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Author Spotlight: Enhancing Candida albicans Detection in Catheter Infections Using Fluorescent Protein Tagging
Published on: March 22, 2024
Emerging Mechanisms of Drug Resistance in Candida albicans
Rajendra Prasad1, Remya Nair2,3, Atanu Banerjee4,3
1Amity Institute of Integrative Science and Health and Amity Institute of Biotechnology, Amity University Haryana, Amity Education Valley, Gurgaon, Haryana, India. rp47jnu@gmail.com.
Abstract:
Drug resistance mechanisms in the commensal human pathogen Candida albicans are continually evolving. Over time, Candida species have implemented diverse strategies to vanquish the effects of various classes of drugs, thereby emanating as a serious life threat. Apart from the repertoire of well-established strategies, which predominantly comprise permeability constraints, increased drug efflux or compromised drug import, alteration, overexpression of drug targets, and chromosome duplication, C. albicans has evolved novel regulatory mechanisms of drug resistance. For instance, recent evidences point to newer circuitry involving different mediators of the stress-responsive machinery of oxidative, osmotic, thermal, nitrosative, and nutrient limitation, which contribute to the emergence of drug resistance. Contemporary advances in genome-wide studies of transcription factors, for instance, the Zn2Cys6 transcription factors, TAC1 (transcriptional activator of CDR) in Candida albicans, or YRR1 in yeast have made it feasible to dissect their involvement for the elucidation of unexplored regulatory network of drug resistance. The coordination of implementers of the conventional and nonconventional drug resistance strategies provides robustness to this commensal human pathogen. In this review, we shed light not only on the established strategies of antifungal resistance but also discuss emerging cellular circuitry governing drug resistance of this human pathogen.
Insights
Candida albicans employs evolving drug resistance strategies, including novel regulatory pathways. Understanding these mechanisms is crucial for combating this life-threatening pathogen.
Area of Science:
- Microbiology
- Molecular Biology
- Medical Mycology
Background:
- * *Candida albicans* is a commensal human pathogen that poses a significant threat due to its evolving drug resistance.
- * Diverse resistance mechanisms, including altered drug permeability, efflux, target modification, and novel regulatory circuits, contribute to treatment challenges.
Purpose of the Study:
- * To review established and emerging drug resistance mechanisms in *Candida albicans*.
- * To elucidate the regulatory networks governing antifungal resistance in this pathogen.
Main Methods:
- * Review of existing literature on *Candida albicans* drug resistance.
- * Analysis of genome-wide studies focusing on transcription factors (e.g., Zn2Cys6 factors like TAC1 and YRR1).
Main Results:
- * *C. albicans* utilizes both conventional strategies (permeability, efflux, target alteration) and novel stress-responsive regulatory mechanisms for drug resistance.
- * Transcription factors play a key role in coordinating these conventional and non-conventional resistance strategies.
Conclusions:
- * The complex interplay of diverse resistance mechanisms enhances the robustness of *Candida albicans* as a pathogen.
- * Further research into these regulatory networks is essential for developing effective antifungal therapies.
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