Sur7 在白僵菌中介导一种新的 PI4,5P2 调节途径,可促进抗压性和细胞壁形态发生。

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC ACS Applied Electronic Materials Pub Date : 2024-07-01 Epub Date: 2024-05-22 DOI:10.1091/mbc.E23-08-0324
Carla E Lanze, James B Konopka
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引用次数: 0

摘要

人类真菌病原体白色念珠菌(Candida albicans)由于能够抵抗宿主的压力并进行侵袭性芽胞生长,因此可引起致命的全身感染。先前的研究表明,质膜 MCC/电子体结构域通过促进 Sur7 介导正常细胞壁形态发生和抗应激的能力而对毒力起着重要作用。sur7Δ 突变体显示出异常的 PI4,5P2 簇,表明这种脂质的调控失误是 sur7Δ 表型的基础。为了验证这一点,我们通过删除三个 PI4,5P2 5' 磷酸酶基因(INP51、INP52 和 INP54)的组合来增加 PI4,5P2 的水平,结果发现一些组合,如 inp51Δ inp52Δ,产生了类似于 sur7Δ 突变体的表型。相反,删除一个 MSS4(编码产生 PI4,5P2 所需的 5' 激酶的基因)拷贝可减少异常 PI4,5P2 簇,也可减少 sur7Δ 突变体的异常细胞壁和应激敏感表型。其他研究支持这样一种模型,即异常的 PI4,5P2 斑块招募肽蛋白,进而促进细胞壁的异常生长。这些结果确定了 Sur7 是 PI4,5P2 的新型调节因子,并强调了 PI4,5P2 在调节白僵菌毒力特性中的关键作用。
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Sur7 mediates a novel pathway for PI4,5P2 regulation in C. albicans that promotes stress resistance and cell wall morphogenesis.

The human fungal pathogen Candida albicans can cause lethal systemic infections due to its ability to resist stress from the host and to undergo invasive hyphal growth. Previous studies showed that plasma membrane MCC/eisosome domains were important for virulence by promoting the ability of Sur7 to mediate normal cell wall morphogenesis and stress resistance. The sur7Δ mutant displayed abnormal clusters of PI4,5P2, suggesting that misregulation of this lipid underlies the sur7Δ phenotype. To test this, we increased PI4,5P2 levels by deleting combinations of the three PI4,5P2 5' phosphatase genes (INP51, INP52, and INP54) and found that some combinations, such as inp51Δ inp52Δ, gave phenotypes similar the sur7Δ mutant. In contrast, deleting one copy of MSS4, the gene that encodes the 5' kinase needed to create PI4,5P2, reduced the abnormal PI4,5P2 clusters and also decreased the abnormal cell wall and stress sensitive phenotypes of the sur7Δ mutant. Additional studies support a model that the abnormal PI4,5P2 patches recruit septin proteins, which in turn promote aberrant cell wall growth. These results identify Sur7 as a novel regulator of PI4,5P2 and highlight the critical role of PI4,5P2 in the regulation of C. albicans virulence properties.

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