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May, A.

Publications and source records attributed to May, A..

2 recordsLinked to original sources

The fungal-specific Hda2 and Hda3 proteins regulate morphological switches in the human fungal pathogen Candida albicans.

The human fungal pathogen Candida albicans is responsible for millions of infections annually. Due to the few available anti-fungal drugs and the increasing incidence of drug resistance, the number of C. albicans infections is dramatically increasing. Morphological switches, such as the white-opaque switch and the yeast-hyphae switch, are key for the development of C. albicans pathogenic traits. Lysine deacetylases are emerging as important regulators of morphological switches. Yet, targeting lysine deacetylases for drug development is problematic due to the high homology between the fungal and human proteins that could result in toxicity. Here we provide evidence that the fungal specific proteins Hda2 and Hda3 interact with the lysine deacetylase Hda1. By combining phenotypic analyses with genome-wide transcriptome analyses, we demonstrate that Hda2 and Hda3 control C. albicans morphological switches. Under nutrient-rich conditions, deletion of HDA2 or HDA3 leads to moderate overexpression of the master regulator of white-opaque switching WOR1 and increase switching frequency. Under hyphae inducing conditions, deletion of HDA2 and HDA3 block hyphae development. However, deletion of HDA2 and HDA3 does not affect hyphae-formation and virulence in vivo. We propose that Hda2 and Hda3 are good targets for the development of anti-fungal drugs to be used in combination therapy.

microbiology

Diverse progenitor cells preserve salivary gland ductal architecture after radiation induced damage

The ductal system of the salivary gland has long been postulated to be resistant to radiation-induced damage, a common outcome incurred by head and neck cancer patients receiving radiotherapy. Yet, whether the ducts are capable of regenerating after genotoxic injury, or if damage to ductal cells induces lineage plasticity, as has been reported in other organ systems, remains unknown. Here, we show that two ductal progenitor populations marked by KRT14 and KIT exclusively maintain non-overlapping ductal compartments after radiation exposure but do so through distinct cellular mechanisms. KRT14+ progenitor cells are fast cycling cells that proliferate in response to radiation-induced damage in a sustained manner and divide asymmetrically to produce differentiated cells of the larger granulated ducts. Conversely, KIT+ cells are long lived progenitors for the intercalated ducts that undergo few cell divisions either during homeostasis or after gamma radiation, thus maintaining ductal architecture in the near absence of cell turnover. Together, these data illustrate the regenerative capacity of the salivary ducts and highlight the heterogeneity in the damage responses used by salivary progenitor cells to maintain tissue architecture.\n\nSummary StatementThe salivary gland ductal network is maintained during homeostasis and after genotoxic injury by diverse progenitors that respond differentially to radiation induced damage.

developmental biology