Cryptococcus neoformans Iron-Sulfur Protein Biogenesis Machinery Is a Novel Layer of Protection against Cu Stress
Copper (Cu) ions serve as catalytic cofactors to drive key biochemical processes, and yet Cu levels that exceed cellular homeostatic control capacity are toxic. The underlying mechanisms for Cu toxicity are poorly understood. During pulmonary infection by the fungal pathogen Cryptococcus neoformans,...
Main Authors: | , , , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
American Society for Microbiology
2017-10-01
|
Series: | mBio |
Online Access: | http://mbio.asm.org/cgi/content/full/8/5/e01742-17 |
id |
doaj-895478de303e421599e8c04c605a344a |
---|---|
record_format |
Article |
spelling |
doaj-895478de303e421599e8c04c605a344a2021-07-02T09:26:45ZengAmerican Society for MicrobiologymBio2150-75112017-10-0185e01742-1710.1128/mBio.01742-17Cryptococcus neoformans Iron-Sulfur Protein Biogenesis Machinery Is a Novel Layer of Protection against Cu StressSarela Garcia-SantamarinaMarta A. UzarskaRichard A. FestaRoland LillDennis J. ThieleMichael LorenzCopper (Cu) ions serve as catalytic cofactors to drive key biochemical processes, and yet Cu levels that exceed cellular homeostatic control capacity are toxic. The underlying mechanisms for Cu toxicity are poorly understood. During pulmonary infection by the fungal pathogen Cryptococcus neoformans, host alveolar macrophages compartmentalize Cu to the phagosome, and the ability to detoxify Cu is critical for its survival and virulence. Here, we report that iron-sulfur (Fe-S) clusters are critical targets of Cu toxicity in both Saccharomyces cerevisiae and C. neoformans in a manner that depends on the accessibility of Cu to the Fe-S cofactor. To respond to this Cu-dependent Fe-S stress, C. neoformans induces the transcription of mitochondrial ABC transporter Atm1, which functions in cytosolic-nuclear Fe-S protein biogenesis in response to Cu and in a manner dependent on the Cu metalloregulatory transcription factor Cuf1. As Atm1 functions in exporting an Fe-S precursor from the mitochondrial matrix to the cytosol, C. neoformans cells depleted for Atm1 are sensitive to Cu even while the Cu-detoxifying metallothionein proteins are highly expressed. We provide evidence for a previously unrecognized microbial defense mechanism to deal with Cu toxicity, and we highlight the importance for C. neoformans of having several distinct mechanisms for coping with Cu toxicity which together could contribute to the success of this microbe as an opportunistic human fungal pathogen.http://mbio.asm.org/cgi/content/full/8/5/e01742-17 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Sarela Garcia-Santamarina Marta A. Uzarska Richard A. Festa Roland Lill Dennis J. Thiele Michael Lorenz |
spellingShingle |
Sarela Garcia-Santamarina Marta A. Uzarska Richard A. Festa Roland Lill Dennis J. Thiele Michael Lorenz Cryptococcus neoformans Iron-Sulfur Protein Biogenesis Machinery Is a Novel Layer of Protection against Cu Stress mBio |
author_facet |
Sarela Garcia-Santamarina Marta A. Uzarska Richard A. Festa Roland Lill Dennis J. Thiele Michael Lorenz |
author_sort |
Sarela Garcia-Santamarina |
title |
Cryptococcus neoformans Iron-Sulfur Protein Biogenesis Machinery Is a Novel Layer of Protection against Cu Stress |
title_short |
Cryptococcus neoformans Iron-Sulfur Protein Biogenesis Machinery Is a Novel Layer of Protection against Cu Stress |
title_full |
Cryptococcus neoformans Iron-Sulfur Protein Biogenesis Machinery Is a Novel Layer of Protection against Cu Stress |
title_fullStr |
Cryptococcus neoformans Iron-Sulfur Protein Biogenesis Machinery Is a Novel Layer of Protection against Cu Stress |
title_full_unstemmed |
Cryptococcus neoformans Iron-Sulfur Protein Biogenesis Machinery Is a Novel Layer of Protection against Cu Stress |
title_sort |
cryptococcus neoformans iron-sulfur protein biogenesis machinery is a novel layer of protection against cu stress |
publisher |
American Society for Microbiology |
series |
mBio |
issn |
2150-7511 |
publishDate |
2017-10-01 |
description |
Copper (Cu) ions serve as catalytic cofactors to drive key biochemical processes, and yet Cu levels that exceed cellular homeostatic control capacity are toxic. The underlying mechanisms for Cu toxicity are poorly understood. During pulmonary infection by the fungal pathogen Cryptococcus neoformans, host alveolar macrophages compartmentalize Cu to the phagosome, and the ability to detoxify Cu is critical for its survival and virulence. Here, we report that iron-sulfur (Fe-S) clusters are critical targets of Cu toxicity in both Saccharomyces cerevisiae and C. neoformans in a manner that depends on the accessibility of Cu to the Fe-S cofactor. To respond to this Cu-dependent Fe-S stress, C. neoformans induces the transcription of mitochondrial ABC transporter Atm1, which functions in cytosolic-nuclear Fe-S protein biogenesis in response to Cu and in a manner dependent on the Cu metalloregulatory transcription factor Cuf1. As Atm1 functions in exporting an Fe-S precursor from the mitochondrial matrix to the cytosol, C. neoformans cells depleted for Atm1 are sensitive to Cu even while the Cu-detoxifying metallothionein proteins are highly expressed. We provide evidence for a previously unrecognized microbial defense mechanism to deal with Cu toxicity, and we highlight the importance for C. neoformans of having several distinct mechanisms for coping with Cu toxicity which together could contribute to the success of this microbe as an opportunistic human fungal pathogen. |
url |
http://mbio.asm.org/cgi/content/full/8/5/e01742-17 |
work_keys_str_mv |
AT sarelagarciasantamarina cryptococcusneoformansironsulfurproteinbiogenesismachineryisanovellayerofprotectionagainstcustress AT martaauzarska cryptococcusneoformansironsulfurproteinbiogenesismachineryisanovellayerofprotectionagainstcustress AT richardafesta cryptococcusneoformansironsulfurproteinbiogenesismachineryisanovellayerofprotectionagainstcustress AT rolandlill cryptococcusneoformansironsulfurproteinbiogenesismachineryisanovellayerofprotectionagainstcustress AT dennisjthiele cryptococcusneoformansironsulfurproteinbiogenesismachineryisanovellayerofprotectionagainstcustress AT michaellorenz cryptococcusneoformansironsulfurproteinbiogenesismachineryisanovellayerofprotectionagainstcustress |
_version_ |
1721333102162214912 |