Neves-da-Rocha João, Santos-Saboya Maria J, Lopes Marcos E R, Rossi Antonio, Martinez-Rossi Nilce M
Department of Genetics, Ribeirão Preto Medical School, University of São Paulo, Ribeirão Preto 14049-900, SP, Brazil.
Microorganisms. 2023 Jul 25;11(8):1878. doi: 10.3390/microorganisms11081878.
Fungi are a diverse group of eukaryotic organisms that infect humans, animals, and plants. To successfully colonize their hosts, pathogenic fungi must continuously adapt to the host's unique environment, e.g., changes in temperature, pH, and nutrient availability. Appropriate protein folding, assembly, and degradation are essential for maintaining cellular homeostasis and survival under stressful conditions. Therefore, the regulation of proteostasis is crucial for fungal pathogenesis. The heat shock response (HSR) is one of the most important cellular mechanisms for maintaining proteostasis. It is activated by various stresses and regulates the activity of heat shock proteins (HSPs). As molecular chaperones, HSPs participate in the proteostatic network to control cellular protein levels by affecting their conformation, location, and degradation. In recent years, a growing body of evidence has highlighted the crucial yet understudied role of stress response circuits in fungal infections. This review explores the role of protein homeostasis and HSPs in fungal pathogenicity, including their contributions to virulence and host-pathogen interactions, as well as the concerted effects between HSPs and the main proteostasis circuits in the cell. Furthermore, we discuss perspectives in the field and the potential for targeting the components of these circuits to develop novel antifungal therapies.
真菌是一类多样的真核生物,可感染人类、动物和植物。为了成功定殖于宿主,致病真菌必须不断适应宿主独特的环境,例如温度、pH值和营养可用性的变化。适当的蛋白质折叠、组装和降解对于在应激条件下维持细胞内稳态和生存至关重要。因此,蛋白质稳态的调节对于真菌致病机制至关重要。热休克反应(HSR)是维持蛋白质稳态最重要的细胞机制之一。它由各种应激激活,并调节热休克蛋白(HSP)的活性。作为分子伴侣,HSP通过影响蛋白质的构象、位置和降解参与蛋白质稳态网络,以控制细胞内蛋白质水平。近年来,越来越多的证据凸显了应激反应通路在真菌感染中至关重要但尚未得到充分研究的作用。本综述探讨了蛋白质稳态和HSP在真菌致病性中的作用,包括它们对毒力和宿主-病原体相互作用的贡献,以及HSP与细胞内主要蛋白质稳态通路之间的协同作用。此外,我们还讨论了该领域的观点以及针对这些通路的组成部分开发新型抗真菌疗法的潜力。