Bhagwat A A, Gross K C, Tully R E, Keister D L
Soybean and Alfalfa Research Laboratory, Agricultural Research Service,U.S. Department of Agriculture, Beltsville, Maryland 20705-2350, USA.
J Bacteriol. 1996 Aug;178(15):4635-42. doi: 10.1128/jb.178.15.4635-4642.1996.
Bradyrhizobium japonicum synthesizes periplasmic cyclic beta-(1-->3),beta-(1-->6)-D-glucans during growth in hypoosmotic environments, and evidence is growing that these molecules may have a specific function during plant-microbe interactions in addition to osmoregulation. Site-directed Tn5 mutagenesis of the DNA region upstream of ndvB resulted in identification of a new gene (ndvC) involved in beta-(1--> 3), beta-(1-->6)-glucan synthesis and in nodule development. The predicted translation product was a polypeptide (ca. 62 kDa) with several transmembrane domains. It contained a sequence characteristic of a conserved nucleoside-sugar-binding motif found in many bacterial enzymes and had 51% similarity with a beta-glucanosyltransferase from Candida albicans. B. japonicum carrying a Tn5 insertion in ndvC resulted in synthesis of altered cyclic beta-glucans composed almost entirely of beta-(1--> 3)-glycosyl linkages. The mutant strain was only slightly sensitive to hypoosmotic growth conditions compared with the ndvB mutant, but it was severely impaired in symbiotic interactions with soybean (Glycine max). Nodulation was delayed by 8 to 10 days, and many small nodule-like structures apparently devoid of viable bacteria were formed. This finding suggests that the structure of the beta-glucan molecule is important for a successful symbiotic interaction, and beta-glucans may have a specific function in addition to their role in hypoosmotic adaptation.
慢生根瘤菌在低渗环境中生长时会合成周质环状β-(1→3),β-(1→6)-D-葡聚糖,越来越多的证据表明,除了渗透调节作用外,这些分子在植物-微生物相互作用过程中可能具有特定功能。对ndvB上游DNA区域进行定点Tn5诱变,结果鉴定出一个参与β-(1→3),β-(1→6)-葡聚糖合成和根瘤发育的新基因(ndvC)。预测的翻译产物是一种具有多个跨膜结构域的多肽(约62 kDa)。它包含在许多细菌酶中发现的保守核苷糖结合基序的特征序列,与白色念珠菌的一种β-葡聚糖基转移酶有51%的相似性。在ndvC中携带Tn5插入的慢生根瘤菌导致合成几乎完全由β-(1→3)-糖苷键组成的改变的环状β-葡聚糖。与ndvB突变体相比,该突变菌株对低渗生长条件仅稍有敏感,但在与大豆(Glycine max)的共生相互作用中严重受损。结瘤延迟8至10天,形成了许多明显没有活细菌的小瘤状结构。这一发现表明,β-葡聚糖分子的结构对于成功的共生相互作用很重要,并且β-葡聚糖除了在低渗适应中的作用外可能还具有特定功能。