Parche Stephan, Amon Johannes, Jankovic Ivana, Rezzonico Enea, Beleut Manfred, Barutçu Hande, Schendel Inke, Eddy Mike P, Burkovski Andreas, Arigoni Fabrizio, Titgemeyer Fritz
Nestlé Research Center, Vers-chez-les-Blanc, Lausanne, Switzerland.
J Mol Microbiol Biotechnol. 2007;12(1-2):9-19. doi: 10.1159/000096455.
Here we present the complement of the carbohydrate uptake systems of the strictly anaerobic probiotic Bifidobacterium longum NCC2705. The genome analysis of this bacterium predicts that it has 19 permeases for the uptake of diverse carbohydrates. The majority belongs to the ATP-binding cassette transporter family with 13 systems identified. Among them are permeases for lactose, maltose, raffinose, and fructooligosaccharides, a commonly used prebiotic additive. We found genes that encode a complete phosphotransferase system (PTS) and genes for three permeases of the major facilitator superfamily. These systems could serve for the import of glucose, galactose, lactose, and sucrose. Growth analysis of NCC2705 cells combined with biochemical characterization and microarray data showed that the predicted substrates are consumed and that the corresponding transport and catabolic genes are expressed. Biochemical analysis of the PTS, in which proteins are central in regulation of carbon metabolism in many bacteria, revealed that B. longum has a glucose-specific PTS, while two other species (Bifidobacterium lactis and Bifidobacterium bifidum) have a fructose-6-phosphate-forming fructose-PTS instead. It became obvious that most carbohydrate systems are closely related to those from other actinomycetes, with a few exceptions. We hope that this report on B. longum carbohydrate transporter systems will serve as a guide for further in-depth analyses on the nutritional lifestyle of this beneficial bacterium.
在此,我们展示了严格厌氧的益生菌长双歧杆菌NCC2705碳水化合物摄取系统的补充内容。对该细菌的基因组分析预测,它有19种通透酶用于摄取多种碳水化合物。其中大多数属于ATP结合盒转运蛋白家族,已鉴定出13个系统。其中包括乳糖、麦芽糖、棉子糖和低聚果糖(一种常用的益生元添加剂)的通透酶。我们发现了编码完整磷酸转移酶系统(PTS)的基因以及主要促进剂超家族的三种通透酶的基因。这些系统可用于葡萄糖、半乳糖、乳糖和蔗糖的导入。对NCC2705细胞的生长分析结合生化特性和微阵列数据表明,预测的底物被消耗,相应的转运和分解代谢基因得以表达。对PTS的生化分析表明,长双歧杆菌具有葡萄糖特异性PTS,而另外两个物种(乳酸双歧杆菌和两歧双歧杆菌)则具有形成6-磷酸果糖的果糖-PTS,PTS中的蛋白质在许多细菌的碳代谢调节中起核心作用。很明显,大多数碳水化合物系统与其他放线菌的系统密切相关,只有少数例外。我们希望这份关于长双歧杆菌碳水化合物转运系统的报告能为进一步深入分析这种有益细菌的营养生活方式提供指导。