Holland Linda M, O'Donnell Sinéad T, Ryjenkov Dmitri A, Gomelsky Larissa, Slater Shawn R, Fey Paul D, Gomelsky Mark, O'Gara James P
School of Biomolecular and Biomedical Science, Ardmore House, University College Dublin, Belfield, Dublin 4, Ireland.
J Bacteriol. 2008 Aug;190(15):5178-89. doi: 10.1128/JB.00375-08. Epub 2008 May 23.
Cyclic dimeric GMP (c-di-GMP) is an important biofilm regulator that allosterically activates enzymes of exopolysaccharide biosynthesis. Proteobacterial genomes usually encode multiple GGDEF domain-containing diguanylate cyclases responsible for c-di-GMP synthesis. In contrast, only one conserved GGDEF domain protein, GdpS (for GGDEF domain protein from Staphylococcus), and a second protein with a highly modified GGDEF domain, GdpP, are present in the sequenced staphylococcal genomes. Here, we investigated the role of GdpS in biofilm formation in Staphylococcus epidermidis. Inactivation of gdpS impaired biofilm formation in medium supplemented with NaCl under static and flow-cell conditions, whereas gdpS overexpression complemented the mutation and enhanced wild-type biofilm development. GdpS increased production of the icaADBC-encoded exopolysaccharide, poly-N-acetyl-glucosamine, by elevating icaADBC mRNA levels. Unexpectedly, c-di-GMP synthesis was found to be irrelevant for the ability of GdpS to elevate icaADBC expression. Mutagenesis of the GGEEF motif essential for diguanylate cyclase activity did not impair GdpS, and the N-terminal fragment of GdpS lacking the GGDEF domain partially complemented the gdpS mutation. Furthermore, heterologous diguanylate cyclases expressed in trans failed to complement the gdpS mutation, and the purified GGDEF domain from GdpS possessed no diguanylate cyclase activity in vitro. The gdpS gene from Staphylococcus aureus exhibited similar characteristics to its S. epidermidis ortholog, suggesting that the GdpS-mediated signal transduction is conserved in staphylococci. Therefore, GdpS affects biofilm formation through a novel c-di-GMP-independent mechanism involving increased icaADBC mRNA levels and exopolysaccharide biosynthesis. Our data raise the possibility that staphylococci cannot synthesize c-di-GMP and have only remnants of a c-di-GMP signaling pathway.
环二聚体鸟苷酸(c-di-GMP)是一种重要的生物膜调节因子,它能变构激活胞外多糖生物合成的酶。变形菌门细菌的基因组通常编码多个含GGDEF结构域的双鸟苷酸环化酶,负责c-di-GMP的合成。相比之下,在已测序的葡萄球菌基因组中,仅存在一种保守的含GGDEF结构域蛋白GdpS(来自葡萄球菌的GGDEF结构域蛋白)和另一种具有高度修饰的GGDEF结构域的蛋白GdpP。在此,我们研究了GdpS在表皮葡萄球菌生物膜形成中的作用。在静态和流动细胞条件下,gdpS失活会损害在补充有NaCl的培养基中的生物膜形成,而gdpS过表达则可弥补该突变并增强野生型生物膜的形成。GdpS通过提高icaADBC mRNA水平,增加了icaADBC编码的胞外多糖聚-N-乙酰葡糖胺的产量。出乎意料的是,发现c-di-GMP合成与GdpS提高icaADBC表达的能力无关。对双鸟苷酸环化酶活性至关重要的GGEEF基序进行诱变并不会损害GdpS,并且缺乏GGDEF结构域的GdpS N端片段可部分弥补gdpS突变。此外,反式表达的异源双鸟苷酸环化酶无法弥补gdpS突变,并且从GdpS纯化的GGDEF结构域在体外不具有双鸟苷酸环化酶活性。金黄色葡萄球菌的gdpS基因与其表皮葡萄球菌直系同源基因表现出相似的特征,这表明GdpS介导的信号转导在葡萄球菌中是保守的。因此,GdpS通过一种不依赖c-di-GMP的新机制影响生物膜形成,该机制涉及增加icaADBC mRNA水平和胞外多糖生物合成。我们的数据提出了葡萄球菌无法合成c-di-GMP且仅保留c-di-GMP信号通路残余部分的可能性。