Resistensi Flukonazol pada Candida glabrata: Mekanisme Molekuler Mutasi Gen ERG11
Abstract
Keywords
Full Text:
PDF (Bahasa Indonesia)References
Pais, P., Galocha, M., Takahashi-Nakaguchi, A., Chibana, H. & Teixeira, M. C. Multiple genome analysis of Candida glabrataclinical isolates renders new insights into genetic diversity and drug resistance determinants. Microbial Cell 9, 174–189 (2022).
El Said, M. et al. Detection of ERG11 gene in fluconazole resistant urinary candida isolates. Egypt J Immunol 29, 134–147 (2022).
Candida glabrata Pathogenicity and Resistance Mechanisms.
Garey, K. W. et al. Time to initiation of fluconazole therapy impacts mortality in patients with candidemia: A multi-institutional study. Clinical Infectious Diseases 43, 25–31 (2006).
Merdan, O. et al. Investigation of the Defective Growth Pattern and Multidrug Resistance in a Clinical Isolate of Candida glabrata Using Whole-Genome Sequencing and Computational Biology Applications. Microbiol Spectr 10, (2022).
Duggan, S. & Usher, J. Candida glabrata: A powerhouse of resistance. PLoS Pathog 19, (2023).
Kumar, K., Askari, F., Sahu, M. S. & Kaur, R. Candida glabrata: A lot more than meets the eye. Microorganisms vol. 7 Preprint at https://doi.org/10.3390/microorganisms7020039 (2019).
Candida glabrata Review of Epidemiology, Pathogenesis, and.
Rodrigues, C. F., Rodrigues, M. E., Silva, S. & Henriques, M. Candida glabrata biofilms: How far have we come? Journal of Fungi vol. 3 Preprint at https://doi.org/10.3390/jof3010011 (2017).
Ahmad, K. M. et al. Genome structure and dynamics of the yeast pathogen Candida glabrata. FEMS Yeast Res 14, 529–535 (2014).
Gupta, A., Gupta, A. & Varma, A. Candida glabrata candidemia: An emerging threat in critically ill patients. Indian Journal of Critical Care Medicine 19, 151–154 (2015).
Alexander, B. D. et al. Increasing echinocandin resistance in candida glabrata: Clinical failure correlates with presence of FKS mutations and elevated minimum inhibitory concentrations. Clinical Infectious Diseases 56, 1724–1732 (2013).
Vallabhaneni, S. et al. Epidemiology and risk factors for echinocandin nonsusceptible Candida glabrata bloodstream infections: Data from a large multisite population-based candidemia surveillance program, 2008-2014. Open Forum Infect Dis 2, (2015).
Rizky Reza, N., Shw, T., Basuki, S. & Anwar Malang, S. Uji Kepekaan In Vitro Flukonazol Terhadap Spesies Candida Penyebab Kandidiasis Oral Pada Pasien HIV/AIDS Dengan Vitek II (In Vitro Susceptibilty Test of Fluconazole to Candida Spp in Patients with Oropharyngeal Candidiasis and HIV/AIDS with Vitek II).
Pfaller, M. A. et al. Results from the artemis disk global antifungal surveillance study, 1997 to 2007: A 10.5-year analysis of susceptibilities of candida species to fluconazole and voriconazole as determined by CLSI standardized disk diffusion. J Clin Microbiol 48, 1366–1377 (2010).
Autoverification of Medical Laboratory Results for Specific Disciplines.
Silva, S. et al. Candida glabrata, Candida parapsilosis and Candida tropicalis: Biology, epidemiology, pathogenicity and antifungal resistance. FEMS Microbiology Reviews vol. 36 288–305 Preprint at https://doi.org/10.1111/j.1574-6976.2011.00278.x (2012).
Diakses tanggal 6 September 2025. www.biomerieux.com/vitek-2.
Pincus, D. H. MICROBIAL IDENTIFICATION USING THE BIOMÉRIEUX VITEK ® 2 SYSTEM. www.pda.org/bookstore.
Vu, D. et al. DNA barcoding analysis of more than 9 000 yeast isolates contributes to quantitative thresholds for yeast species and genera delimitation. Stud Mycol 85, 91–105 (2016).
Bellemain, E. et al. ITS as an Environmental DNA Barcode for Fungi: An in Silico Approach Reveals Potential PCR Biases. BMC Microbiology vol. 10 http://www.biomedcentral.com/1471-2180/10/189 (2010).
Kidd, Sarah., Halliday, C. L. ., Alexiou, Helen. & Ellis, David. Descriptions of Medical Fungi. (David Ellis, 2016).
Al-Baqsami, Z. F., Ahmad, S. & Khan, Z. Antifungal drug susceptibility, molecular basis of resistance to echinocandins and molecular epidemiology of fluconazole resistance among clinical Candida glabrata isolates in Kuwait. Sci Rep 10, (2020).
Hu, C. et al. Abnormal ergosterol biosynthesis activates transcriptional responses to antifungal azoles. Front Microbiol 9, (2018).
Henry, K. W., Nickels, J. T. & Edlind, T. D. Upregulation of ERG Genes in Candida Species by Azoles and Other Sterol Biosynthesis Inhibitors. vol. 44 (2000).
Refbacks
- There are currently no refbacks.







