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新型激酶 STK-17 通过协调调控膜稳态和药物蓄积应对抗真菌唑类药物治疗。

Coordinated Regulation of Membrane Homeostasis and Drug Accumulation by Novel Kinase STK-17 in Response to Antifungal Azole Treatment.

机构信息

State Key Laboratory of Mycology, Institute of Microbiology, Chinese Academy of Sciences, Beijing, China.

College of Life Sciences, University of Chinese Academy of Sciences, Beijing, China.

出版信息

Microbiol Spectr. 2022 Feb 23;10(1):e0012722. doi: 10.1128/spectrum.00127-22.

Abstract

The emergence of antifungal resistance, especially to the most widely used azole class of ergosterol biosynthesis inhibitors, makes fungal infections difficult to treat in clinics and agriculture. When exposed to azoles, fungi can make adaptive responses to alleviate azole toxicity and produce azole tolerance. However, except for azole efflux pumps and ergosterol biosynthesis genes, the role of most azole responsive genes in azole resistance is unknown. In this study, STK-17, whose transcription is upregulated by azoles, was characterized as a novel kinase that is required for azole resistance. Deletion or dysfunction of STK-17 led to azole hypersensitivity in Neurospora crassa and to other ergosterol biosynthesis inhibitors such as amorolfine, terbinafine, and amphotericin B, but not fatty acid and ceramide biosynthesis inhibitors. STK-17 was also required for oxidative stress resistance, but this was not connected to azole resistance. RNA-seq results showed that deletion affected the basal expression and the response to ketoconazole of some membrane protein genes, indicating functional association of STK-17 with the membrane. Notably, deletion of affected the normal response to azoles of genes, including the azole target-encoding gene and , , and , and led to abnormal accumulation of sterols in the presence of azoles. HPLC-MS/MS analysis revealed increased intracellular azole accumulation in the mutant, possibly due to enhanced azole influx and reduced azole efflux that was independent of the major efflux pump CDR4. Importantly, STK-17 was widely distributed and functionally conserved among fungi, thus providing a potential antifungal target. Antifungal resistance is increasing worldwide, especially to the most widely used azole class of ergosterol biosynthesis inhibitors, making control of fungal infections more challenging. A lot of effort has been expended in elucidating the mechanism of azole resistance and revealing potential antifungal targets. In this study, by analyzing azole-responsive genes in Neurospora crassa, we discovered STK-17, a novel kinase, that is required for azole resistance in several types of fungi. It has a role in regulating membrane homeostasis, responses to azole by ergosterol biosynthesis genes and azole accumulation, thus, deepening our understanding on the mechanism of azole stress response. Additionally, STK-17 is conserved among fungi and plays important roles in fungal development and stress resistance. Kinase inhibitors are broadly used for treating diseases, and our study pinpoints a potential drug target for antifungal development.

摘要

抗真菌药物耐药性的出现,尤其是对最广泛使用的麦角固醇生物合成抑制剂唑类药物的耐药性,使得临床和农业领域的真菌感染难以治疗。当真菌暴露于唑类药物时,它们可以做出适应性反应来减轻唑类药物的毒性并产生唑类药物耐受性。然而,除了唑类药物外排泵和麦角固醇生物合成基因外,大多数唑类药物响应基因在唑类药物耐药性中的作用尚不清楚。在这项研究中,STK-17 的转录被唑类药物上调,被表征为一种新型激酶,它是唑类药物耐药性所必需的。Neurospora crassa 中 STK-17 的缺失或功能丧失导致唑类药物敏感性增加,以及其他麦角固醇生物合成抑制剂,如阿莫罗芬、特比萘芬和两性霉素 B,但不包括脂肪酸和神经酰胺生物合成抑制剂。STK-17 还需要抵抗氧化应激,但这与唑类药物耐药性无关。RNA-seq 结果表明,缺失会影响一些膜蛋白基因的基础表达和对酮康唑的反应,这表明 STK-17 与膜的功能相关。值得注意的是,缺失会影响正常的唑类药物反应,包括唑类药物靶基因编码基因和 、 、 、 ,并导致唑类药物存在时固醇的异常积累。HPLC-MS/MS 分析显示,在 突变体中细胞内唑类药物积累增加,这可能是由于增强了唑类药物的流入和减少了与主要外排泵 CDR4 无关的唑类药物外排。重要的是,STK-17 在真菌中广泛分布且功能保守,因此提供了一个潜在的抗真菌靶点。 抗真菌药物耐药性在全球范围内不断增加,尤其是对最广泛使用的麦角固醇生物合成抑制剂唑类药物的耐药性,使得控制真菌感染更加具有挑战性。人们已经付出了大量努力来阐明唑类药物耐药性的机制,并揭示潜在的抗真菌靶点。在这项研究中,我们通过分析 Neurospora crassa 中的唑类药物反应基因,发现了 STK-17,这是一种新型激酶,它是几种真菌中唑类药物耐药性所必需的。它在调节膜动态平衡、麦角固醇生物合成基因对唑类药物的反应和唑类药物积累方面发挥作用,从而加深了我们对唑类药物应激反应机制的理解。此外,STK-17 在真菌中保守,在真菌发育和应激抗性中发挥重要作用。激酶抑制剂被广泛用于治疗疾病,我们的研究为抗真菌药物的开发指明了一个潜在的药物靶点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9b7d/8865411/345021e3d6e8/spectrum.00127-22-f001.jpg

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