Antifungal Tetrahydrocarbazole Compound CAR-8 Induces Endoplasmic Reticulum Stress in Candida albicans.

IF 4 2区 医学 Q2 CHEMISTRY, MEDICINAL ACS Infectious Diseases Pub Date : 2024-07-11 DOI:10.1021/acsinfecdis.4c00069
Wen Chao, Lijuan Qiu, Lu Gao, Jia Feng, Yu Liu, Lan Yan, Yuanying Jiang, Quanzhen Lv
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Abstract

The development of new effective antifungal agents is essential to combat fungal infections. Tetrahydrocarbazole has been exploited as a promising skeleton against various pathogenic microorganisms and is used to search for novel active antifungal compounds. In this study, a library composed of small tetrahydrocarbazole compounds was screened, and a potent antifungal agent, CAR-8, was identified with a minimum inhibitory concentration of 2-4 μg/mL against Candida albicans. CAR-8 showed strong fungicidal activities and killed almost all C. albicans within 3 h at a concentration of 16 μg/mL. At concentrations of 2 and 8 μg/mL, CAR-8 significantly inhibited the formation of hyphae and biofilms. Moreover, CAR-8 at 10 and 20 mg/kg reduced the fungal load and improved the survival in the C. albicans infection model in the invertebrate Galleria mellonella. Transcriptome analysis revealed significant changes in the expression of genes associated with protein processing in the endoplasmic reticulum (ER), ER-associated degradation, and unfolded protein response (UPR), which suggested that CAR-8 treatment induced ER stress. Moreover, CAR-8 treatment resulted in various phenotypes similar to tunicamycin, a classical ER stress inducer. These included nonconventional splicing of HAC1 mRNA, the fragmented morphology of ER, the distribution changes of GFP-Snc1 in Saccharomyces cerevisiae, and cell apoptosis probably caused by ER stress. More importantly, the disruption of IRE1 or HAC1 increased the sensitivity of C. albicans to CAR-8, confirming that the UPR signaling pathway was critical for CAR-8 resistance. Overall, our study identifies a potent ER stress-induced antifungal compound that will help the discovery of new antifungal drugs.

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抗真菌四氢咔唑化合物 CAR-8 诱导白色念珠菌的内质网应激
开发新的有效抗真菌剂对于抗击真菌感染至关重要。四氢咔唑作为一种很有前景的抗各种病原微生物的骨架,已被用于寻找新型活性抗真菌化合物。本研究筛选了一个由小型四氢咔唑化合物组成的化合物库,并确定了一种有效的抗真菌剂 CAR-8,其对白色念珠菌的最低抑制浓度为 2-4 μg/mL。CAR-8 具有很强的杀真菌活性,当浓度为 16 μg/mL 时,它能在 3 小时内杀死几乎所有的白色念珠菌。浓度为 2 和 8 μg/mL 的 CAR-8 能显著抑制菌丝和生物膜的形成。此外,CAR-8 的浓度为 10 和 20 mg/kg,在无脊椎动物 Galleria mellonella 的白僵菌感染模型中可减少真菌负荷并提高存活率。转录组分析表明,与内质网(ER)蛋白质加工、ER相关降解和未折叠蛋白反应(UPR)有关的基因表达发生了显著变化,这表明CAR-8处理诱导了ER应激。此外,CAR-8 处理导致的各种表型与传统的ER应激诱导剂妥卡霉素相似。这些表型包括HAC1 mRNA的非常规剪接、ER的破碎形态、GFP-Snc1在酿酒酵母中的分布变化,以及可能由ER应激引起的细胞凋亡。更重要的是,干扰 IRE1 或 HAC1 增加了白僵菌对 CAR-8 的敏感性,证实了 UPR 信号通路对 CAR-8 的抗性至关重要。总之,我们的研究发现了一种强效的ER应激诱导抗真菌化合物,这将有助于发现新的抗真菌药物。
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来源期刊
ACS Infectious Diseases
ACS Infectious Diseases CHEMISTRY, MEDICINALINFECTIOUS DISEASES&nb-INFECTIOUS DISEASES
CiteScore
9.70
自引率
3.80%
发文量
213
期刊介绍: ACS Infectious Diseases will be the first journal to highlight chemistry and its role in this multidisciplinary and collaborative research area. The journal will cover a diverse array of topics including, but not limited to: * Discovery and development of new antimicrobial agents — identified through target- or phenotypic-based approaches as well as compounds that induce synergy with antimicrobials. * Characterization and validation of drug target or pathways — use of single target and genome-wide knockdown and knockouts, biochemical studies, structural biology, new technologies to facilitate characterization and prioritization of potential drug targets. * Mechanism of drug resistance — fundamental research that advances our understanding of resistance; strategies to prevent resistance. * Mechanisms of action — use of genetic, metabolomic, and activity- and affinity-based protein profiling to elucidate the mechanism of action of clinical and experimental antimicrobial agents. * Host-pathogen interactions — tools for studying host-pathogen interactions, cellular biochemistry of hosts and pathogens, and molecular interactions of pathogens with host microbiota. * Small molecule vaccine adjuvants for infectious disease. * Viral and bacterial biochemistry and molecular biology.
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