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du Plooy, M.

Publications and source records attributed to du Plooy, M..

2 recordsLinked to original sources

Regulation of trehalose biosynthesis and thermotolerance by the Cryptococcus neoformans HECT E3 ubiquitin ligase Rsp5

Microorganisms including fungi adapt to profound changes in their local environment during human infections. After exposure to high temperature and other stress conditions, the opportunistic fungal pathogen Cryptococcus neoformans enacts changes in metabolism, cell wall structure, and transmembrane transport that allow it to survive and proliferate in a mammalian host. This stress response program is regulated by the HECT E3-ubiquitin ligase Rsp5 which is required for growth at high salinity, pH and temperature. However, the complete set of Rsp5 substrates that direct these molecular changes remains incompletely understood. Here we demonstrate that C. neoformans Rsp5 confers increased tolerance to temperature and salt stress in part through regulation of the trehalose biosynthesis pathway. Two enzymes in the trehalose biosynthesis pathway, Tps1 and Tps2, are differentially ubiquitinated by Rsp5 after exposure to stress conditions. We directly measured trehalose production after exposure to high temperature and found that a C. neoformans strain lacking Rsp5 is unable to induce trehalose production. Quantitative proteomic analysis of the C. neoformans response to high salinity identified Rsp5-dependent and independent adaptations to osmotic stress, and that Rsp5-dependent ubiquitination does not alter the abundance of Tps1 or Tps2. These results demonstrate that regulation of trehalose biosynthesis is one of the cellular mechanisms by which Rsp5-dependent ubiquitination in C. neoformans facilitates survival in response to stressors encountered in the human infection environment. ImportanceCryptococcus neoformans is an opportunistic fungal pathogen that kills over 180,000 people every year with few effective treatment options. As a yeast that normally lives in the environment, C. neoformans has to survive large changes in its physical environment, including elevated body temperature, when it causes human infections. Here we show how C. neoformans uses a protein modification to regulate production of a fungal-specific metabolic pathway important for survival at human body temperature. Unraveling how environmental fungi tolerate and survive temperature and other stressors will help to understand how they cause disease and identify new and better ways to treat these deadly infections.

microbiology↗

A cysteine-rich domain of the Cuf1 transcription factor is required for high copper stress sensing and fungal virulence

The ability to sense, import and detoxify copper (Cu) has been shown to be crucial for microbial pathogens to survive within an infected host. Previous studies conducted with the opportunistic human fungal pathogen Cryptococcus neoformans (Cn) have revealed two extreme Cu environments encountered during infection: a high Cu environment within the lung and a low Cu environment within the brain. However, how Cn senses these different host Cu microenvironments, and the consequences of a blunted Cu stress adaptation for pathogenesis are not well understood. In contrast to ascomycete model fungi, the basidiomycete Cn has a single transcription factor (TF), CnCuf1, to regulate adaptive responses to both high- and low- Cu stress. Sequence comparison with other fungal Cu-responsive TFs identified three conserved cysteine (Cys)-rich motifs located within the CnCuf1 N-terminal domain, which were therefore predicted to play a role in Cu sensing. Mutation of these conserved Cys-rich motifs demonstrated that the 1st Cys-rich motif is functionally relevant for CnCuf1 transcriptional activity during high Cu stress, while it is dispensable for low Cu stress adaptation. An inhalation model of murine infection showed that strains with defective high Cu stress regulation present a distinct and anatomically constrained pattern of yeast distribution within the infected lungs compared to a more widespread infection observed in lungs infected with the wild-type strain. Based on these findings, we hypothesize that Cuf1-driven high Cu responses modulate not absolute fitness but containment of Cn cells at the initial site of infection within the lung. ImportanceCopper is an essential micronutrient required for survival in all kingdoms of life as it is used as a catalytic cofactor for many essential processes in the cell. In turn, this reactivity of copper ions makes elevated levels of free copper toxic for the cell. This dual nature of copper - essential for life but toxic at elevated levels - is used by our innate immune system in a process called nutritional immunity to combat and kill invading pathogens. In this work we explore how the fungal human pathogen Cryptococcus neoformans senses high copper stress, a copper microenvironment encountered within the host lung. We identified a specific cysteine-rich motif within the copper responsive transcription factor Cuf1 to be essential for high copper stress sensing. Mutation of this motif led to an impaired high copper stress adaptation, which did not affect fitness of the yeast but did impact containment and distribution of yeast cells inside the host lung.

microbiology↗