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Sauceda, E.

Publications and source records attributed to Sauceda, E..

2 recordsLinked to original sources

LIN28-mediated gene regulatory loops synchronize developmental transitions throughout organogenesis

Precise control of the intervals between self-renewal, proliferation, and differentiation of stem/progenitor cells are coordinated by developmental regulators, comprised of both microRNAs (miRNAs) and proteins, termed heterochronic genes. These heterochronic factors make up a unique subset of evolutionarily conserved genes that regulate the developmental rate and timing of metazoans from worms to mammals. We and others have shown critical roles for the RNA-binding proteins (RBPs) Lin28 during pluripotency, reprogramming, and organogenesis. There has been much investigation into the negative feedback loop between the Lin28-RBPs and the miRNAs-Let-7 during development and disease. Albeit there are fewer investigations into how positive feedback loops between mammalian Lin28-RBPs and mRNAs order mammalian spatiotemporal transitions of progenitors from specification to organogenesis. Screening for factors that activate luciferase reporters of the human LIN28A and LIN28B promoters, in combination with genetic mouse models, we demonstrate positive feedforward loops between key developmental transcription factors such as B-Catenin, Sox2, Sox9, and Lin28-RBPs. Furthermore, we demonstrate heterochronic regulation of morphogenesis and ultimately differentiation is not only genetically moderated but also molecularly fine-tuned via position-dependent sequences in the 5 and/or 3 untranslated regions.

developmental biology↗

Predictive and Experimental Motif Interaction Analysis Identifies Functions of the WNK-OSR1/SPAK Pathway

The WNK-OSR1/SPAK protein kinase signaling pathway regulates ion homeostasis and cell volume, but its other functions are poorly understood. To uncover undefined signaling functions of the pathway we analyzed the binding specificity of the conserved C-terminal (CCT) domains of OSR1 and SPAK to find all possible interaction motifs in human proteins. These kinases bind the core consensus sequences R-F-x-V/I and R-x-F-x-V/I. Motifs were ranked based on sequence, conservation, cellular localization, and solvent accessibility. Out of nearly 3,700 motifs identified, 90% of previously published motifs were within the top 2% of those predicted. Selected candidates (TSC22D1, CAVIN1, ATG9A, NOS3, ARHGEF5) were tested. Upstream kinases WNKs 1-4 and their close relatives, the pseudokinases NRBP1/2, contain CCT-like domains as well. We identified additional distinct motif variants lacking the conserved arginine previously thought to be required, and found that the NRBP1 CCT-like domain binds TSC22D1 via the same motif as OSR1 and SPAK. Our results further highlight the rich and diverse functionality of CCT and CCT-like domains in connecting WNK signaling to cellular processes.

biochemistry↗