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New Regulatory Gene That Contributes to Control of Bacteroides thetaiotaomicron Starch Utilization Genes

机译:新的调控基因有助于控制拟杆菌Thetaiotaomicron淀粉利用基因。

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摘要

Bacteroides thetaiotaomicron uses starch as a source of carbon and energy. Early steps in the pathway of starch utilization, such as starch binding and starch hydrolysis, are encoded by sus genes, which have been characterized previously. The sus structural genes are expressed only if cells are grown in medium containing maltose or higher oligomers of glucose. Regulation of the sus structural genes is mediated by SusR, an activator that is encoded by a gene located next to the sus structural genes. A strain with a disruption in susR cannot grow on starch but can still grow on maltose and maltotriose. A search for transposon-generated mutants that could not grow on maltose and maltotriose unexpectedly located a gene, designated malR, which regulates expression of an α-glucosidase not controlled by SusR. Although a disruption in susR did not affect expression of the malR controlled gene, a disruption in malR reduced expression of the sus structural genes. Thus, MalR appears to participate with SusR in regulation of the sus genes. Results of transcriptional fusion assays and reverse transcription-PCR experiments showed that malR is expressed constitutively. Moreover, multiple copies of malR provided on a plasmid (5 to 10 copies per cell) more than doubled the amount of α-glucosidase activity in cell extracts. Our results demonstrate that the starch utilization system of B. thetaiotaomicron is controlled on at least two levels by the regulatory proteins SusR and MalR.
机译:拟杆菌属细菌利用淀粉作为碳和能量的来源。淀粉利用途径中的早期步骤,例如淀粉结合和淀粉水解,是由sus基因编码的,这些基因先前已被表征。仅当细胞在含有麦芽糖或葡萄糖更高寡聚物的培养基中生长时,才会表达sus结构基因。 sus结构基因的调控是由SusR介导的,SusR是一种激活剂,由位于sus结构基因旁边的基因编码。 susR破坏的菌株不能在淀粉上生长,但仍可以在麦芽糖和麦芽三糖上生长。寻找无法在麦芽糖和麦芽三糖上生长的转座子产生的突变体的过程意外地找到了一个名为malR的基因,该基因可调节不受SusR控制的α-葡萄糖苷酶的表达。尽管susR的破坏不会影响malR调控基因的表达,但malR的破坏会降低sus结构基因的表达。因此,MalR似乎与SusR一起参与sus基因的调控。转录融合测定和逆转录-PCR实验的结果表明,malR组成型表达。此外,质粒上提供的malR多拷贝(每个细胞5至10个拷贝)使细胞提取物中的α-葡萄糖苷酶活性增加了一倍以上。我们的结果表明,B。thetaiotaomicron的淀粉利用系统在至少两个水平上受调节蛋白SusR和MalR的控制。

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