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Identification of chromosomal genes located downstream of dctD that affect the requirement for calcium and the lipopolysaccharide layer of Rhizobium leguminosarum

机译:鉴定位于DCTD下游的染色体基因,影响钙和摇滚杆菌的脂多糖层的要求

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In Rhizobium leguminosarum both the C4-dicarboxylate transport system and wild-type lipopolysaccharide layer (LPS) are essential for nitrogen fixation. A Tn5 mutant (RU301) of R. leguminosarum bv. viciae 3841, was isolated that is only able to synthesize LPS II, which lacks the O-antigen. Strain RU301 exhibits a rough colony morphology, flocculates in culture and is unable to swarm in TY agar. It also fails to grow on organic acids, sugars or TY unless the concentration of calcium or magnesium is elevated above that normally required for growth. The defects in the LPS and growth in strain RU301 were complemented by a series of cosmids from a strain 3841 cosmid library (pRU3020-pRU3022) and a cosmid from R. leguminosarum bv. phaseoli 8002 (pIJ1848). The transposon insertion in strain RU301 was shown to be located in a 3 kb EcoRI fragment by Southern blotting and cloning from the chromosome. Sub-cloning of pIJ1848 demonstrated that the gene disrupted by the transposon in strain RU301 is located on a 2.4 kb EcoRI-Pstl fragment (pRU74). R. leguminosarum bv. viciae VF39-C86, which is one of four LPS mutants previously isolated by U. B. Priefer (1989, J Bacteriol 171, 6161-6168), was also complemented by sub-clones of pIJ1848 but not by pRU74, suggesting the mutation is in a gene adjacent to that disrupted in strain RU301. Complementation and Southern analysis indicate that the region contained in pIJ1848 does not correspond to any other cloned lps genes. Two dctA mutants, RU436 and RU437, were also complemented by pIJ1848 and pRU3020. Mapping of pIJ1848 and Southern blotting of plasmid-deleted strains of R. leguminosarum revealed that dctD and the region mutated in strain RU301 are located approximately 10 kb apart on the chromosome. Analysis of homogenotes demonstrated that there is not a large region important in calcium utilization, organic acid metabolism or LPS biosynthesis located between the gene disrupted in strain RU301 and dctD. Strain VF39C-86 also required an elevated concentration of calcium for growth on succinate, while strains mutated in the α-chromosomal or β-plasmid group of lps genes grew at the same calcium concentrations as the wild type, demonstrating that the additional calcium requirement is not a property of all LPS rough mutants. Strain RU301 nodulates peas, but does not reduce acetylene, demonstrating that the gene mutated in this strain is essential for nitrogen fixation.
机译:在Rhizobium乳糜蛋白酶中,C4二羧酸盐输送系统和野生型脂多糖层(LPS)对于氮固定是必不可少的。 R.5突变体(Ru301)的R.乳糜蛋白酶BV。 Viciae 3841被分离,其仅能够合成LPS II,其缺乏O-抗原。 ru301菌株呈现粗糙的菌落形态,在培养中絮凝物,不能在ty琼脂中蜂拥而至。除非钙或镁的浓度升高,否则在有机酸,糖或Ty上也没有升高到通常需要的生长所需的浓度。 LPS中的缺陷和菌株Ru301的生长由来自菌株3841粘粒类化合物(PRU3020-PRU3022)的一系列粘附物(PRU3020-PRU3022)和来自R. Leguminosarum BV的溶解剂互补。 Phougholi 8002(PIJ1848)。菌株Ru301中的转座子插入被显示为通过Southern印迹和从染色体克隆到3kb的EcoRI片段中。 PIJ1848的副克隆证明,转座子中ru301中破坏的基因位于2.4kb的EcoRi-Pstl片段(PRU74)上。 R. Leguminosarum BV。 Viciae VF39-C86,其是先前由UB预防器分离的四个LPS突变体之一(1989,J Bacteriol 171,6161-6168),但Pij1848的亚克隆,但不是PRU74的副克隆,表明突变是基因与菌株ru301中断的相邻。互补和南方分析表明PIJ1848中包含的区域与任何其他克隆的LPS基因不对应。两种DCTA突变体RU436和RU437也被PIJ1848和PRU3020补充。 PIJ1848的映射和质粒缺失的R.乳糜蛋白菌株的南部印迹显示DCTD和菌株RU301中突变的区域位于染色体上约为10kb。均化的分析表明,在钙利用中没有重要的大区域,有机酸代谢或位于菌株Ru301和DCTD中断的基因之间的LPS生物合成。菌株Vf39C-86还需要琥珀酸盐的生长升高的钙浓度,而LPS基因的α-染色体或β-质粒组中突变的菌株在与野生型相同的钙浓度下,表明额外的钙需求是不是所有LPS粗糙突变体的财产。 ru301菌株结节豌豆,但不减少乙炔,证明该菌株中突变的基因对于氮固定是必不可少的。

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