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Rhizobium cellulase CelC2 is essential for primary symbiotic infection of legume host roots

机译:根瘤菌纤维素酶CelC2对于豆类寄主根的初级共生感染至关重要

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摘要

The rhizobia–legume, root-nodule symbiosis provides the most efficient source of biologically fixed ammonia fertilizer for agricultural crops. Its development involves pathways of specificity, infectivity, and effectivity resulting from expressed traits of the bacterium and host plant. A key event of the infection process required for development of this root-nodule symbiosis is a highly localized, complete erosion of the plant cell wall through which the bacterial symbiont penetrates to establish a nitrogen-fixing, intracellular endosymbiotic state within the host. This process of wall degradation must be delicately balanced to avoid lysis and destruction of the host cell. Here, we describe the purification, biochemical characterization, molecular genetic analysis, biological activity, and symbiotic function of a cell-bound bacterial cellulase (CelC2) enzyme from Rhizobium leguminosarum bv. trifolii, the clover-nodulating endosymbiont. The purified enzyme can erode the noncrystalline tip of the white clover host root hair wall, making a localized hole of sufficient size to allow wild-type microsymbiont penetration. This CelC2 enzyme is not active on root hairs of the nonhost legume alfalfa. Microscopy analysis of the symbiotic phenotypes of the ANU843 wild type and CelC2 knockout mutant derivative revealed that this enzyme fulfils an essential role in the primary infection process required for development of the canonical nitrogen-fixing R. leguminosarum bv. trifolii-white clover symbiosis.
机译:根瘤菌-豆科植物,根瘤共生菌为农业作物提供了最有效的生物固定氨肥料来源。它的发展涉及由细菌和宿主植物表达的性状导致的特异性,感染性和有效性途径。根瘤共生发展所需的感染过程的关键事件是植物细胞壁的高度局限性,完全侵蚀,细菌共生体可通过该壁渗透进入宿主体内,从而建立固氮,细胞内共生状态。壁降解的这一过程必须微妙地平衡,以避免裂解和破坏宿主细胞。在这里,我们描述了豆科根瘤菌的细胞结合细菌纤维素酶(CelC2)酶的纯化,生化特性,分子遗传分析,生物学活性和共生功能。三叶草,三叶草结节共生。纯化的酶可侵蚀白三叶草宿主根毛壁的非晶尖端,形成足够大的局部孔,以允许野生型微共生蛋白渗透。这种CelC2酶在非寄主豆科植物苜蓿的根毛上没有活性。显微镜分析的ANU843野生型和CelC2基因敲除突变体衍生物的共生表型表明,这种酶在发展经典的固氮豆科植物豆球菌所需的主要感染过程中起着至关重要的作用。白三叶草共生。

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