The Contribution of Candida albicans Vacuolar ATPase Subunit V 1 B, Encoded by VMA2 , to Stress Response, Autophagy, and Virulence Is Independent of Environmental pH

Author:

Rane Hallie S.1,Bernardo Stella M.12,Hayek Summer R.3,Binder Jessica L.3,Parra Karlett J.3,Lee Samuel A.12

Affiliation:

1. Section of Infectious Diseases, New Mexico Veterans Healthcare System, Albuquerque, New Mexico, USA

2. Division of Infectious Diseases, University of New Mexico Health Science Center, Albuquerque, New Mexico, USA

3. Department of Biochemistry and Molecular Biology, University of New Mexico Health Science Center, Albuquerque, New Mexico, USA

Abstract

ABSTRACT Candida albicans vacuoles are central to many critical biological processes, including filamentation and in vivo virulence. The V-ATPase proton pump is a multisubunit complex responsible for organellar acidification and is essential for vacuolar biogenesis and function. To study the function of the V 1 B subunit of C. albicans V-ATPase, we constructed a tetracycline-regulatable VMA2 mutant, tetR- VMA2 . Inhibition of VMA2 expression resulted in the inability to grow at alkaline pH and altered resistance to calcium, cold temperature, antifungal drugs, and growth on nonfermentable carbon sources. Furthermore, V-ATPase was unable to fully assemble at the vacuolar membrane and was impaired in proton transport and ATPase-specific activity. VMA2 repression led to vacuolar alkalinization in addition to abnormal vacuolar morphology and biogenesis. Key virulence-related traits, including filamentation and secretion of degradative enzymes, were markedly inhibited. These results are consistent with previous studies of C. albicans V-ATPase; however, differential contributions of the V-ATPase V o and V 1 subunits to filamentation and secretion are observed. We also make the novel observation that inhibition of C. albicans V-ATPase results in increased susceptibility to osmotic stress. Notably, V-ATPase inhibition under conditions of nitrogen starvation results in defects in autophagy. Lastly, we show the first evidence that V-ATPase contributes to virulence in an acidic in vivo system by demonstrating that the tetR- VMA2 mutant is avirulent in a Caenorhabditis elegans infection model. This study illustrates the fundamental requirement of V-ATPase for numerous key virulence-related traits in C. albicans and demonstrates that the contribution of V-ATPase to virulence is independent of host pH.

Publisher

American Society for Microbiology

Subject

Molecular Biology,General Medicine,Microbiology

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