Spatial patterning of liver progenitor 1 cell differentiation mediated by 2 cellular contractility and Notch 3 signaling 4 (original) (raw)

Spatial patterning of liver progenitor cell differentiation mediated by cellular contractility and Notch signaling

Lauren Sargeant

eLife, 2018

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Delineating cooperative effects of Notch and biomechanical signals on patterned liver differentiation

Ayusha Acharya

Communications Biology

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Microtissue geometry and cell-generated forces drive patterning of liver progenitor cell differentiation in 3D

erfan mohagheghian

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Viscoelastic Notch Signaling Hydrogel Induces Liver Bile Duct Organoid Growth and Morphogenesis

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Transcriptional profiling implicates TGFbeta/BMP and Notch signaling pathways in ductular differentiation of fetal murine hepatoblasts

Raquel Norel

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Role of Mechanical Cues in Cell Differentiation and Proliferation: A 3D Numerical Model

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Yohalie Kalukula

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Notch signaling regulates tubular morphogenesis during repair from biliary damage in mice

Romina Fiorotto, Barbara Torsello, Roberto Scirpo, Carlo Spirli

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Hepatocyte apical bulkheads provide a mechanical means to oppose bile pressure

Yannis Kalaidzidis

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Donald Ingber

Nature Methods, 2013

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Differential proliferation rates generate patterns of mechanical tension that orient tissue growth

Yanlan Mao

The EMBO Journal, 2013

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Transcriptional profiling implicates TGFβ/BMP and Notch signaling pathways in ductular differentiation of fetal murine hepatoblasts

Raquel Norel

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Mechanochemical Signaling Directs Cell-Shape Change

Douglas Robinson

Biophysical Journal, 2017

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Ernesto Bockamp

Proceedings of the National Academy of Sciences, 2010

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Qike Kyle Chen

Journal of Cellular Biochemistry, 2010

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Control of cell fate decisions of embryonic stem cells by mechanical forces

Farhan Chowdhury

2011

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Analysis of Regulatory Network Involved in Mechanical Induction of Embryonic Stem Cell Differentiation

M. Jaramillo, Prashant Kumta

PLoS ONE, 2012

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Modulating the Substrate Stiffness to Manipulate Differentiation of Resident Liver Stem Cells and to Improve the Differentiation State of Hepatocytes

Marco Tripodi

Stem Cells International, 2016

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Influence of cell mechanics in embryonic bile duct lumen formation: insight from quantitative modeling

Dirk Drasdo

HAL (Le Centre pour la Communication Scientifique Directe), 2021

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Mechanisms of Regulating Cell Topology in Proliferating Epithelia: Impact of Division Plane, Mechanical Forces, and Cell Memory

Yingzi Li

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Mechanics Regulate Human Embryonic Stem Cell Self-Organization to Specify Mesoderm

Valerie M. Weaver

SSRN Electronic Journal

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Hepatic Tumor Cell Morphology Plasticity under Physical Constraints in 3D Cultures Driven by YAP–mTOR Axis

Sarka Kubinova

Pharmaceuticals, 2020

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Cell Lineages in Hepatic Development and Molecular Mechanisms of Cell-Cell Interactions Underlying Hepatoblast Differentiation into Mature Hepatocytes and Biliary Epithelial Cells

Global Science Books

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Spatially patterned matrix elasticity directs stem cell fate

Kristi Anseth

Proceedings of the National Academy of Sciences of the United States of America, 2016

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Modeling Liver Organogenesis by Recreating Three-Dimensional Collective Cell Migration: A Role for TGFβ Pathway

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Frontiers in Bioengineering and Biotechnology, 2021

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Regulation of hepatic stem/progenitor phenotype by microenvironment stiffness in hydrogel models of the human liver stem cell niche

Eliane Wauthier

Biomaterials, 2011

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Quantitative modeling identifies critical cell mechanics driving bile duct lumen formation

Dirk Drasdo

PLOS Computational Biology, 2022

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Emergence of homeostatic epithelial packing and stress dissipation through divisions oriented along the long cell axis

Maxine Lam

Proceedings of the National Academy of Sciences of the United States of America, 2015

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Ductular reaction-on-a-chip: Microfluidic co-cultures to study stem cell fate selection during liver injury

Gulnaz Stybayeva

Scientific Reports, 2016

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Martina Ardito

Journal of the Mechanical Behavior of Biomedical Materials, 2019

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A predictive computational model shows that biomechanical cell cycle progression control can explain liver regeneration after partial hepatectomy

Dirk Drasdo

2021

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Digital twin demonstrates significance of biomechanical growth control in liver regeneration after partial hepatectomy

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Regulation of tensile stress in response to external forces coordinates epithelial cell shape transitions with organ growth and elongation

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Biomechanical regulation of cell orientation and fate

jose lopez

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Mechanical forces mediate localized topological change in epithelia

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