1100 Cross-talk between the cAMP and calcium dependent signaling pathways regulates VEGF-A-stimulated normal rat cholangiocyte proliferation

Hepatology ◽  
2003 ◽  
Vol 38 ◽  
pp. 686-686
Author(s):  
S GLASER ◽  
H FRANCIS ◽  
J PHINIZY ◽  
S TAFFETANI ◽  
J VENTER ◽  
...  
2005 ◽  
Vol 11 (3) ◽  
pp. 200-208 ◽  
Author(s):  
Kersti K. Linask ◽  
Shyam Manisastry ◽  
Mingda Han

The anterior–posterior and dorsal–ventral progression of heart organogenesis is well illustrated by the patterning and activity of two members of different families of cell adhesion molecules: the calcium-dependent cadherins, specifically N-cadherin, and the extracellular matrix glycoproteins, fibronectin. N-cadherin by its binding to the intracellular molecule β-catenin and fibronectin by its binding to integrins at focal adhesion sites, are involved in regulation of gene expression by their association with the cytoskeleton and through signal transduction pathways. The ventral precardiac mesoderm cells epithelialize and become stably committed by the activation of these cell–matrix and intracellular signaling transduction pathways. Cross talk between the adhesion signaling pathways initiates the characteristic phenotypic changes associated with cardiomyocyte differentiation: electrical activity and organization of myofibrils. The development of both organ form and function occurs within a short interval thereafter. Mutations in any of the interacting molecules, or environmental insults affecting either of these signaling pathways, can result in embryonic lethality or fetuses born with severe heart defects. As an example, we have defined that exposure of the embryo temporally to lithium during an early sensitive developmental period affects a canonical Wnt pathway leading to β-catenin stabilization. Lithium exposure results in an anterior–posterior progression of severe cardiac defects.


2010 ◽  
Vol 46 (1) ◽  
pp. 33-42 ◽  
Author(s):  
Eijiro Jimi ◽  
Shizu Hirata ◽  
Masashi Shin ◽  
Masato Yamazaki ◽  
Hidefumi Fukushima

2016 ◽  
Vol 425 ◽  
pp. 103-110 ◽  
Author(s):  
Gabriela Hernández-Puga ◽  
Pamela Navarrete-Ramírez ◽  
Arturo Mendoza ◽  
Aurora Olvera ◽  
Patricia Villalobos ◽  
...  

2020 ◽  
Vol 21 (9) ◽  
pp. 3236 ◽  
Author(s):  
Karel Vališ ◽  
Petr Novák

Extracellular signal-regulated kinase (ERK) is a part of the mitogen-activated protein kinase (MAPK) signaling pathway which allows the transduction of various cellular signals to final effectors and regulation of elementary cellular processes. Deregulation of the MAPK signaling occurs under many pathological conditions including neurodegenerative disorders, metabolic syndromes and cancers. Targeted inhibition of individual kinases of the MAPK signaling pathway using synthetic compounds represents a promising way to effective anti-cancer therapy. Cross-talk of the MAPK signaling pathway with other proteins and signaling pathways have a crucial impact on clinical outcomes of targeted therapies and plays important role during development of drug resistance in cancers. We discuss cross-talk of the MAPK/ERK signaling pathway with other signaling pathways, in particular interplay with the Hippo/MST pathway. We demonstrate the mechanism of cell death induction shared between MAPK/ERK and Hippo/MST signaling pathways and discuss the potential of combination targeting of these pathways in the development of more effective anti-cancer therapies.


2020 ◽  
Vol 117 (20) ◽  
pp. 10832-10838 ◽  
Author(s):  
Longwei Liu ◽  
Hongsheng Yu ◽  
Hui Zhao ◽  
Zhaozhao Wu ◽  
Yi Long ◽  
...  

While the concept of intercellular mechanical communication has been revealed, the mechanistic insights have been poorly evidenced in the context of myofibroblast–fibroblast interaction during fibrosis expansion. Here we report and systematically investigate the mechanical force-mediated myofibroblast–fibroblast cross talk via the fibrous matrix, which we termed paratensile signaling. Paratensile signaling enables instantaneous and long-range mechanotransduction via collagen fibers (less than 1 s over 70 μm) to activate a single fibroblast, which is intracellularly mediated by DDR2 and integrin signaling pathways in a calcium-dependent manner through the mechanosensitive Piezo1 ion channel. By correlating in vitro fibroblast foci growth models with mathematical modeling, we demonstrate that the single-cell-level spatiotemporal feature of paratensile signaling can be applied to elucidate the tissue-level fibrosis expansion and that blocking paratensile signaling can effectively attenuate the fibroblast to myofibroblast transition at the border of fibrotic and normal tissue. Our comprehensive investigation of paratensile signaling in fibrosis expansion broadens the understanding of cellular dynamics during fibrogenesis and inspires antifibrotic intervention strategies targeting paratensile signaling.


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