Arv1与白色念珠菌GPI生物合成的第一步相互作用并调控。

IF 4.2
Monika Bharati, Harshita Saini, Neha Thakran, Yatin Kumar, Shailja Shefali, Usha Yadav, Sunyna Saun, Aaisha Anzar, Sneha Sudha Komath
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引用次数: 0

摘要

普遍存在的ARV1基因在真核生物中显示出显著的功能保守性。酿酒酵母Arv1参与多种细胞过程,包括脂质/固醇稳态、形态发生和耐药性。人类和真菌ARV1在功能上补足了葡萄球菌ARV1,而arv1Δ则被GPI- n -乙酰氨基葡萄糖转移酶(GPI- gnt)的一些亚基过表达所拯救,GPI- n -乙酰氨基葡萄糖转移酶催化了GPI的第一步生物合成。人类和布鲁氏锥虫Arv1同源物与不同的GPI-GnT亚基共免疫沉淀。基于这些先前的报道,我们假设白色念珠菌ARV1与GPI生物合成的第一步之间存在串扰。通过超分辨率径向波动(SRRF)分析共定位数据、共免疫沉淀试验和受体光漂白FRET研究,我们发现CaArv1与GPI-GnT存在物理相互作用。它还通过表观遗传调节剂Rtt109调节GPI-GnT亚基的表达。过表达GPI19(编码一个GPI-GnT亚基,其表达在Caarv1Δ/Δ中受到抑制)可以挽救其细胞壁表型、对唑类药物的敏感性和GPI-GnT活性,而不会逆转成丝缺陷。在下调GPI2(编码另一个GPI-GnT亚基,其表达在Caarv1Δ/Δ中上调)上观察到类似的拯救。因此,转录控制而非物理相互作用似乎是CaArv1控制GPI-GnT的主要机制。过表达RAS1可恢复所有表型,包括成丝,但不恢复GPI-GnT活性。Caarv1Δ/Δ的成丝缺陷与GPI-GnT无关。CaArv1通过转录调控cAMP-PKA信号下游的菌丝特异性转录因子(Efg1, Flo8)和抑制因子(Tup1, Nrg1)来调节丝化。CaArv1与GPI-GnT之间的串扰对白色念珠菌的毒力具有重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Arv1 interacts with and regulates the first step of GPI biosynthesis in Candida albicans.

The ubiquitous ARV1 gene shows significant functional conservation across eukaryotes. Saccharomyces cerevisiae Arv1 is implicated in several cellular processes, including lipid/sterol homeostasis, morphogenesis, and drug resistance. Human and fungal ARV1 functionally complement S. cerevisiae ARV1, and arv1Δ is rescued by the overexpression of some subunits of the GPI-N-acetylglucosaminyltransferase (GPI-GnT), which catalyzes the first GPI biosynthetic step. Human and Trypanosoma brucei Arv1 homologs co-immunoprecipitate with different GPI-GnT subunits. Based on these previous reports, we hypothesized a cross talk between Candida albicans ARV1 and the first step of GPI biosynthesis. Using super-resolution radial fluctuation (SRRF) analysis of co-localization data, co-immunoprecipitation assays, and acceptor-photobleaching FRET studies, we show that CaArv1 physically interacts with the GPI-GnT. It also regulates the expression of the GPI-GnT subunits via the epigenetic modulator, Rtt109. Overexpressing GPI19 (which encodes a GPI-GnT subunit whose expression is repressed in Caarv1Δ/Δ) rescues its cell wall phenotype, sensitivity to azoles, and GPI-GnT activity without reversing the filamentation defect. A similar rescue is observed on downregulating GPI2 (encoding another GPI-GnT subunit, whose expression is upregulated in Caarv1Δ/Δ). Thus, transcriptional control rather than physical interaction appears to be the primary mechanism by which CaArv1 controls GPI-GnT. Overexpressing RAS1 restores all phenotypes, including filamentation, without restoring GPI-GnT activity. The filamentation defect of Caarv1Δ/Δ is independent of the GPI-GnT. CaArv1 transcriptionally regulates hyphae-specific transcription factors downstream of cAMP-PKA signaling (Efg1, Flo8) and repressors (Tup1, Nrg1) to modulate filamentation. The cross talk between CaArv1 and GPI-GnT has important implications for the virulence of C. albicans.

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