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Yaghoubi, S.

Publications and source records attributed to Yaghoubi, S..

2 recordsLinked to original sources

TCF4 and CtBP1 Repress LEF1 to Maintain a TCF4-centric Transcriptional Program in Colon Cancer.

Abstract The canonical WNT signaling pathway guides cell growth throughout the human lifespan. In adults, WNT plays an essential role in tissue homeostasis by maintaining tissue stem cells. In the intestine, the WNT transcription factor, TCF4, is necessary for stem cell maintenance. Aberrant activation of WNT signaling is generally accepted as an initiating event in colon cancer, leading to constitutive TCF4 activity. To investigate the role of this key transcription factor in global gene regulation, we abrogated TCF4 expression in colon cancer cells. Loss of TCF4 function resulted in the over-expression of the WNT transcription factor, LEF1. LEF1 was transcriptionally competent and over-compensated for TCF4 (TCF7L2) silencing in a WNT reporter assay. TCF4 enlisted the transcriptional repressor CtBP1, and bound the LEF1 promoter, indicative of direct repression. TCF4 and LEF1 drove different transcriptional programs, with TCF4 favoring MYC and cell cycle progression, while LEF1 favored immune-related gene signatures. TCF4 was the primary regulator of MYC expression, yet also the mediator of LEF1 repression, suggestive of competition centered on TCF4 transcriptional output despite the {beta}-catenin saturated colon cancer nucleus. We conclude that TCF4 has dual activator-repressor activity in colon cancer.

cell biology↗

Structural Determinants of Catalytic Directionality in an AMP-Forming Acetyl-CoA Synthetase from Syntrophus aciditrophicus

Acetyl-coenzyme A (CoA) is a central metabolic intermediate that links carbon and energy metabolism across all domains of life. The interconversion of acetate and acetyl-CoA is carried out by three enzyme pathways: acetate kinase/phosphotransacetylase, ADP-forming acetyl-CoA synthetase, and AMP-forming acetyl-CoA synthetase (Acs). Acs enzymes serve critical physiological roles across diverse organisms by catalyzing a reversible two-step reaction forming acetyl-CoA and AMP from acetate and ATP. Isolated from the wastewater reclamation facility in Norman, Oklahoma, Syntrophus aciditrophicus strain SB (Sa) thermodynamically favors synthesizing acetate and ATP from acetyl-CoA and AMP using an AMP-forming acetyl-CoA synthetase (SaAcs1). The origin of the preference for AMP formation and the structural determinants of both the thioester-forming step and catalytic bias remain poorly understood. Here, we report a 2.2 [A] crystal structure of full-length SaAcs1 in the adenylation conformation with acetyl-AMP bound in the active site. Structural comparison to the extensively characterized Acs enzymes from Salmonella enterica (SeAcs) and Cryptococcus neoformans (CnAcs) revealed a displaced CoA-binding loop in SaAcs1. Enzymatic assays support that SaAcs1 preferentially catalyzes the ATP-forming reaction. Site-directed mutagenesis demonstrated that reversion of two residues, G196 and T197, at the beginning of the CoA-binding loop to the consensus sequence repositions the loop and shifts catalytic preference toward the AMP-forming direction. Together, these results establish the CoA-binding loop and G196 and T197 as the primary structural determinants of catalytic bias in SaAcs1.

biochemistry↗