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The Novel Arylamidine T-2307 Selectively Disrupts Yeast Mitochondrial Function by Inhibiting Respiratory Chain
Kohei Yamashita1,2, Taiga Miyazaki3,4, Yoshiko Fukuda5
1Department of Pharmacology Research (Toyama Works), Pharmaceutical and Healthcare Research Laboratories, FUJIFILM Corporation, Toyama, Japan.
Abstract:
The novel arylamidine T-2307 exhibits broad-spectrum in vitro and in vivo antifungal activities against clinically significant pathogens. Previous studies have shown that T-2307 accumulates in yeast cells via a specific polyamine transporter and disrupts yeast mitochondrial membrane potential. Further, it has little effect on rat liver mitochondrial function. The mechanism by which T-2307 disrupts yeast mitochondrial function is poorly understood, and its elucidation may provide important information for developing novel antifungal agents. This study aimed to determine how T-2307 promotes yeast mitochondrial dysfunction and to investigate the selectivity of this mechanism between fungi and mammals. T-2307 inhibited the respiration of yeast whole cells and isolated yeast mitochondria in a dose-dependent manner. The similarity of the effects of T-2307 and respiratory chain inhibitors on mitochondrial respiration prompted us to investigate the effect of T-2307 on mitochondrial respiratory chain complexes. T-2307 particularly inhibited respiratory chain complexes III and IV not only in Saccharomyces cerevisiae but also in Candida albicans, indicating that T-2307 acts against pathogenic fungi in a manner similar to that of yeast. Conversely, T-2307 showed little effect on bovine respiratory chain complexes. Additionally, we demonstrated that the inhibition of respiratory chain complexes by T-2307 resulted in a decrease in the intracellular ATP levels in yeast cells. These results indicate that inhibition of respiratory chain complexes III and IV is a key factor for selective disruption of yeast mitochondrial function and antifungal activity.
Insights
The antifungal T-2307 selectively inhibits fungal respiratory complexes III and IV, disrupting mitochondrial function and ATP production in yeast. This mechanism underlies its broad-spectrum antifungal activity against pathogens like Candida albicans.
Area of Science:
- Biochemistry
- Mycology
- Pharmacology
Background:
- The novel arylamidine T-2307 demonstrates broad-spectrum antifungal activity.
- T-2307 enters yeast cells via polyamine transporters and disrupts mitochondrial membrane potential.
- The precise mechanism of T-2307-induced yeast mitochondrial dysfunction remains unclear.
Purpose of the Study:
- To elucidate the mechanism by which T-2307 causes yeast mitochondrial dysfunction.
- To investigate the selectivity of T-2307's antifungal mechanism between fungi and mammals.
Main Methods:
- Assessed the effect of T-2307 on yeast whole cell and isolated mitochondrial respiration.
- Investigated T-2307's impact on mitochondrial respiratory chain complexes in various species.
- Measured intracellular ATP levels in yeast cells following T-2307 treatment.
Main Results:
- T-2307 dose-dependently inhibited yeast respiration.
- T-2307 specifically inhibited respiratory chain complexes III and IV in Saccharomyces cerevisiae and Candida albicans.
- T-2307 showed minimal effects on bovine respiratory chain complexes.
- Inhibition of respiratory complexes led to decreased intracellular ATP levels in yeast.
Conclusions:
- T-2307 selectively targets and inhibits fungal respiratory chain complexes III and IV.
- This inhibition disrupts yeast mitochondrial function and reduces ATP production.
- The selective inhibition of fungal mitochondria is a key factor in T-2307's antifungal activity.
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