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Transcriptional Network of Multiple Capsule and Melanin Genes Governed by the Cryptococcus neoformans Cyclic AMP Cascade

机译:新型隐球菌环状AMP级联调控的多个胶囊和黑色素基因的转录网络。

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Cryptococcus neoformans is an opportunistic human fungal pathogen that elaborates several virulence attributes, including a polysaccharide capsule and melanin pigments. A conserved Gα protein/cyclic AMP (cAMP) pathway controls melanin and capsule production. To identify targets of this pathway, we used an expression profiling approach to define genes that are transcriptionally regulated by the Gα protein Gpa1. This approach revealed that Gpa1 transcriptionally regulates multiple genes involved in capsule assembly and identified two additional genes with a marked dependence on Gpa1 for transcription. The first is the LAC1 gene, encoding the laccase enzyme that catalyzes a rate-limiting step in diphenol oxidation and melanin production. The second gene identified (LAC2) is adjacent to the LAC1 gene and encodes a second laccase that shares 75% nucleotide identity with LAC1. Similar to the LAC1 gene, LAC2 is induced in response to glucose deprivation. However, LAC2 basal transcript levels are much lower than those for LAC1. Accordingly, a lac2 mutation results in only a modest delay in melanin formation. LAC2 overexpression suppresses the melanin defects of gpa1 and lac1 mutants and partially restores virulence of these strains. These studies provide mechanistic insights into the regulation of capsule and melanin production by the C. neoformans cAMP pathway and demonstrate that multiple laccases contribute to C. neoformans melanin production and pathogenesis.
机译:新型隐球菌是一种机会性人类真菌病原体,具有多种毒力属性,包括多糖胶囊和黑色素色素。保守的Gα蛋白/环AMP(cAMP)途径控制黑色素和胶囊的产生。为了确定该途径的靶标,我们使用了一种表达谱分析方法来定义由Gα蛋白Gpa1转录调控的基因。这种方法表明,Gpa1转录调节参与胶囊组装的多个基因,并鉴定了两个对Gpa1转录有显着依赖性的其他基因。第一个是 LAC1 基因,该基因编码漆酶,催化双酚氧化和黑色素生成中的限速步骤。鉴定出的第二个基因( LAC2 )与 LAC1 基因相邻,并编码与 LAC1 具有75%核苷酸同一性的第二个漆酶。与 LAC1 基因相似, LAC2 可以响应葡萄糖剥夺而被诱导。但是, LAC2 的基础转录水平远低于 LAC1 的水平。因此, 突变仅导致黑色素形成的适度延迟。 LAC2 的过表达抑制了 gpa1 lac1 突变体的黑色素缺陷,并部分恢复了这些菌株的毒力。这些研究为 C对胶囊和黑色素生成的调节提供了机械方面的见解。新形成的 cAMP途径,并证明多个漆酶有助于 C。新甲虫黑色素的产生和发病机理。

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