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Biology subjects

Low, B. C.

Publications and source records attributed to Low, B. C..

2 recordsLinked to original sources

Bile canaliculi contract autonomously by releasing calcium into hepatocytes via mechanosensitive calcium channel

Bile canaliculi (BC) are the smallest vessels of the biliary tree. They are formed from the apical surfaces of adjoining hepatocytes, resulting in lumenal conduits for bile flow. Bile is propelled along the BC by hepatocyte contractions that arise from cyclic waves of apico-basal Ca2+, but the source and regulation of Ca2+ has been unclear. We report that BC contraction correlates with cyclic transfer of Ca2+ from BC lumen to apico-basal Ca2+ waves in adjacent hepatocytes, and does not correlate with endoplasmic reticulum Ca2+. BC contractility was triggered by ionophore A23187 and unaffected by Thapsigargin. The cycles of Ca2+ transfer could be blocked by the mechanosensitive calcium channel inhibitor GsMTx-4, resulting in cholestatic generation of BC-derived vesicles. The mechanosensitive calcium channel Piezo-1 is preferentially localized at BC membranes, and its hyper-activation by Yoda1 causes increased Ca2+ transfer and increased BC contractility. We propose that canaliculi achieve biomechanical homeostasis through the following feedback system: the pressure of accumulated bile is sensed by mechanosensitive channel, which transmit biliary calcium into adjacent hepatocytes for contraction of the BC lumen and propulsion of the bile.

cell biology

ZO-2 induces cytoplasmic retention of YAP by promoting a LATS1-ZO-2-YAP complex at tight junctions

Contact inhibition of proliferation (CIP) is a key mechanism that transduces the cell density status of tissue and organs into a unique transcriptional program by translocating YAP between the nucleus and the cytoplasm. However, the nature of the cell density-dependent cues that regulate the YAP distribution remains unclear. Here, we present evidence that tight junctions serve as a platform that controls both distribution and activity of LATS1, a kinase that phosphorylates YAP. This CIP effect is mediated by the scaffold function of junctional protein, ZO-2, by promoting LATS1 interaction with YAP in the cytoplasm, and then targeting the tripartite complex to tight junctions. There, LATS1 is activated by angiomotin and NF2, thereby stimulating YAP phosphorylation and its cytoplasmic retention. Our findings delineate novel mechanisms governing CIP, in which ZO-2 utilizes the status of cell-cell cohesion to control the phosphorylation status and therefore inactivation of YAP by LATS1 in the cytoplasm.

cell biology