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Ou, S.-M.

Publications and source records attributed to Ou, S.-M..

3 recordsLinked to original sources

GFP Reporter System Reveals Cell-to-Cell Variability in Aquaporin-2 Expression

Vasopressin regulates transcription of the aquaporin-2 gene (Aqp2) in collecting duct principal cells. To investigate regulatory mechanisms in Aqp2 gene transcription, we engineered an Aqp2 reporter cell line using CRISPR/Cas9 to insert a green fluorescent protein (GFP) cassette at the endogenous Aqp2 gene locus in mpkCCD cells. In the absence of dDAVP, a vasopressin analog, these cells exhibited low or undetectable GFP and Aqp2 expression in all cells. dDAVP stimulation (1nM dDAVP for 48hrs) markedly increased both GFP and Aqp2 expression together with reversal upon dDAVP removal. These observations demonstrate that GFP faithfully tracks Aqp2 expression. Interestingly, fewer than 50% of cells express GFP and Aqp2 after dDAVP or forskolin, indicating significant variability even though they were clonally-derived. We flow-sorted the GFP- cells (Aqp2-) and GFP+ cells (Aqp2+), regrew them, and restimulated them separately with dDAVP. Cells originating from GFP- cells gave rise to both GFP- cells and GFP+ cells, and GFP+ cells similarly regenerated both GFP- and GFP+ populations in the same proportion. Flow cytometry analysis of the DNA content showed variability in cell cycle phases, with most GFP+ cells in G0/G1, and more GFP cells in G2/S. RNA-seq analysis of the GFP- and GFP+ cells revealed increased abundance of cell-cycle related transcripts in the GFP- cells. We conclude that: 1) heterogeneity in Aqp2 expression is related to cell cycle state; and 2) the newly generated reporter cell line will likely serve as a useful tool to study Aqp2 transcriptional regulation. NEW & NOTEWORTHYTo investigate regulatory mechanisms in Aqp2 gene transcription, we engineered an Aqp2 reporter cell line using CRISPR/Cas9 to insert a green fluorescent protein (GFP) cassette at the endogenous Aqp2 gene locus in mpkCCD cells. We demonstrate that the GFP reporter accurately and dynamically tracks the expression and regulation of endogenous Aqp2. We reveal that Aqp2 heterogeneity in mpkCCD cells is at least partly driven by differences in cell cycle phase.

systems biology↗

Vasopressin-Dependent β-Catenin Phosphorylation at Ser552 and Branching Structure of Mouse Collecting Duct System

BackgroundPhosphoproteomics studies in both cultured and native collecting duct (CD) cells showed that vasopressin strongly increases PKA-dependent phosphorylation of {beta}-catenin at Ser552. Relatively little is known about the role of Ser552 phosphorylation. MethodsTo address the role of {beta}-catenin Ser552 phosphorylation in the mature renal CD, we have inserted a Ser552Ala mutation in mice using CRISPR-Cas9. ResultsThe mutation did not affect the renal abundance of the vasopressin-regulated water channel aquaporin-2 (AQP2) or urinary osmolality. However, the structure of the CD system was altered. Specifically, the cortical branching ratio (the number of nephrons that merge to form one cortical CD) was reduced from 6.18 {+/-} 0.66 in control mice to 3.33 {+/-} 0.82 in Ser552Ala mutant mice. This was associated with a greater number of cortical and medullary CDs with smaller average diameter. The total number of nephrons (glomerular counts) was not different between control and Ser552Ala mutant mice (both [~]13,500 per kidney). RNA-seq in microdissected cortical CDs of the mice revealed a highly significant enrichment of genes involved in regulation of mitosis and the cell cycle, along with decreases in mRNAs coding for two CDK inhibitor proteins, Cdkn1b and Cdkn1c. At the same time, there were no changes in abundances of major transporter mRNAs, indicative of sustained CD differentiation. A subset of cortical CD cells showed an increase in DNA content, consistent with G2/M cell-cycle arrest. ConclusionsThe observed structural changes in the collecting duct system of adult mice point to a role of vasopressin-mediated post-translational modification of {beta}-catenin at Ser552 in collecting duct development, presumably PKA-mediated Ser552 phosphorylation. We speculate that vasopressin may act to slow or halt branching morphogenesis perinatally and may affect the collecting duct elongation process that normally produces the unbranched region of the CD system in the cortex and outer medulla. Key pointsO_LIVasopressin regulates collecting duct (CD) transport by triggering phosphorylation of multiple proteins including {beta}-catenin at Ser552. C_LIO_LIMutating Ser552 to a non-phosphorylable amino acid in mice resulted in altered CD branching without loss of differentiation in adult CDs. C_LIO_LIThe findings point to a role for {beta}-catenin Ser552 phosphorylation in CD branching and sub-segmental CD elongation. C_LI

physiology↗

CREB-family transcription factors and vasopressin-mediated regulation of Aqp2 gene transcription

BackgroundWater homeostasis is regulated by the peptide hormone arginine vasopressin (AVP), which promotes water reabsorption in the renal collecting duct. The regulation of Aqp2 gene transcription is a key mechanism through which AVP modulates water transport as disruption of this mechanism leads to water balance disorders. Therefore, an important goal is to understand the regulatory processes that control Aqp2 gene transcription. While CREB (CREB1) has been proposed as the primary transcription factor responsible for Aqp2 transcription, recent evidence challenges this view, suggesting that other CREB-like transcription factors, including ATF1 and CREM, may play a role. MethodsWe employed the CRISPR/Cas9 gene-editing system to delete Atf1, Creb1, and Crem in mpkCCD cells, an immortalized mouse collecting duct cell line. These cell lines were then exposed to the vasopressin analog, dDAVP, to assess the role of these transcription factors in regulating Aqp2 expression. AQP2 protein levels were measured by immunoblotting and RNA-seq was used to analyze changes in Aqp2 mRNA abundance, as well as other transcriptomic changes. ResultsDeletion of all three transcription factors (ATF1, CREB1, and CREM) led to a significant reduction in the vasopressin-induced upregulation of AQP2 protein, confirming their role in regulating Aqp2 expression. RNA-seq data showed that Aqp2 mRNA levels mirrored changes in protein abundance, supporting the idea that these transcription factors affect Aqp2 transcription. Rescue experiments in triple knockout cells showed that expressing any of the three transcription factors restored the response to vasopressin. ConclusionsOur findings demonstrate that ATF1, CREB1, and CREM have redundant roles in regulating Aqp2 transcription. Based on these results and prior data, we propose that these CREB-family transcription factors may regulate Aqp2 gene transcription indirectly by controlling the expression of additional unidentified transcription factors. Key PointsO_LICREB-family transcription factors (ATF1, CREB1, and CREM) were deleted in mpkCCD cells to assess their roles in Aqp2 gene transcription C_LIO_LICRISPR/Cas9 knockout of all three transcription factors strongly reduced the ability of vasopressin to increase AQP2 mRNA and protein C_LIO_LIRe-expression of any of the three restored the vasopressin response indicating redundant roles of the three transcription factors C_LI

physiology↗