Literature DB >> 31678158

Impaired vascular smooth muscle cell force-generating capacity and phenotypic deregulation in Marfan Syndrome mice.

Patrícia Nolasco1, Carolina Gonçalves Fernandes1, João Carlos Ribeiro-Silva2, Percillia V S Oliveira1, Mariana Sacrini3, Isis Vasconcelos de Brito3, Tiphany Coralie De Bessa1, Lygia V Pereira4, Leonardo Y Tanaka1, Adriano Alencar3, Francisco Rafael Martins Laurindo5.   

Abstract

Mechanisms whereby fibrillin-1 mutations determine thoracic aorta aneurysms/dissections (TAAD) in Marfan Syndrome (MFS) are unclear. Most aortic aneurysms evolve from mechanosignaling deregulation, converging to impaired vascular smooth muscle cell (VSMC) force-generating capacity accompanied by synthetic phenotype switch. However, little is known on VSMC mechanoresponses in MFS pathophysiology. Here, we investigated traction force-generating capacity in aortic VSMC cultured from 3-month old mg∆lpn MFS mice, together with morpho-functional and proteomic data. Cultured MFS-VSMC depicted marked phenotype changes vs. wild-type (WT) VSMC, with overexpressed cell proliferation markers but either lower (calponin-1) or higher (SM alpha-actin and SM22) differentiation marker expression. In parallel, the increased cell area and its complex non-fusiform shape suggested possible transition towards a mesenchymal-like phenotype, confirmed through several markers (e.g. N-cadherin, Slug). MFS-VSMC proteomic profile diverged from that of WT-VSMC particularly regarding lower expression of actin cytoskeleton-regulatory proteins. Accordingly, MFS-VSMC displayed lower traction force-generating capacity and impaired contractile moment at physiological substrate stiffness, and markedly attenuated traction force responses to enhanced substrate rigidity. Such impaired mechanoresponses correlated with decreased number, altered morphology and delocalization of focal adhesions, as well as disorganized actin stress fiber network vs. WT-VSMC. In VSMC cultured from 6-month-old mice, phenotype changes were attenuated and both WT-VSMC and MFS-VSMC generated less traction force, presumably involving VSMC aging, but without evident senescence. In summary, MFS-VSMC display impaired force-generating capacity accompanying a mesenchymal-like phenotype switch connected to impaired cytoskeleton/focal adhesion organization. Thus, MFS-associated TAAD involves mechanoresponse impairment common to other TAAD types, but through distinct mechanisms.
Copyright © 2019 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Aortic aneurysm; Biomechanical responses; Endoplasmic reticulum stress; Marfan Syndrome; Traction force microscopy; Vascular smooth muscle cell

Mesh:

Substances:

Year:  2019        PMID: 31678158     DOI: 10.1016/j.bbadis.2019.165587

Source DB:  PubMed          Journal:  Biochim Biophys Acta Mol Basis Dis        ISSN: 0925-4439            Impact factor:   5.187


  6 in total

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Review 2.  The RNA-binding fragile-X mental retardation protein and its role beyond the brain.

Authors:  Cassandra Malecki; Brett D Hambly; Richmond W Jeremy; Elizabeth N Robertson
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3.  Extracellular Tuning of Mitochondrial Respiration Leads to Aortic Aneurysm.

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4.  Numerical knockouts-In silico assessment of factors predisposing to thoracic aortic aneurysms.

Authors:  M Latorre; J D Humphrey
Journal:  PLoS Comput Biol       Date:  2020-10-20       Impact factor: 4.475

5.  Treatment With Methotrexate Associated With Lipid Core Nanoparticles Prevents Aortic Dilation in a Murine Model of Marfan Syndrome.

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Journal:  Front Cardiovasc Med       Date:  2022-06-10

Review 6.  The role of vascular smooth muscle cells in the development of aortic aneurysms and dissections.

Authors:  Karlijn B Rombouts; Tara A R van Merrienboer; Johannes C F Ket; Natalija Bogunovic; Jolanda van der Velden; Kak Khee Yeung
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  6 in total

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