On the role of mechanics in driving mesenchymal-to-epithelial transitions
[Display omitted] •Mechanical cues initiate, propagate, and stabilize polarization in MET.•Spectrum of METs range from all-at-once epithelialization to single cell METs.•Early development, organogenesis, cancer progression share basic MET framework.•Comparative analysis of MET and their relation to...
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| Published in: | Seminars in cell & developmental biology Vol. 67; pp. 113 - 122 |
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| Main Authors: | , , |
| Format: | Journal Article |
| Language: | English |
| Published: |
England
Elsevier Ltd
01.07.2017
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| Subjects: | |
| ISSN: | 1084-9521, 1096-3634 |
| Online Access: | Get full text |
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| Abstract | [Display omitted]
•Mechanical cues initiate, propagate, and stabilize polarization in MET.•Spectrum of METs range from all-at-once epithelialization to single cell METs.•Early development, organogenesis, cancer progression share basic MET framework.•Comparative analysis of MET and their relation to EMTs needs to be explored further.
The mesenchymal-to-epithelial transition (MET) is an intrinsically mechanical process describing a multi-step progression where autonomous mesenchymal cells gradually become tightly linked, polarized epithelial cells. METs are fundamental to a wide range of biological processes, including the evolution of multicellular organisms, generation of primary and secondary epithelia during development and organogenesis, and the progression of diseases including cancer. In these cases, there is an interplay between the establishment of cell polarity and the mechanics of neighboring cells and microenvironment. In this review, we highlight a spectrum of METs found in normal development as well as in pathological lesions, and provide insight into the critical role mechanics play at each step. We define MET as an independent process, distinct from a reverse-EMT, and propose questions to further explore the cellular and physical mechanisms of MET. |
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| AbstractList | The mesenchymal-to-epithelial transition (MET) is an intrinsically mechanical process describing a multi-step progression where autonomous mesenchymal cells gradually become tightly linked, polarized epithelial cells. METs are fundamental to a wide range of biological processes, including the evolution of multicellular organisms, generation of primary and secondary epithelia during development and organogenesis, and the progression of diseases including cancer. In these cases, there is an interplay between the establishment of cell polarity and the mechanics of neighboring cells and microenvironment. In this review, we highlight a spectrum of METs found in normal development as well as in pathological lesions, and provide insight into the critical role mechanics play at each step. We define MET as an independent process, distinct from a reverse-EMT, and propose questions to further explore the cellular and physical mechanisms of MET. [Display omitted] •Mechanical cues initiate, propagate, and stabilize polarization in MET.•Spectrum of METs range from all-at-once epithelialization to single cell METs.•Early development, organogenesis, cancer progression share basic MET framework.•Comparative analysis of MET and their relation to EMTs needs to be explored further. The mesenchymal-to-epithelial transition (MET) is an intrinsically mechanical process describing a multi-step progression where autonomous mesenchymal cells gradually become tightly linked, polarized epithelial cells. METs are fundamental to a wide range of biological processes, including the evolution of multicellular organisms, generation of primary and secondary epithelia during development and organogenesis, and the progression of diseases including cancer. In these cases, there is an interplay between the establishment of cell polarity and the mechanics of neighboring cells and microenvironment. In this review, we highlight a spectrum of METs found in normal development as well as in pathological lesions, and provide insight into the critical role mechanics play at each step. We define MET as an independent process, distinct from a reverse-EMT, and propose questions to further explore the cellular and physical mechanisms of MET. |
| Author | Kim, Hye Young Jackson, Timothy R. Davidson, Lance A. |
| AuthorAffiliation | 2 Department of Developmental Biology, University of Pittsburgh School of Medicine, University of Pittsburgh, Pittsburgh PA 15213 1 Department of Bioengineering, Swanson School of Engineering, University of Pittsburgh, Pittsburgh PA 15213 3 Department of Computational and Systems Biology, University of Pittsburgh School of Medicine, University of Pittsburgh, Pittsburgh PA 15213 |
| AuthorAffiliation_xml | – name: 2 Department of Developmental Biology, University of Pittsburgh School of Medicine, University of Pittsburgh, Pittsburgh PA 15213 – name: 1 Department of Bioengineering, Swanson School of Engineering, University of Pittsburgh, Pittsburgh PA 15213 – name: 3 Department of Computational and Systems Biology, University of Pittsburgh School of Medicine, University of Pittsburgh, Pittsburgh PA 15213 |
| Author_xml | – sequence: 1 givenname: Hye Young surname: Kim fullname: Kim, Hye Young organization: Department of Bioengineering, Swanson School of Engineering, University of Pittsburgh, Pittsburgh, PA 15213, USA – sequence: 2 givenname: Timothy R. surname: Jackson fullname: Jackson, Timothy R. organization: Department of Bioengineering, Swanson School of Engineering, University of Pittsburgh, Pittsburgh, PA 15213, USA – sequence: 3 givenname: Lance A. orcidid: 0000-0002-2956-0437 surname: Davidson fullname: Davidson, Lance A. email: lad43@pitt.edu organization: Department of Bioengineering, Swanson School of Engineering, University of Pittsburgh, Pittsburgh, PA 15213, USA |
| BackLink | https://www.ncbi.nlm.nih.gov/pubmed/27208723$$D View this record in MEDLINE/PubMed |
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| Keywords | Cell and tissue polarity Polarization Epithelialization Re-epithelialization Reverse-EMT Epithelial-to-mesenchymal transition Phenotypic plasticity MET EMT Cell mechanics |
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•Mechanical cues initiate, propagate, and stabilize polarization in MET.•Spectrum of METs range from all-at-once epithelialization to single... The mesenchymal-to-epithelial transition (MET) is an intrinsically mechanical process describing a multi-step progression where autonomous mesenchymal cells... |
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| SubjectTerms | Animals Biomechanical Phenomena Cadherins - genetics Cadherins - metabolism Cell and tissue polarity Cell Division Cell mechanics Cell Polarity Cellular Reprogramming - genetics Drosophila melanogaster - genetics Drosophila melanogaster - growth & development Drosophila melanogaster - metabolism Embryo, Mammalian Embryo, Nonmammalian EMT Epithelial Cells - cytology Epithelial Cells - metabolism Epithelial-Mesenchymal Transition - genetics Epithelial-to-mesenchymal transition Epithelialization Extracellular Matrix - chemistry Extracellular Matrix - metabolism Humans Mechanotransduction, Cellular Mesenchymal Stromal Cells - cytology Mesenchymal Stromal Cells - metabolism MET Morphogenesis - genetics Phenotypic plasticity Polarization Re-epithelialization Reverse-EMT Vimentin - genetics Vimentin - metabolism |
| Title | On the role of mechanics in driving mesenchymal-to-epithelial transitions |
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