首页> 美国卫生研究院文献>Antimicrobial Agents and Chemotherapy >Ergosterol Biosynthesis Inhibitors Become Fungicidal when Combined with Calcineurin Inhibitors against Candida albicans Candida glabrata and Candida krusei
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Ergosterol Biosynthesis Inhibitors Become Fungicidal when Combined with Calcineurin Inhibitors against Candida albicans Candida glabrata and Candida krusei

机译:当麦角固醇生物合成抑制剂与针对白色念珠菌光滑念珠菌和克鲁斯念珠菌的钙调神经磷酸酶抑制剂结合时就具有杀真菌作用。

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摘要

Azoles target the ergosterol biosynthetic enzyme lanosterol 14α-demethylase and are a widely applied class of antifungal agents because of their broad therapeutic window, wide spectrum of activity, and low toxicity. Unfortunately, azoles are generally fungistatic and resistance to fluconazole is emerging in several fungal pathogens. We recently established that the protein phosphatase calcineurin allows survival of Candida albicans during the membrane stress exerted by azoles. The calcineurin inhibitors cyclosporine A (CsA) and tacrolimus (FK506) are dramatically synergistic with azoles, resulting in potent fungicidal activity, and mutant strains lacking calcineurin are markedly hypersensitive to azoles. Here we establish that drugs targeting other enzymes in the ergosterol biosynthetic pathway (terbinafine and fenpropimorph) also exhibit dramatic synergistic antifungal activity against wild-type C. albicans when used in conjunction with CsA and FK506. Similarly, C. albicans mutant strains lacking calcineurin B are markedly hypersensitive to terbinafine and fenpropimorph. The FK506 binding protein FKBP12 is required for FK506 synergism with ergosterol biosynthesis inhibitors, and a calcineurin mutation that confers FK506 resistance abolishes drug synergism. Additionally, we provide evidence of drug synergy between the nonimmunosuppressive FK506 analog L-685,818 and fenpropimorph or terbinafine against wild-type C. albicans. These drug combinations also exert synergistic effects against two other Candida species, C. glabrata and C. krusei, which are known for intrinsic or rapidly acquired resistance to azoles. These studies demonstrate that the activity of non-azole antifungal agents that target ergosterol biosynthesis can be enhanced by inhibition of the calcineurin signaling pathway, extending their spectrum of action and providing an alternative approach by which to overcome antifungal drug resistance.
机译:唑类化合物针对麦角固醇生物合成酶羊毛甾醇14α-脱甲基酶,由于其广阔的治疗范围,广泛的活性范围和低毒性,因此被广泛用作一类抗真菌剂。不幸的是,唑类通常具有抑菌作用,并且在几种真菌病原体中对氟康唑产生了耐药性。我们最近建立了蛋白质磷酸酶钙调神经磷酸酶允许白色念珠菌在由唑类引起的膜应力期间存活。钙调神经磷酸酶抑制剂环孢菌素A(CsA)和他克莫司(FK506)与唑类具有显着的协同作用,从而具有强大的杀真菌活性,而缺乏钙调神经磷酸酶的突变菌株对唑类非常敏感。在这里,我们建立了针对麦角固醇生物合成途径中其他酶的药物(特比萘芬和fenpropimorph),当与CsA和FK506结合使用时,还表现出针对野生型白色念珠菌的显着协同抗真菌活性。同样,缺乏钙调神经磷酸酶B的白色念珠菌突变株对特比萘芬和苯丙吗啉高度敏感。 FK506结合蛋白FKBP12是麦角固醇生物合成抑制剂与FK506协同作用所必需的,而赋予FK506抗性的钙调神经磷酸酶突变则取消了药物协同作用。此外,我们提供了非免疫抑制性FK506类似物L-685,818与苯丙酸吗啡或特比萘芬对野生型白色念珠菌的药物协同作用的证据。这些药物组合还对另外两种假丝酵母念珠菌和光滑念珠菌具有协同作用,这两种物质因对内在唑类具有内在或迅速获得的耐药性而闻名。这些研究表明,通过抑制钙调磷酸酶信号传导途径,扩展其作用范围并提供克服抗真菌药物耐药性的替代方法,可以增强靶向麦角固醇生物合成的非唑类抗真菌药的活性。

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