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Heterologous exopolysaccharide production in Rhizobium sp. strain NGR234 and consequences for nodule development.

机译:根瘤菌中异源胞外多糖的产生。 NGR234菌株及其对结节发展的影响。

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摘要

Rhizobium sp. strain NGR234 produces large amounts of acidic exopolysaccharide. Mutants that fail to synthesize this exopolysaccharide are also unable to nodulate the host plant Leucaena leucocephala. A hybrid strain of Rhizobium sp. strain NGR234 containing exo genes from Rhizobium meliloti was constructed. The background genetics and nod genes of Rhizobium sp. strain NGR234 are retained, but the cluster of genes involved in exopolysaccharide biosynthesis was deleted. These exo genes were replaced with genes required for the synthesis of succinoglycan exopolysaccharide from R. meliloti. As a result of the genetic manipulation, the ability of these hybrids to synthesize exopolysaccharide was restored, but the structure was that of succinoglycan and not that of Rhizobium sp. strain NGR234. The replacement genes were contained on a cosmid which encoded the entire known R. meliloti exo gene cluster, with the exception of exoB. Cosmids containing smaller portions of this exo gene cluster did not restore exopolysaccharide production. The presence of succinoglycan was indicated by staining with the fluorescent dye Calcofluor, proton nuclear magnetic resonance spectroscopy, and monosaccharide analysis. Although an NGR234 exoY mutant containing the R. meliloti exo genes produced multimers of the succinoglycan repeat unit, as does the wild-type R. meliloti, the deletion mutant of Rhizobium sp. strain NGR234 containing the R. meliloti exo genes produced only the monomer. The deletion mutant therefore appeared to lack a function that affects the multiplicity of succinoglycan produced in the Rhizobium sp. strain NGR234 background. Although these hybrid strains produced succinoglycan, they were still able to induce the development of an organized nodule structure on L. leucocephala. The resulting nodules did not fix nitrogen, but they did contain infection threads and bacteroids within plant cells. This clearly demonstrated that a heterologous acidic exopolysaccharide structure was sufficient to enable nodule development to proceed beyond the developmental barrier imposed on mutants of Rhizobium sp. strain NGR234 that are unable to synthesize any acidic exopolysaccharide.
机译:根瘤菌NGR234菌株产生大量酸性胞外多糖。不能合成这种胞外多糖的突变体也不能结瘤宿主植物白头粉虱。根瘤菌的杂种。构建了含有来自根瘤菌的外显子基因的NGR234菌株。根瘤菌的背景遗传和nod基因。保留了NGR234菌株,但是删除了胞外多糖生物合成中涉及的基因簇。将这些外切基因替换为从R. meliloti合成琥珀聚糖外切多糖所需的基因。通过基因操作,这些杂合体合成胞外多糖的能力得以恢复,但其结构是琥珀聚糖而不是根瘤菌。 NGR234株。替代基因包含在粘粒中,该粘粒编码除exoB外的全部已知的苜蓿根瘤菌exo基因簇。含有该外切基因簇的较小部分的粘粒不能恢复外切多糖的生产。通过用荧光染料Calcofluor染色,质子核磁共振波谱和单糖分析来指示琥珀糖聚糖的存在。尽管含有R.meliloti exo基因的NGR234 exoY突变体产生了琥珀聚糖重复单元的多聚体,而野生型R. meliloti还是根瘤菌属的缺失突变体。含有苜蓿根瘤菌exo基因的NGR234菌株仅产生单体。因此,缺失突变体似乎缺乏影响在根瘤菌属中产生的琥珀聚糖的多样性的功能。株NGR234背景。尽管这些杂种菌株产生了琥珀聚糖,但它们仍然能够诱导白头翁的有组织结节结构的发展。产生的结节不能固氮,但它们确实在植物细胞中含有感染线和类细菌。这清楚地表明,异源酸性胞外多糖结构足以使根瘤的发展超出对根瘤菌属突变体施加的发育障碍。不能合成任何酸性胞外多糖的NGR234菌株。

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