Literature DB >> 33508556

Adventitial remodeling protects against aortic rupture following late smooth muscle-specific disruption of TGFβ signaling.

Y Kawamura1, S-I Murtada2, F Gao3, X Liu4, G Tellides5, J D Humphrey6.   

Abstract

Altered signaling through transforming growth factor-beta (TGFβ) increases the risk of aortic dissection in patients, which has been confirmed in mouse models. It is well known that altered TGFβ signaling affects matrix turnover, but there has not been a careful examination of associated changes in structure-function relations. In this paper, we present new findings on the rupture potential of the aortic wall following late postnatal smooth muscle cell (SMC)-specific disruption of type I and II TGFβ receptors in a mouse model with demonstrated dissection susceptibility. Using a combination of custom computer-controlled biaxial tests and quantitative histology and immunohistochemistry, we found that loss of TGFβ signaling in SMCs compromises medial properties but induces compensatory changes in the adventitia that preserve wall strength above that which is needed to resist in vivo values of wall stress. These findings emphasize the different structural defects that lead to aortic dissection and rupture - compromised medial integrity and insufficient adventitial strength, respectively. Relative differences in these two defects, in an individual subject at a particular time, likely reflects the considerable phenotypic diversity that is common in clinical presentations of thoracic aortic dissection and rupture. There is, therefore, a need to move beyond examinations of bulk biological assays and wall properties to cell- and layer-specific studies that delineate pathologic and compensatory changes in wall biology and composition, and thus the structural integrity of the aortic wall that can dictate differences between life and death.
Copyright © 2021 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Aorta; Collagen; Dissection; Rupture; Smooth muscle; TGFβ

Mesh:

Substances:

Year:  2021        PMID: 33508556      PMCID: PMC7959590          DOI: 10.1016/j.jmbbm.2020.104264

Source DB:  PubMed          Journal:  J Mech Behav Biomed Mater        ISSN: 1878-0180


  48 in total

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Review 3.  Central artery stiffness and thoracic aortopathy.

Authors:  J D Humphrey; G Tellides
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Review 4.  Structure of the Elastin-Contractile Units in the Thoracic Aorta and How Genes That Cause Thoracic Aortic Aneurysms and Dissections Disrupt This Structure.

Authors:  Ashkan Karimi; Dianna M Milewicz
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6.  Type III collagen is crucial for collagen I fibrillogenesis and for normal cardiovascular development.

Authors:  X Liu; H Wu; M Byrne; S Krane; R Jaenisch
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Authors:  Jan H N Lindeman; Brian A Ashcroft; Jan-Willem M Beenakker; Maarten van Es; Nico B R Koekkoek; Frans A Prins; Jarl F Tielemans; Hazem Abdul-Hussien; Ruud A Bank; Tjerk H Oosterkamp
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10.  Absence of LTBP-3 attenuates the aneurysmal phenotype but not spinal effects on the aorta in Marfan syndrome.

Authors:  A Korneva; L Zilberberg; D B Rifkin; J D Humphrey; C Bellini
Journal:  Biomech Model Mechanobiol       Date:  2018-10-10
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2.  Roles of mTOR in thoracic aortopathy understood by complex intracellular signaling interactions.

Authors:  Ana C Estrada; Linda Irons; Bruno V Rego; Guangxin Li; George Tellides; Jay D Humphrey
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