aldolase-Independent Weimberg Pathway

机译:Sulfolobus acidocaldarius 通过碳水化合物摄取转运蛋白 2 (CUT2) 型 ABC 转运蛋白转运蛋白转运戊糖,并通过醛缩酶非依赖性 Weimberg 通路代谢它们

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摘要

Sulfolobus spp. possess a great metabolic versatility and grow heterotrophically on various carbon sources, such as different sugars and peptides. Known sugar transporters in Archaea predominantly belong to ABC transport systems. Although several ABC transporters for sugar uptake have been characterized in the crenarchaeon Sulfolobus solfataricus, only one homologue of these transporters, the maltose/maltooligomer transporter, could be identified in the closely related Sulfolobus acidocaldarius. Comparison of the transcriptome of S. acidocaldarius MW001 grown on peptides alone and peptides in the presence of D-xylose allowed for the identification of the ABC transporter for D-xylose and L-arabinose transport and the gaining of deeper insights into pentose catabolism under the respective growth conditions. The D-xylose/L-arabinose substrate binding protein (SBP) (Saci_2122) of the ABC transporter is unique in Archaea and shares more similarity to bacterial SBPs of the carbohydrate uptake transporter-2 (CUT2) family than to any characterized archaeal one. The identified pentose transporter is the first CUT2 family ABC transporter analyzed in the domain of Archaea. Single-gene deletion mutants of the ABC transporter subunits exemplified the importance of the transport system for D-xylose and L-arabinose uptake. Next to the transporter operon, enzymes of the aldolase-independent pentose catabolism branch were found to be upregulated in N-Z-Amine and D-xylose medium. The alpha-ketoglutarate semialdehyde dehydrogenase (KGSADH; Saci_1938) seemed not to be essential for growth on pentoses. However, the deletion mutant of the 2-keto-3-deoxyarabinoate/xylonate dehydratase (KDXD also known as KDAD; Saci_1939) was no longer able to catabolize D-xylose or L-arabinose, suggesting the absence of the aldolase-dependent branch in S. acidocaldarius.
机译:Sulfolobus spp. 具有很好的代谢多功能性,并在各种碳源上异养生长,例如不同的糖和肽。古细菌中已知的糖转运蛋白主要属于ABC转运系统。尽管在crenarchaeon Sulfolobus solfataricus中已经鉴定了几种用于糖吸收的ABC转运蛋白,但在密切相关的Sulfolobus acidocaldarius中只能鉴定出这些转运蛋白中的一种同系物,即麦芽糖/麦芽糖转运蛋白。比较单独在肽上生长的酸性链球菌MW001的转录组和在D-木糖存在下的肽,可以鉴定D-木糖和L-阿拉伯糖转运的ABC转运蛋白,并更深入地了解戊糖在各自生长条件下的分解代谢。ABC 转运蛋白的 D-木糖/L-阿拉伯糖底物结合蛋白 (SBP) (Saci_2122) 在古细菌中是独一无二的,与碳水化合物摄取转运蛋白-2 (CUT2) 家族的细菌 SBP 的相似性高于任何特征的古细菌 SBP。鉴定出的戊糖转运蛋白是第一个在古细菌领域分析的 CUT2 家族 ABC 转运蛋白。ABC转运蛋白亚基的单基因缺失突变体说明了转运系统对D-木糖和L-阿拉伯糖摄取的重要性。在转运蛋白操纵子旁边,发现醛缩酶非依赖性戊糖分解代谢分支的酶在 N-Z-胺和 D-木糖培养基中上调。α-酮戊二酸半醛脱氢酶(KGSADH;Saci_1938)似乎对戊糖的生长不是必不可少的。然而,2-酮基-3-脱氧阿拉伯二酸/木糖酸脱水酶(KDXD [也称为KDAD];Saci_1939)不再能够分解代谢D-木糖或L-阿拉伯糖,这表明酸性葡萄球菌中不存在醛缩酶依赖性分支。

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