Search bioRxiv⌕ Search

Biology subjects

Suk, K. T.

Publications and source records attributed to Suk, K. T..

2 recordsLinked to original sources

Cryptococcus neoformans rewires the conserved Wee1-CDK checkpoint through two divergent kinases required for replication-stress tolerance and virulence

Cell-cycle checkpoints couple cell division to environmental and intracellular stress. Here, we show that the human fungal pathogen Cryptococcus neoformans possesses two divergent Wee1-family kinases, CnSwe1 and CnSwe102, that retain conserved CDK-inhibitory activity but function differently from their counterparts in the canonical Saccharomyces cerevisiae morphogenesis checkpoint. The swe1{Delta} and swe102{Delta} mutants displayed distinct stress-response defects, and genetic analyses suggested a dosage-sensitive genetic interaction between SWE1 and SWE102. Although both proteins promoted Cdc28 tyrosine phosphorylation and elongated-cell morphology when expressed in S. cerevisiae, neither localized to the mother-bud neck in C. neoformans. Altered SWE1 dosage in the absence of SWE102 increased sensitivity to replicative and DNA-damaging stresses and perturbed cell-cycle progression under genotoxic conditions. Importantly, loss of SWE1 nearly abolished virulence in a murine infection model, and SWE102 also contributed to pathogenicity. Together, these findings indicate that the conserved Wee1-CDK module acts in C. neoformans as a dosage-sensitive checkpoint that promotes stress adaptation and fungal virulence.

microbiology↗

An ensemble of Gleditsia sinensis Lam. and gut microbiota against alcoholic liver disease

Gleditsia sinensis Lam. (GSL) is a medicinal herb and a noticeable resource of possessing hepatic protective agents such as alcoholic liver disease (ALD). At present, it has been documented that gut microbiota (GM) is related directly to etiology of ALD. Nevertheless, the bioactive molecules in GSL, favorable GM, targets, and key mechanism(s) against ALD are yet to be revealed. Hence, we integrated the significant four components to clarify the nuanced pathogenesis with help of network pharmacology (NP) concept. We retrieved significant metabolites via gutMGene and constructed GSL or GM-Signaling pathways-Targets-Metabolites (GGSTM) networks. Finally, molecular docking test (MDT) was performed to verify the key findings. The gutMGene suggested that 16 GM and 6 metabolites were related to the two signaling pathways through GGSTM networks. Both MDT and frontier molecular orbitals (FMO) theory revealed the most stable conformers: equol from Lactobacillus paracasei JS1 on IL6, Bauer-7-en-3-one, and Urs-12-en-3-one from GSL on PPARA, PPARD, and PPARG, respectively. In conclusion, this study sheds light on the combinatorial effects of GM, and GSL in treating ALD via systems biology concept.

systems biology↗