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Cowdin, M. A.

Publications and source records attributed to Cowdin, M. A..

3 recordsLinked to original sources

Transient architecture of the embryonic pancreas determines endocrine mass

During organogenesis, epithelial tissues undergo extensive three-dimensional (3D) remodeling while simultaneously generating specialized cell types. Whether these transient architectural states actively instruct lineage allocation remains unclear. Here we identify a morphogenetic stage in which resolution of epithelial stratification is required for lineage allocation and establishment of endocrine cell mass. We show that loss of the Hippo pathway regulator Merlin disrupts lumen morphogenesis and prevents formation of the transient 3D epithelial architecture that characterizes normal pancreas development. Failure to establish this architectural state alters lineage allocation, impairing acinar differentiation, markedly reducing adult endocrine cell mass, and disrupting glucose homeostasis. Mosaic analyses reveal that these lineage defects arise non-cell autonomously, demonstrating that epithelial architecture itself instructs cell fate decisions. Mechanistically, Merlin coordinates PI3K-regulated polarized membrane trafficking required for apical membrane biogenesis and lumen formation. Together, these findings identify Merlin-dependent membrane trafficking as a mechanism coupling epithelial morphogenesis to lineage allocation and demonstrate that transient developmental architectures can determine the cellular composition of mature organs.

developmental biology↗

Pulsatile flow dynamics determine pulmonary arterial architecture

Single ventricle congenital heart disease (SV-CHD) is a uniformly lethal condition requiring the Glenn surgery, which as a side effect eliminates arterial pulsatility and contributes to pulmonary vascular complications. In Glenn patients, we quantified pulsatility loss in each dimension of force (flow, pressure, and stretch) using cardiac catheterization and MRI. To model and investigate the individual impact of each dimension of pulsatility loss on the pulmonary vasculature, we applied isolated pulsatile and non-pulsatile mechanical stimuli to pulmonary arterial endothelial cells (ECs) in vitro. We found that each dimension of force triggered distinct transcriptional responses, revealing force-specific regulation of structural and signaling pathways. Pulsatile stretch uniquely stimulated EC secretion of PDGFB, a key driver of vascular smooth muscle cell (vSMC) recruitment. In a rat Glenn model, loss of pulsatility led to vascular wall thinning, confirming in vivo relevance. Our findings uncover a mechanistic link between endothelial stretch sensing and PDGFB-mediated EC-vSMC crosstalk, essential for maintaining pulmonary artery architecture. Clinically, these insights suggest that restoring or mimicking pulsatile forces may help preserve vascular integrity and prevent remodeling in SV-CHD patients.

cell biology↗

Lats1/2 are essential for developmental vascular remodeling and biomechanical adaptation to shear stress

Blood vessels in mammalian embryos develop from initial aggregates of endothelial cell (EC) progenitors, which coordinate the opening and stabilization of central vascular lumens, all while under progressively increasing flow and pressure from blood circulation. Mechanical cues exerted by shear stress from the blood flow remodel an initial vascular plexus into a ramifying array of large and small vessels. As plasma starts to fill vascular lumens, these forces trigger changes in EC gene expression and dynamic alterations in cell shape and cell adhesion, as cuboidal angioblasts elongate and flatten into ECs. Little is known about how embryonic ECs sense and transduce hemodynamic signals as vessels form in vivo. Here, we report a critical requirement for the Lats1 and Lats2 Hippo pathway kinases during this process. We show that when Lats1/2 are genetically deleted in ECs, embryos develop severe defects in blood vessel formation, which lead to embryonic lethality by E11.5. We find that initial vessel patterning and circulation initiate properly, however remodeling of the initial vascular plexus fails due to lumen collapse and altered blood flow. When Lats1/2 are knocked down using siRNA approaches in cultured ECs, cells fail to elongate and polarize, similar to ECs in the mutant embryos. In addition, VE-cadherin (VEcad) based junctions fail to mature under shear stress. These data show that Lats1/2 deficient cells no longer respond to laminar shear stress, both in vivo and in vitro. This work identifies the Hippo pathway kinases Lats1 and Lats2 as critical transducers of biomechanical cues during the early steps of blood vessel remodeling. This study will provide new targets for treatment of vascular diseases and new directions for efforts to generate vascularized tissues for replacement therapies. HighlightsO_LILats1 and Lats2 mRNA and protein are expressed in murine embryonic endothelial cells (ECs). C_LIO_LIDeletion of Lats1/2 in embryonic endothelium results in severe vascular defects and embryonic lethality. C_LIO_LILoss of Lats1/2 leads to failure of both vascular remodeling and EC elongation upon exposure to flow, in vivo and in vitro. C_LIO_LILats1/2 are required for cell-cell VE-cadherin adhesion maturation under flow. C_LIO_LILoss of Lats1/2 results in cytoskeletal disorganization in response to shear stress. C_LI

developmental biology↗