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Updated: Jan 2, 2026

Simultaneous Measurement of Mitochondrial Calcium and Mitochondrial Membrane Potential in Live Cells by Fluorescent Microscopy
Published on: January 24, 2017
Mitochondrial dysfunctions trigger the calcium signaling-dependent fungal multidrug resistance
Yeqi Li1, Yuanwei Zhang1, Chi Zhang1
1Jiangsu Key Laboratory for Microbes and Functional Genomics, College of Life Sciences, Nanjing Normal University, 210023 Nanjing, China.
Abstract:
Drug resistance in fungal pathogens has risen steadily over the past decades due to long-term azole therapy or triazole usage in agriculture. Modification of the drug target protein to prevent drug binding is a major recognized route to induce drug resistance. However, mechanisms for nondrug target-induced resistance remain only loosely defined. Here, we explore the molecular mechanisms of multidrug resistance resulted from an efficient adaptation strategy for survival in drug environments in the human pathogen Aspergillus fumigatus We show that mutants conferring multidrug resistance are linked with mitochondrial dysfunction induced by defects in heme A biosynthesis. Comparison of the gene expression profiles between the drug-resistant mutants and the parental wild-type strain shows that multidrug-resistant transporters, chitin synthases, and calcium-signaling-related genes are significantly up-regulated, while scavenging mitochondrial reactive oxygen species (ROS)-related genes are significantly down-regulated. The up-regulated-expression genes share consensus calcium-dependent serine threonine phosphatase-dependent response elements (the binding sites of calcium-signaling transcription factor CrzA). Accordingly, drug-resistant mutants show enhanced cytosolic Ca2+ transients and persistent nuclear localization of CrzA. In comparison, calcium chelators significantly restore drug susceptibility and increase azole efficacy either in laboratory-derived or in clinic-isolated A. fumigatus strains. Thus, the mitochondrial dysfunction as a fitness cost can trigger calcium signaling and, therefore, globally up-regulate a series of embedding calcineurin-dependent-response-element genes, leading to antifungal resistance. These findings illuminate how fitness cost affects drug resistance and suggest that disruption of calcium signaling might be a promising therapeutic strategy to fight against nondrug target-induced drug resistance.
Insights
Multidrug resistance in Aspergillus fumigatus arises from mitochondrial defects that trigger calcium signaling. This signaling up-regulates genes, causing resistance, but inhibiting calcium pathways may restore drug susceptibility.
Area of Science:
- Mycology
- Molecular Biology
- Antimicrobial Resistance
Background:
- Rising drug resistance in fungal pathogens like Aspergillus fumigatus is a significant clinical challenge, often linked to azole or triazole use.
- While drug target modification is a known resistance mechanism, non-target-induced resistance pathways are less understood.
Purpose of the Study:
- To investigate the molecular mechanisms underlying multidrug resistance in Aspergillus fumigatus, focusing on non-target-induced resistance.
- To explore the role of mitochondrial dysfunction and calcium signaling in conferring antifungal drug resistance.
Main Methods:
- Comparative gene expression profiling of drug-resistant mutants and wild-type Aspergillus fumigatus.
- Analysis of mitochondrial function, heme A biosynthesis, and reactive oxygen species (ROS) scavenging pathways.
- Investigation of calcium signaling pathways, including cytosolic calcium transients, CrzA transcription factor localization, and calcineurin-dependent response elements.
Main Results:
- Multidrug resistance in A. fumigatus mutants was associated with mitochondrial dysfunction due to defects in heme A biosynthesis.
- Gene expression analysis revealed significant up-regulation of multidrug transporters, chitin synthases, and calcium-signaling genes, alongside down-regulation of ROS-scavenging genes.
- Drug-resistant mutants exhibited enhanced cytosolic calcium transients and CrzA nuclear localization, indicating activated calcium signaling.
Conclusions:
- Mitochondrial dysfunction acts as a fitness cost that triggers calcium signaling, leading to the up-regulation of calcineurin-dependent genes and subsequent antifungal resistance.
- Disrupting calcium signaling pathways, for example, using calcium chelators, can restore drug susceptibility and enhance azole efficacy in A. fumigatus.
- Targeting calcium signaling presents a potential therapeutic strategy against non-drug target-induced antifungal resistance.
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