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Reyes-Chavez, B.

Publications and source records attributed to Reyes-Chavez, B..

2 recordsLinked to original sources

Transcription factor reveals interconnected regulation of carbon source utilization and carbon catabolite repression in an oleaginous yeast

Cells must sense and respond to nutrients to survive. To efficiently grow in mixed carbon environments, microbes repress genes necessary to utilize carbon sources that require substantial resources to catabolize when a simpler carbon source, such as glucose, is present. This process is known as carbon catabolite repression. Canonically, in fungi, nutrient sensing transcriptional networks are composed of carbon source-specific transcription factors that activate carbon source utilization genes and carbon catabolite repression regulators, which broadly repress all nonpreferred carbon source utilization genes when a preferred carbohydrate is present. In contrast to this model, we identified a transcription factor (Cbr1) in the basidomycete yeast Rhodotorula (Rhodosporidium) toruloides that specifically inhibits glucose-mediated repression of glucose-glucose disaccharide utilization, presenting a mechanism of tailored carbon catabolite repression regulation that combats a negative feedback loop formed when glucose is released during disaccharide utilization. Cbr1 is also required for cellobiose, carboxylic acid, and fucose utilization. Using transcriptomic and molecular analyses, we demonstrated that catabolism of these carbon sources is not metabolically linked, but genes necessary for their utilization are coactivated by Cbr1 in response to each of the carbon sources. This coactivation suggests R. toruloides may encounter these carbon sources together, potentially during complex interactions among microbes in nature. Coregulation of nutrient-specific gene activation and carbon catabolite repression by a transcription factor establishes a previously uncharacterized mechanism for building nutrient sensing transcriptional networks in fungi. Characterizing diverse nutrient sensing regulatory mechanisms is critical for understanding resource acquisition during fungal pathogenesis, where carbon catabolite repression is important for virulence and drug tolerance, and metabolically engineering fungi for green biotechnology.

genetics↗

Design and validation of a PCR protocol to specifically detect the clade of Philaster sp. associated with Diadema antillarum scuticociliatosis

Diadema antillarum scuticociliatosis (DaSc), caused by a scuticociliate closely related to Philaster apodigitiformis, has affected Caribbean long-spined urchins since at least January 2022. Quantitative PCR (qPCR) is currently the standard method for detection of this ciliate in tissue and coelomic fluid samples, yet this method requires specialized equipment and is more expensive than standard PCR methods. The DaSc scuticociliate occurs against a backdrop of endo- and ecto-symbiotic ciliates which complicate detection using universal or pan-phylum PCR primer sets. To overcome these limitations, we designed and validated a sensitive and specific PCR primer (scutico-634F) and nested two-step PCR protocol to detect this taxon, which excludes other ciliates associated with D. antillarum and has poor affinity for other related ciliates. This primer and protocol for the DaSc-associated Philaster clade (DaScPc) allow for widely-accessible investigation of this pathogen in new regions and within environmental reservoirs.

microbiology↗