Cargando…

Roles for Stress Response and Cell Wall Biosynthesis Pathways in Caspofungin Tolerance in Cryptococcus neoformans

Limited antifungal diversity and availability are growing problems for the treatment of fungal infections in the face of increasing drug resistance. The echinocandins, one of the newest classes of antifungal drugs, inhibit production of a crucial cell wall component. However, these compounds do not...

Descripción completa

Detalles Bibliográficos
Autores principales: Pianalto, Kaila M., Billmyre, R. Blake, Telzrow, Calla L., Alspaugh, J. Andrew
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Genetics Society of America 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6727808/
https://www.ncbi.nlm.nih.gov/pubmed/31266771
http://dx.doi.org/10.1534/genetics.119.302290
_version_ 1783449327250702336
author Pianalto, Kaila M.
Billmyre, R. Blake
Telzrow, Calla L.
Alspaugh, J. Andrew
author_facet Pianalto, Kaila M.
Billmyre, R. Blake
Telzrow, Calla L.
Alspaugh, J. Andrew
author_sort Pianalto, Kaila M.
collection PubMed
description Limited antifungal diversity and availability are growing problems for the treatment of fungal infections in the face of increasing drug resistance. The echinocandins, one of the newest classes of antifungal drugs, inhibit production of a crucial cell wall component. However, these compounds do not effectively inhibit the growth of the opportunistic fungal pathogen Cryptococcus neoformans, despite potent inhibition of the target enzyme in vitro. Therefore, we performed a forward genetic screen to identify cellular processes that mediate the relative tolerance of this organism to the echinocandin drug caspofungin. Through these studies, we identified 14 genetic mutants that enhance caspofungin antifungal activity. Rather than directly affecting caspofungin antifungal activity, these mutations seem to prevent the activation of various stress-induced compensatory cellular processes. For example, the pfa4Δ mutant has defects in the palmitoylation and localization of many of its target proteins, including the Ras1 GTPase and the Chs3 chitin synthase, which are both required for caspofungin tolerance. Similarly, we have confirmed the link between caspofungin treatment and calcineurin signaling in this organism, but we suggest a deeper mechanism in which caspofungin tolerance is mediated by multiple pathways downstream of calcineurin function. In summary, we describe here several pathways in C. neoformans that contribute to the complex caspofungin tolerance phenotype in this organism.
format Online
Article
Text
id pubmed-6727808
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher Genetics Society of America
record_format MEDLINE/PubMed
spelling pubmed-67278082019-09-18 Roles for Stress Response and Cell Wall Biosynthesis Pathways in Caspofungin Tolerance in Cryptococcus neoformans Pianalto, Kaila M. Billmyre, R. Blake Telzrow, Calla L. Alspaugh, J. Andrew Genetics Investigations Limited antifungal diversity and availability are growing problems for the treatment of fungal infections in the face of increasing drug resistance. The echinocandins, one of the newest classes of antifungal drugs, inhibit production of a crucial cell wall component. However, these compounds do not effectively inhibit the growth of the opportunistic fungal pathogen Cryptococcus neoformans, despite potent inhibition of the target enzyme in vitro. Therefore, we performed a forward genetic screen to identify cellular processes that mediate the relative tolerance of this organism to the echinocandin drug caspofungin. Through these studies, we identified 14 genetic mutants that enhance caspofungin antifungal activity. Rather than directly affecting caspofungin antifungal activity, these mutations seem to prevent the activation of various stress-induced compensatory cellular processes. For example, the pfa4Δ mutant has defects in the palmitoylation and localization of many of its target proteins, including the Ras1 GTPase and the Chs3 chitin synthase, which are both required for caspofungin tolerance. Similarly, we have confirmed the link between caspofungin treatment and calcineurin signaling in this organism, but we suggest a deeper mechanism in which caspofungin tolerance is mediated by multiple pathways downstream of calcineurin function. In summary, we describe here several pathways in C. neoformans that contribute to the complex caspofungin tolerance phenotype in this organism. Genetics Society of America 2019-09 2019-07-02 /pmc/articles/PMC6727808/ /pubmed/31266771 http://dx.doi.org/10.1534/genetics.119.302290 Text en Copyright © 2019 Pianalto et al. Available freely online through the author-supported open access option. This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Investigations
Pianalto, Kaila M.
Billmyre, R. Blake
Telzrow, Calla L.
Alspaugh, J. Andrew
Roles for Stress Response and Cell Wall Biosynthesis Pathways in Caspofungin Tolerance in Cryptococcus neoformans
title Roles for Stress Response and Cell Wall Biosynthesis Pathways in Caspofungin Tolerance in Cryptococcus neoformans
title_full Roles for Stress Response and Cell Wall Biosynthesis Pathways in Caspofungin Tolerance in Cryptococcus neoformans
title_fullStr Roles for Stress Response and Cell Wall Biosynthesis Pathways in Caspofungin Tolerance in Cryptococcus neoformans
title_full_unstemmed Roles for Stress Response and Cell Wall Biosynthesis Pathways in Caspofungin Tolerance in Cryptococcus neoformans
title_short Roles for Stress Response and Cell Wall Biosynthesis Pathways in Caspofungin Tolerance in Cryptococcus neoformans
title_sort roles for stress response and cell wall biosynthesis pathways in caspofungin tolerance in cryptococcus neoformans
topic Investigations
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6727808/
https://www.ncbi.nlm.nih.gov/pubmed/31266771
http://dx.doi.org/10.1534/genetics.119.302290
work_keys_str_mv AT pianaltokailam rolesforstressresponseandcellwallbiosynthesispathwaysincaspofungintoleranceincryptococcusneoformans
AT billmyrerblake rolesforstressresponseandcellwallbiosynthesispathwaysincaspofungintoleranceincryptococcusneoformans
AT telzrowcallal rolesforstressresponseandcellwallbiosynthesispathwaysincaspofungintoleranceincryptococcusneoformans
AT alspaughjandrew rolesforstressresponseandcellwallbiosynthesispathwaysincaspofungintoleranceincryptococcusneoformans