Antifungal Drug Repurposing

被引:39
|
作者
Kim, Jong H. [1 ]
Cheng, Luisa W. [1 ]
Chan, Kathleen L. [1 ]
Tam, Christina C. [1 ]
Mahoney, Noreen [1 ]
Friedman, Mendel [2 ]
Shilman, Mikhail Martchenko [3 ]
Land, Kirkwood M. [4 ]
机构
[1] ARS, Foodborne Toxin Detect & Prevent Res Unit, Western Reg Res Ctr, USDA, Albany, CA 94710 USA
[2] ARS, Hlth Processed Foods Res Unit, Western Reg Res Ctr, USDA, Albany, CA 94710 USA
[3] Keck Grad Inst, Henry E Riggs Sch Appl Life Sci, Claremont, CA 91711 USA
[4] Univ Pacific, Dept Biol Sci, Stockton, CA 95211 USA
来源
ANTIBIOTICS-BASEL | 2020年 / 9卷 / 11期
关键词
antifungal; Aspergillus; Candida; Cryptococcus; drug repurposing; multidrug resistance; pan-azole resistance; IN-VITRO ACTIVITY; NONSTEROIDAL ANTIINFLAMMATORY DRUGS; ACTIVATED PROTEIN-KINASE; CANDIDA-ALBICANS; HIGH-THROUGHPUT; AMPHOTERICIN-B; POLYMYXIN-B; SYNERGISTIC COMBINATIONS; ASPERGILLUS-FUMIGATUS; SACCHAROMYCES-CEREVISIAE;
D O I
10.3390/antibiotics9110812
中图分类号
R51 [传染病];
学科分类号
100401 ;
摘要
Control of fungal pathogens is increasingly problematic due to the limited number of effective drugs available for antifungal therapy. Conventional antifungal drugs could also trigger human cytotoxicity associated with the kidneys and liver, including the generation of reactive oxygen species. Moreover, increased incidences of fungal resistance to the classes of azoles, such as fluconazole, itraconazole, voriconazole, or posaconazole, or echinocandins, including caspofungin, anidulafungin, or micafungin, have been documented. Of note, certain azole fungicides such as propiconazole or tebuconazole that are applied to agricultural fields have the same mechanism of antifungal action as clinical azole drugs. Such long-term application of azole fungicides to crop fields provides environmental selection pressure for the emergence of pan-azole-resistant fungal strains such as Aspergillus fumigatus having TR34/L98H mutations, specifically, a 34 bp insertion into the cytochrome P450 51A (CYP51A) gene promoter region and a leucine-to-histidine substitution at codon 98 of CYP51A. Altogether, the emerging resistance of pathogens to currently available antifungal drugs and insufficiency in the discovery of new therapeutics engender the urgent need for the development of new antifungals and/or alternative therapies for effective control of fungal pathogens. We discuss the current needs for the discovery of new clinical antifungal drugs and the recent drug repurposing endeavors as alternative methods for fungal pathogen control.
引用
收藏
页码:1 / 29
页数:29
相关论文
共 50 条
  • [41] In vitro antifungal activity of micafungin
    Quindos, Guillermo
    Eraso, Elena
    Javier Carrillo-Munoz, Alfonso
    Canton, Emilia
    Peman, Javier
    REVISTA IBEROAMERICANA DE MICOLOGIA, 2009, 26 (01): : 35 - 41
  • [42] Drug Repurposing for Retinoblastoma: Recent Advances
    Dandu, Kamakshi
    Kallamadi, Prathap R.
    Thakur, Suman S.
    Rao, Chaudhry Mohan
    CURRENT TOPICS IN MEDICINAL CHEMISTRY, 2019, 19 (17) : 1535 - 1544
  • [43] Drug Repurposing in Medical Mycology: Identification of Compounds as Potential Antifungals to Overcome the Emergence of Multidrug-Resistant Fungi
    Peyclit, Lucie
    Yousfi, Hanane
    Rolain, Jean-Marc
    Bittar, Fadi
    PHARMACEUTICALS, 2021, 14 (05)
  • [44] Derivatives of the Antimalarial Drug Mefloquine Are Broad-Spectrum Antifungal Molecules with Activity against Drug-Resistant Clinical Isolates
    Montoya, Marhiah C.
    Beattie, Sarah
    Alden, Kathryn M.
    Krysan, Damian J.
    ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 2020, 64 (03)
  • [45] Repurposing benzbromarone as antifolate to develop novel antifungal therapy for Candida albicans
    Mujwar, Somdutt
    Tripathi, Avanish
    JOURNAL OF MOLECULAR MODELING, 2022, 28 (07)
  • [46] Repurposing benzbromarone as antifolate to develop novel antifungal therapy for Candida albicans
    Somdutt Mujwar
    Avanish Tripathi
    Journal of Molecular Modeling, 2022, 28
  • [47] Identification of Antifungal Compounds against Multidrug-Resistant Candida auris Utilizing a High-Throughput Drug-Repurposing Screen
    Cheng, Yu-Shan
    Roma, Jose Santinni
    Shen, Min
    Fernandes, Caroline Mota
    Tsang, Patricia S.
    Forbes, He Eun
    Boshoff, Helena
    Lazzarini, Cristina
    Del Poeta, Maurizio
    Zheng, Wei
    Williamson, Peter R.
    ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 2021, 65 (04)
  • [48] The biology and chemistry of antifungal agents: A review
    Kathiravan, Muthu K.
    Salake, Amol B.
    Chothe, Aparna S.
    Dudhe, Prashik B.
    Watode, Rahul P.
    Mukta, Maheshwar S.
    Gadhwe, Sandeep
    BIOORGANIC & MEDICINAL CHEMISTRY, 2012, 20 (19) : 5678 - 5698
  • [49] Targeting efflux pumps to overcome antifungal drug resistance
    Holmes, Ann R.
    Cardno, Tony S.
    Strouse, J. Jacob
    Ivnitski-Steele, Irena
    Keniya, Mikhail V.
    Lackovic, Kurt
    Monk, Brian C.
    Sklar, Larry A.
    Cannon, Richard D.
    FUTURE MEDICINAL CHEMISTRY, 2016, 8 (12) : 1485 - 1501
  • [50] Host Defense Peptides as Templates for Antifungal Drug Development
    Basso, Virginia
    Tran, Dat Q.
    Ouellette, Andre J.
    Selsted, Michael E.
    JOURNAL OF FUNGI, 2020, 6 (04) : 1 - 18