Suppr超能文献

大黄素降低来自[具体来源未给出]的(1,3)-β-D-葡聚糖合酶的活性且不与卡泊芬净相互作用。

Emodin Reduces the Activity of (1,3)--D-glucan Synthase from and Does Not Interact with Caspofungin.

作者信息

Janeczko Monika

机构信息

Department of Molecular Biology, The John Paul II Catholic University of Lublin , Lublin , Poland.

出版信息

Pol J Microbiol. 2018;67(4):463-470. doi: 10.21307/pjm-2018-054.

Abstract

Candidiasis is the most common opportunistic yeast infection, with Candida albicans as a paramount causative species. (1,3)- β -D-glucan is one of the three main targets of clinically available antifungal agents used to treat Candida infections. It is one of the most abundant fungal cell wall components. Echinocandins represent the newest class of antifungals affecting cell wall biosynthesis through non-competitive inhibition of (1,3)- β -D-glucan synthase. Therefore, treatment with echinocandins causes defects in fungal cell integrity. In the present study, similar activity of emodin (6-methyl-1,3,8-trihydroxyanthraquinone) has been revealed. Many reports have already shown the antifungal potential of this pleiotropic molecule, including its activity against C. albicans . The aim of this report was to evaluate the activity of emodin towards a new molecular target, i.e. (1,3)- β -D-glucan synthase isolated from Candida cells. Moreover, given the identical mechanism of the activity of both molecules, interaction of emodin with caspofungin was determined. The study revealed that emodin reduced (1,3)- β -D-glucan synthase activity and increased cell wall damage, which was evidenced by both a sorbitol protection assay and an aniline blue staining assay. Furthermore, the synergy testing method showed mainly independence of the action of both tested antifungal agents, i.e. emodin and caspofungin used in combination. Candidiasis is the most common opportunistic yeast infection, with as a paramount causative species. (1,3)--D-glucan is one of the three main targets of clinically available antifungal agents used to treat infections. It is one of the most abundant fungal cell wall components. Echinocandins represent the newest class of antifungals affecting cell wall biosynthesis through non-competitive inhibition of (1,3)--D-glucan synthase. Therefore, treatment with echinocandins causes defects in fungal cell integrity. In the present study, similar activity of emodin (6-methyl-1,3,8-trihydroxyanthraquinone) has been revealed. Many reports have already shown the antifungal potential of this pleiotropic molecule, including its activity against . The aim of this report was to evaluate the activity of emodin towards a new molecular target, i.e. (1,3)--D-glucan synthase isolated from cells. Moreover, given the identical mechanism of the activity of both molecules, interaction of emodin with caspofungin was determined. The study revealed that emodin reduced (1,3)--D-glucan synthase activity and increased cell wall damage, which was evidenced by both a sorbitol protection assay and an aniline blue staining assay. Furthermore, the synergy testing method showed mainly independence of the action of both tested antifungal agents, i.e. emodin and caspofungin used in combination.

摘要

念珠菌病是最常见的机会性酵母菌感染,白色念珠菌是主要致病菌种。(1,3)-β-D-葡聚糖是临床上用于治疗念珠菌感染的抗真菌药物的三个主要靶点之一。它是真菌细胞壁中最丰富的成分之一。棘白菌素是影响细胞壁生物合成的最新一类抗真菌药物,通过非竞争性抑制(1,3)-β-D-葡聚糖合酶发挥作用。因此,用棘白菌素治疗会导致真菌细胞完整性受损。在本研究中,已揭示了大黄素(6-甲基-1,3,8-三羟基蒽醌)具有类似活性。许多报告已经表明了这种多效性分子的抗真菌潜力,包括其对白色念珠菌的活性。本报告的目的是评估大黄素对一个新的分子靶点,即从念珠菌细胞中分离出的(1,3)-β-D-葡聚糖合酶的活性。此外,鉴于这两种分子的活性机制相同,还测定了大黄素与卡泊芬净的相互作用。研究表明,大黄素降低了(1,3)-β-D-葡聚糖合酶的活性并增加了细胞壁损伤,这在山梨醇保护试验和苯胺蓝染色试验中均得到了证实。此外,协同试验方法表明,所测试的两种抗真菌药物,即联合使用的大黄素和卡泊芬净,其作用主要相互独立。念珠菌病是最常见的机会性酵母菌感染, 是主要致病菌种。(1,3)--D-葡聚糖是临床上用于治疗 感染的抗真菌药物的三个主要靶点之一。它是真菌细胞壁中最丰富的成分之一。棘白菌素是影响细胞壁生物合成的最新一类抗真菌药物,通过非竞争性抑制(1,3)--D-葡聚糖合酶发挥作用。因此,用棘白菌素治疗会导致真菌细胞完整性受损。在本研究中,已揭示了大黄素(6-甲基-1,3,8-三羟基蒽醌)具有类似活性。许多报告已经表明了这种多效性分子的抗真菌潜力,包括其对 的活性。本报告的目的是评估大黄素对一个新的分子靶点,即从 细胞中分离出的(1,3)--D-葡聚糖合酶的活性。此外,鉴于这两种分子的活性机制相同,还测定了大黄素与卡泊芬净的相互作用。研究表明,大黄素降低了(1,3)--D-葡聚糖合酶的活性并增加了细胞壁损伤,这在山梨醇保护试验和苯胺蓝染色试验中均得到了证实。此外,协同试验方法表明,所测试的两种抗真菌药物,即联合使用的大黄素和卡泊芬净,其作用主要相互独立。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c0fd/7256869/34ecb74faa32/pjm-67-4-463-g001.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验