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白色念珠菌在巨噬细胞内的菌丝形态发生不需要二氧化碳或 pH 感应途径。

Candida albicans Hyphal Morphogenesis within Macrophages Does Not Require Carbon Dioxide or pH-Sensing Pathways.

机构信息

Graduate School for Biomedical Sciences, University of Texas Science Center at Houston, Houston, Texas, USA.

Department of Microbiology and Molecular Genetics, University of Texas McGovern Medical School, University of Texas Health Science Center at Houston, Houston, Texas, USA.

出版信息

Infect Immun. 2023 May 16;91(5):e0008723. doi: 10.1128/iai.00087-23. Epub 2023 Apr 20.

Abstract

The opportunistic fungal pathogen Candida albicans has evolved a variety of mechanisms for surviving inside and escaping macrophages, including the initiation of filamentous growth. Although several distinct models have been proposed to explain this process at the molecular level, the signals driving hyphal morphogenesis in this context have yet to be clarified. Here, we evaluate the following three molecular signals as potential hyphal inducers within macrophage phagosomes: CO, intracellular pH, and extracellular pH. Additionally, we revisit previous work suggesting that the intracellular pH of C. albicans fluctuates in tandem with morphological changes . Using time-lapse microscopy, we observed that C. albicans mutants lacking components of the CO-sensing pathway were able to undergo hyphal morphogenesis within macrophages. Similarly, a strain was competent in hyphal induction, suggesting that neutral/alkaline pH sensing is not necessary for the initiation of morphogenesis within phagosomes either. Contrary to previous findings, single-cell pH-tracking experiments revealed that the cytosolic pH of C. albicans remains tightly regulated both within macrophage phagosomes and under a variety of conditions throughout the process of morphogenesis. This finding suggests that intracellular pH is not a signal contributing to morphological changes.

摘要

机会致病真菌病原体白色念珠菌已经进化出多种机制来在体内存活并逃避巨噬细胞,包括启动丝状生长。尽管已经提出了几种不同的模型来解释这一过程的分子水平,但在这种情况下,驱动菌丝形态发生的信号仍未阐明。在这里,我们评估了以下三种分子信号作为巨噬细胞吞噬体中潜在的菌丝诱导物:CO、细胞内 pH 值和细胞外 pH 值。此外,我们重新审视了之前的工作,该工作表明白色念珠菌的细胞内 pH 值与形态变化同步波动。使用延时显微镜,我们观察到缺乏 CO 感应途径组件的白色念珠菌突变体能够在巨噬细胞内进行菌丝形态发生。同样,一株突变体在诱导菌丝方面也很有能力,这表明中性/碱性 pH 值感应对于吞噬体中形态发生的启动也不是必需的。与之前的发现相反,单细胞 pH 跟踪实验表明,白色念珠菌的胞质 pH 值在巨噬细胞吞噬体内部以及在形态发生过程中的各种条件下都保持严格调节。这一发现表明细胞内 pH 值不是导致形态变化的信号。

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