van Workum W A, Canter Cremers H C, Wijfjes A H, van der Kolk C, Wijffelman C A, Kijne J W
Institute of Molecular Plant Sciences, Leiden University, The Netherlands.
Mol Plant Microbe Interact. 1997 Mar;10(2):290-301. doi: 10.1094/MPMI.1997.10.2.290.
Four different genes of Rhizobium leguminosarum bv. trifolii strain RBL5599 involved in exopolysaccharide (EPS) production were identified by complementation of Tn5-induced EPS-deficient mutants (Exo mutants) with a cosmid bank. On one cosmid pssA was located, which was found to be almost identical to the pss4 gene from R. leguminosarum bv. viciae VF39 and highly homologous to a family of glycosyl transferases. Two pssA mutants, exo2 and exo4, were characterized and found to produce 19 and 1% of the wild-type amount of EPS, respectively. The three other genes were found to be closely linked on a different complementing cosmid. pssC revealed similarity to exoM and exoW of R. meliloti, both encoding glucosyl transferases involved in the synthesis of succinoglycan. A mutation in this gene (mutant exo50) did reduce EPS synthesis to 27% of the wild-type amount. We found an operon closely linked to pssC, consisting of two overlapping genes, pssD and pssE, that is essential for EPS production. Homology of pssD and pssE was found with cps14F and cps14G of Streptococcus pneumoniae, respectively: two genes responsible for the second step in capsule polysaccharide synthesis. Furthermore, pssD and pssE were homologous to the 5' and 3' parts, respectively, of spsK of Sphingomonas S88, which encodes a putative glycosyl transferase. Structural analysis of EPS produced by Exo mutants exo2, exo4, and exo50 showed it to be identical to that of the parental strain RBL5599, with the exception of acetyl groups esterified to one of the glucose residues being absent.
通过用黏粒文库对Tn5诱导的胞外多糖(EPS)缺陷型突变体(Exo突变体)进行互补,鉴定出了参与三叶草根瘤菌三叶草根瘤菌菌株RBL5599 EPS产生的4种不同基因。在一个黏粒上定位到了pssA,发现它与来自豌豆根瘤菌蚕豆生物型VF39的pss4基因几乎相同,并且与一个糖基转移酶家族高度同源。对两个pssA突变体exo2和exo4进行了表征,发现它们分别产生野生型EPS量的19%和1%。发现另外三个基因紧密连锁在一个不同的互补黏粒上。pssC与苜蓿中华根瘤菌的exoM和exoW相似,二者均编码参与琥珀聚糖合成的葡糖基转移酶。该基因中的一个突变(突变体exo50)确实将EPS合成降低到了野生型量的27%。我们发现了一个与pssC紧密连锁的操纵子,由两个重叠基因pssD和pssE组成,这对EPS产生至关重要。分别发现pssD和pssE与肺炎链球菌的cps14F和cps14G同源:这两个基因负责荚膜多糖合成的第二步。此外,pssD和pssE分别与鞘氨醇单胞菌S88的spsK的5'和3'部分同源,spsK编码一种假定的糖基转移酶。对Exo突变体exo2、exo4和exo50产生的EPS进行的结构分析表明,除了其中一个葡萄糖残基上酯化的乙酰基缺失外,它与亲本菌株RBL5599的EPS相同。