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Development of a Double-Crossover Markerless Gene Deletion System in Bifidobacterium longum: Functional Analysis of the α-Galactosidase Gene for Raffinose Assimilation

机译:长双歧杆菌双跨无标记基因缺失系统的发展:棉子糖同化α-半乳糖苷酶基因的功能分析

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Functional analysis of Bifidobacterium genes is essential for understanding host- Bifidobacterium interactions with beneficial effects on human health; however, the lack of an effective targeted gene inactivation system in bifidobacteria has prevented the development of functional genomics in this bacterium. Here, we report the development of a markerless gene deletion system involving a double crossover in Bifidobacterium longum . Incompatible plasmid vectors were used to facilitate a second crossover step. The conditional replication vector pBS423- ΔrepA , which lacks the plasmid replication gene repA , was integrated into the target gene by a first crossover event. Subsequently, the replicative plasmid pTBR101-CM, which harbors repA , was introduced into this integrant to facilitate the second crossover step and subsequent elimination of the excised conditional replication vector from the cells by plasmid incompatibility. The proposed system was confirmed to work as expected in B. longum 105-A using the chromosomal full-length β-galactosidase gene as a target. Markerless gene deletion was tested using the aga gene, which encodes α-galactosidase, whose substrates include raffinose. Almost all the pTBR101-CM-transformed strains became double-crossover recombinants after subculture, and 4 out of the 270 double-crossover recombinants had lost the ability to assimilate raffinose. Genotype analysis of these strains revealed markerless gene deletion of aga . Carbohydrate assimilation analysis and α-galactosidase activity measurement were conducted using both the representative mutant and a plasmid-based aga -complemented strain. These functional analyses revealed that aga is the only gene encoding a functional α-galactosidase enzyme in B. longum 105-A.
机译:双歧杆菌基因的功能分析对于了解宿主与双歧杆菌的相互作用对人类健康具有有益作用至关重要。然而,双歧杆菌缺乏有效的靶向基因灭活系统已阻止了该细菌功能基因组学的发展。在这里,我们报道了一种无标记基因缺失系统的发展,该系统涉及在长双歧杆菌中的双重交叉。不相容的质粒载体被用于促进第二个交换步骤。缺少质粒复制基因repA的条件复制载体pBS423-ΔrepA通过第一次交叉事件整合到目标基因中。随后,将带有repA的复制质粒pTBR101-CM引入该整合物中,以促进第二个交叉步骤,并随后通过质粒不相容性从细胞中去除切下的条件复制载体。使用染色体全长β-半乳糖苷酶基因作为靶标,证实了拟议的系统在长双歧杆菌105-A中能够按预期工作。使用编码α-半乳糖苷酶(其底物包括棉子糖)的aga基因测试了无标记基因的缺失。继代培养后,几乎所有经pTBR101-CM转化的菌株都变成了双交换重组体,并且在270个双交换重组体中有4个失去了吸收棉子糖的能力。这些菌株的基因型分析显示aga的无标记基因缺失。使用代表性突变体和基于质粒的aga互补菌株进行了碳水化合物同化分析和α-半乳糖苷酶活性测量。这些功能分析表明,aga是长双歧杆菌105-A中唯一编码功能性α-半乳糖苷酶的基因。

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