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应中央军委要求,2022年9月起,《药学实践杂志》将更名为《药学实践与服务》,双月刊,正文96页;2023年1月起,拟出版月刊,正文64页,数据库收录情况与原《药学实践杂志》相同。欢迎作者踊跃投稿!

白念珠菌的高适应性与代谢

毕爽 胡丹丹 姜远英 王彦

毕爽, 胡丹丹, 姜远英, 王彦. 白念珠菌的高适应性与代谢[J]. 药学实践与服务, 2016, 34(2): 116-118,173. doi: 10.3969/j.issn.1006-0111.2016.02.006
引用本文: 毕爽, 胡丹丹, 姜远英, 王彦. 白念珠菌的高适应性与代谢[J]. 药学实践与服务, 2016, 34(2): 116-118,173. doi: 10.3969/j.issn.1006-0111.2016.02.006
BI Shuang, HU Dandan, JIANG Yuanying, WANG Yan. The high adaptability and metabolism of Candida albicans[J]. Journal of Pharmaceutical Practice and Service, 2016, 34(2): 116-118,173. doi: 10.3969/j.issn.1006-0111.2016.02.006
Citation: BI Shuang, HU Dandan, JIANG Yuanying, WANG Yan. The high adaptability and metabolism of Candida albicans[J]. Journal of Pharmaceutical Practice and Service, 2016, 34(2): 116-118,173. doi: 10.3969/j.issn.1006-0111.2016.02.006

白念珠菌的高适应性与代谢

doi: 10.3969/j.issn.1006-0111.2016.02.006
基金项目: 国家自然科学基金(81273558),上海市浦江人才计划(14PJD001)

The high adaptability and metabolism of Candida albicans

  • 摘要: 病原真菌白念珠菌对环境具有高度的适应能力,主要体现在与宿主共生时、侵袭宿主时以及在抗真菌药物作用的情况下。白念珠菌生存、繁殖的过程伴随着物质代谢,其可利用的碳源、氮源广泛,并且对营养物质的变化非常敏感。近年来不少研究发现,白念珠菌所处的环境会影响其代谢,与此同时,白念珠菌又可以通过调整代谢过程来适应多变的环境。因此,深入研究白念珠菌代谢与高适应性之间的关联有助于发现新的抗真菌作用靶点。
  • [1] Guinea J. Global trends in the distribution of Candida species causing candidemia[J]. Clin Microbiol Infect, 2014, 20(Suppl 6):5-10.
    [2] Cottier F, Pavelka N. Complexity and dynamics of host-fungal interactions[J]. Immunol Res, 2012, 53(1-3):127-135.
    [3] Romani L, Zelante T, Palmieri M, et al. The cross-talk between opportunistic fungi and the mammalian host via microbiota's metabolism[J]. Semin Immunopathol, 2015, 37(2):163-171.
    [4] Mallick EM, Bennett RJ. Sensing of the microbial neighborhood by Candida albicans[J]. PLoS Pathog, 2013, 9(10):e1003661.
    [5] Staniszewska M, Bondaryk M, Pilat J, et al. Virulence factors of Candida albicans[J]. Przegl Epidemiol, 2012, 66(4):629-633.
    [6] Zhu W, Filler S G. Interactions of Candida albicans with epithelial cells[J]. Cell Microbiol, 2010, 12(3):273-282.
    [7] Hoyer LL. The ALS gene family of Candida albicans[J]. Trends Microbiol, 2001, 9(4):176-180.
    [8] Sun N, Fonzi W, Chen H, et al. Azole susceptibility and transcriptome profiling in Candida albicans mitochondrial electron transport chain complex I mutants[J]. Antimicrob Agents Chemother, 2013, 57(1):532-542.
    [9] Prasad R, Rawal MK. Efflux pump proteins in antifungal resistance[J]. Front Pharmacol, 2014, 5:202.
    [10] Ene IV, Adya AK, Wehmeier S, et al. Host carbon sources modulate cell wall architecture, drug resistance and virulence in a fungal pathogen[J]. Cell Microbiol, 2012, 14(9):1319-1335.
    [11] Lorenz MC, Fink GR. The glyoxylate cycle is required for fungal virulence[J]. Nature, 2001, 412(6842):83-86.
    [12] Cheah HL, Lim V, Sandai D. Inhibitors of the glyoxylate cycle enzyme ICL1 in Candida albicans for potential use as antifungal agents[J]. PLoS One, 2014, 9(4):e95951.
    [13] Kemsawasd V, Viana T, Ardo Y, et al. Influence of nitrogen sources on growth and fermentation performance of different wine yeast species during alcoholic fermentation[J]. Appl Microbiol Biotechnol, 2015.
    [14] Gagiano M, Bauer F-F, Pretorius IS. The sensing of nutritional status and the relationship to filamentous growth in Saccharomyces cerevisiae[J]. FEMS Yeast Res, 2002, 2(4):433-470.
    [15] Buu LM, Chen YC. Impact of glucose levels on expression of hypha-associated secreted aspartyl proteinases in Candida albicans[J]. J Biomed Sci, 2014, 21:22.
    [16] Han TL, Cannon RD, Villas-B? as S-G. The metabolic basis of Candida albicans morphogenesis and quorum sensing[J]. Fungal Genet Biol, 2011, 48(8):747-763.
    [17] Brown AJ, Brown GD, Netea MG, et al. Metabolism impacts upon Candida immunogenicity and pathogenicity at multiple levels[J]. Trends Microbiol, 2014, 22(11):614-622.
    [18] Vieira N, Casal M, Johansson B, et al. Functional specialization and differential regulation of short-chain carboxylic acid transporters in the pathogen Candida albicans[J]. Mol Microbiol, 2010, 75(6):1337-1354.
    [19] Kitahara N, Morisaka H, Aoki W, et al. Description of the interaction between Candida albicans and macrophages by mixed and quantitative proteome analysis without isolation[J]. Amb Express, 2015, 5(1):127.
    [20] Ramirez MA, Lorenz MC. Mutations in alternative carbon utilization pathways in Candida albicans attenuate virulence and confer pleiotropic phenotypes[J]. Eukaryot Cell, 2007, 6(2):280-290.
    [21] Sellam A, van het Hoog M, Tebbji F, et al. Modeling the transcriptional regulatory network that controls the early hypoxic response in Candida albicans[J]. Eukaryot Cell, 2014, 13(5):675-690.
    [22] Dunkel N, Biswas K, Hiller E, et al. Control of morphogenesis, protease secretion and gene expression in Candida albicans by the preferred nitrogen source ammonium[J]. Microbiology, 2014, 160(Pt 8):1599-1608.
    [23] Ramachandra S, Linde J, Brock M, et al. Regulatory networks controlling nitrogen sensing and uptake in Candida albicans[J]. PLoS One, 2014, 9(3):e92734.
    [24] Yan L, Zhang JD, Cao YB, et al. Proteomic analysis reveals a metabolism shift in a laboratory fluconazole-resistant Candida albicans strain[J]. J Proteome Res, 2007, 6(6):2248-2256.
    [25] Xu Y, Sheng F, Zhao J, et al. ERG11 mutations and expression of resistance genes in fluconazole-resistant Candida albicans isolates[J]. Arch Microbiol, 2015.
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出版历程
  • 收稿日期:  2015-08-23
  • 修回日期:  2015-09-29

