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噻吩衍生物作为氟康唑耐药念珠菌生物膜抑制剂的协同抗真菌作用。

Synergistic antifungal effect of thiophene derivative as an inhibitor of fluconazole-resistant Candida spp. biofilms.

作者信息

da Silva Alves Adryelle Idalina, de Sousa Bruna Rodrigues, da Silva Janderson Weydson Lopes Menezes, Veras Dyana Leal, Brayner Fábio André, Alves Luiz Carlos, Mendonça Junior Francisco Jaime Bezerra, Inácio Cicero Pinheiro, Neves Rejane Pereira

机构信息

Department of Tropical Medicine, Federal University of Pernambuco, Recife, PE, 50670-901, Brazil.

Department of Mycology, Medical Mycology Laboratory, Federal University of Pernambuco, Av. Moraes Rego s/n, University City, Recife, PE, 50670-901, Brazil.

出版信息

Braz J Microbiol. 2024 Dec;55(4):3667-3677. doi: 10.1007/s42770-024-01470-3. Epub 2024 Aug 7.

Abstract

Candida species resistant to fluconazole have raised concern in the scientific medical community due to high mortality in patients with invasive disease. In developing countries, such as Brazil, fluconazole is the most commonly used antifungal, and alternative treatments are expensive or not readily available. Furthermore, the occurrence of biofilms is common, coupled with their inherent resistance to antifungal therapies and the host's immune system, these microbial communities have contributed to making infections caused by these yeasts an enormous clinical challenge. Therefore, there is an urgent need to develop alternative medicines, which surpass the effectiveness of already used therapies, but which are also effective against biofilms. Therefore, the present study aimed to describe for the first time the antifungal and antibiofilm action of the derivative 2-amino-5,6,7,8-tetrahydro-4 H-cyclohepta[b]thiophene-3-isopropyl carboxylate (2AT) against clinical strains of Candida spp. resistant to fluconazole (FLZ). When determining the minimum inhibitory concentrations (MIC), it was found that the compound has antifungal action at concentrations of 100 to 200 µg/mL, resulting in 100% inhibition of yeast cells. Its synergistic effect with the drug FLZ was also observed. The antibiofilm action of the compound in subinhibitory concentrations was detected, alone and in association with FLZ. Moreover, using scanning electron microscopy, it was observed that the compound 2AT in isolation was capable of causing significant ultrastructural changes in Candida. Additionally, it was also demonstrated that the compound 2AT acts by inducing characteristics compatible with apoptosis in these yeasts, such as chromatin condensation, when visualized by transmission electron microscopy, indicating the possible mechanism of action of this molecule. Furthermore, the compound did not exhibit toxicity in J774 macrophage cells up to a concentration of 4000 µg/mL. In this study, we identify the 2AT derivative as a future alternative for invasive candidiasis therapy, in addition, we highlighted the promise of a strategy combined with fluconazole in combating Candida infections, especially in cases of resistant isolates.

摘要

对氟康唑耐药的念珠菌属在科学界引起了关注,因为侵袭性疾病患者的死亡率很高。在巴西等发展中国家,氟康唑是最常用的抗真菌药物,而替代治疗昂贵或难以获得。此外,生物膜的出现很常见,再加上它们对抗真菌治疗和宿主免疫系统固有的抗性,这些微生物群落使得由这些酵母菌引起的感染成为一个巨大的临床挑战。因此,迫切需要开发替代药物,这些药物不仅要超过已使用疗法的有效性,还要对生物膜有效。因此,本研究旨在首次描述衍生物2-氨基-5,6,7,8-四氢-4H-环庚并[b]噻吩-3-异丙基羧酸酯(2AT)对耐氟康唑(FLZ)的念珠菌临床菌株的抗真菌和抗生物膜作用。在确定最低抑菌浓度(MIC)时,发现该化合物在100至200μg/mL的浓度下具有抗真菌作用,可导致酵母细胞100%抑制。还观察到它与药物FLZ的协同作用。检测了该化合物在亚抑菌浓度下单独以及与FLZ联合时的抗生物膜作用。此外,使用扫描电子显微镜观察到,单独的化合物2AT能够引起念珠菌显著的超微结构变化。另外,还证明该化合物2AT通过诱导这些酵母菌中与凋亡相容的特征起作用,如通过透射电子显微镜观察到的染色质浓缩,这表明了该分子可能的作用机制。此外,该化合物在浓度高达4000μg/mL时对J774巨噬细胞没有毒性。在本研究中,我们确定2AT衍生物是侵袭性念珠菌病治疗的未来替代药物,此外,我们强调了联合氟康唑策略在对抗念珠菌感染方面的前景,特别是在耐药菌株的情况下。

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