白念珠菌的高适应性与代谢

doi: 10.3969/j.issn.1006-0111.2016.02.006
    基金项目:  国家自然科学基金(81273558),上海市浦江人才计划(14PJD001)

摘要: 病原真菌白念珠菌对环境具有高度的适应能力,主要体现在与宿主共生时、侵袭宿主时以及在抗真菌药物作用的情况下。白念珠菌生存、繁殖的过程伴随着物质代谢,其可利用的碳源、氮源广泛,并且对营养物质的变化非常敏感。近年来不少研究发现,白念珠菌所处的环境会影响其代谢,与此同时,白念珠菌又可以通过调整代谢过程来适应多变的环境。因此,深入研究白念珠菌代谢与高适应性之间的关联有助于发现新的抗真菌作用靶点。

English Abstract

毕爽, 胡丹丹, 姜远英, 王彦. 白念珠菌的高适应性与代谢[J]. 药学实践与服务, 2016, 34(2): 116-118,173. doi: 10.3969/j.issn.1006-0111.2016.02.006
引用本文: 毕爽, 胡丹丹, 姜远英, 王彦. 白念珠菌的高适应性与代谢[J]. 药学实践与服务, 2016, 34(2): 116-118,173. doi: 10.3969/j.issn.1006-0111.2016.02.006
BI Shuang, HU Dandan, JIANG Yuanying, WANG Yan. The high adaptability and metabolism of Candida albicans[J]. Journal of Pharmaceutical Practice and Service, 2016, 34(2): 116-118,173. doi: 10.3969/j.issn.1006-0111.2016.02.006
Citation: BI Shuang, HU Dandan, JIANG Yuanying, WANG Yan. The high adaptability and metabolism of Candida albicans[J]. Journal of Pharmaceutical Practice and Service, 2016, 34(2): 116-118,173. doi: 10.3969/j.issn.1006-0111.2016.02.006
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