Structural Remodeling of the Extracellular Matrix in Arteriogenesis: A Review

Lower extremity arterial occlusive disease (AOD) results in significant morbidity and mortality for the population, with up to 10% of patients ultimately requiring amputation. An alternative method for non-surgical revascularization which is yet to be fully understood is the optimization of the body...

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Published inFrontiers in cardiovascular medicine Vol. 8; p. 761007
Main Authors Kulkarni, Rohan, Andraska, Elizabeth, McEnaney, Ryan
Format Journal Article
LanguageEnglish
Published Switzerland Frontiers Media S.A 05.11.2021
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Abstract Lower extremity arterial occlusive disease (AOD) results in significant morbidity and mortality for the population, with up to 10% of patients ultimately requiring amputation. An alternative method for non-surgical revascularization which is yet to be fully understood is the optimization of the body's own natural collateral arterial network in a process known as arteriogenesis. Under conditions of conductance vessel stenosis or occlusion resulting in increased flow, shear forces, and pressure gradients within collaterals, positive remodeling occurs to increase the diameter and capacity of these vessels. The creation of a distal arteriovenous fistula (AVF) will drive increased arteriogenesis as compared to collateral formation with the occlusion of a conductance vessel alone by further increasing flow through these arterioles, demonstrating the capacity for arteriogenesis to form larger, more efficient collaterals beyond what is spontaneously achieved after arterial occlusion. Arteries rely on an extracellular matrix (ECM) composed of elastic fibers and collagens that provide stability under hemodynamic stress, and ECM remodeling is necessary to allow for increased diameter and flow conductance in mature arterial structures. When positive remodeling occurs, digestion of lamella and the internal elastic lamina (IEL) by matrix metalloproteinases (MMPs) and other elastases results in the rearrangement and thinning of elastic structures and may be replaced with disordered elastin synthesis without recovery of elastic function. This results in transmission of wall strain to collagen and potential for aneurysmal degeneration along collateral networks, as is seen in the pancreaticoduodenal artery (PDA) after celiac occlusion and inferior mesenteric artery (IMA) with concurrent celiac and superior mesenteric artery (SMA) occlusions. Further understanding into the development of collaterals is required to both better understand aneurysmal degeneration and optimize collateral formation in AOD.
AbstractList Lower extremity arterial occlusive disease (AOD) results in significant morbidity and mortality for the population, with up to 10% of patients ultimately requiring amputation. An alternative method for non-surgical revascularization which is yet to be fully understood is the optimization of the body's own natural collateral arterial network in a process known as arteriogenesis. Under conditions of conductance vessel stenosis or occlusion resulting in increased flow, shear forces, and pressure gradients within collaterals, positive remodeling occurs to increase the diameter and capacity of these vessels. The creation of a distal arteriovenous fistula (AVF) will drive increased arteriogenesis as compared to collateral formation with the occlusion of a conductance vessel alone by further increasing flow through these arterioles, demonstrating the capacity for arteriogenesis to form larger, more efficient collaterals beyond what is spontaneously achieved after arterial occlusion. Arteries rely on an extracellular matrix (ECM) composed of elastic fibers and collagens that provide stability under hemodynamic stress, and ECM remodeling is necessary to allow for increased diameter and flow conductance in mature arterial structures. When positive remodeling occurs, digestion of lamella and the internal elastic lamina (IEL) by matrix metalloproteinases (MMPs) and other elastases results in the rearrangement and thinning of elastic structures and may be replaced with disordered elastin synthesis without recovery of elastic function. This results in transmission of wall strain to collagen and potential for aneurysmal degeneration along collateral networks, as is seen in the pancreaticoduodenal artery (PDA) after celiac occlusion and inferior mesenteric artery (IMA) with concurrent celiac and superior mesenteric artery (SMA) occlusions. Further understanding into the development of collaterals is required to both better understand aneurysmal degeneration and optimize collateral formation in AOD.
Author Andraska, Elizabeth
McEnaney, Ryan
Kulkarni, Rohan
AuthorAffiliation 1 Division of Vascular Surgery, University of Pittsburgh Medical Center , Pittsburgh, PA , United States
2 Veterans Affairs Hospitals Pittsburgh Healthcare System , Pittsburgh, PA , United States
AuthorAffiliation_xml – name: 2 Veterans Affairs Hospitals Pittsburgh Healthcare System , Pittsburgh, PA , United States
– name: 1 Division of Vascular Surgery, University of Pittsburgh Medical Center , Pittsburgh, PA , United States
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  fullname: Kulkarni, Rohan
  organization: Division of Vascular Surgery, University of Pittsburgh Medical Center, Pittsburgh, PA, United States
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  givenname: Elizabeth
  surname: Andraska
  fullname: Andraska, Elizabeth
  organization: Division of Vascular Surgery, University of Pittsburgh Medical Center, Pittsburgh, PA, United States
– sequence: 3
  givenname: Ryan
  surname: McEnaney
  fullname: McEnaney, Ryan
  organization: Veterans Affairs Hospitals Pittsburgh Healthcare System, Pittsburgh, PA, United States
BackLink https://www.ncbi.nlm.nih.gov/pubmed/34805316$$D View this record in MEDLINE/PubMed
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Keywords collateral arteries
elastic fiber
outward remodeling
arterial occlusive disease
extracellular matrix
arteriogenesis
Language English
License Copyright © 2021 Kulkarni, Andraska and McEnaney.
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Edited by: Junxi Wu, University of Strathclyde, United Kingdom
Reviewed by: Mingyi Wang, National Institutes of Health (NIH), United States; Joshua Meisner, University of Michigan, United States
This article was submitted to Atherosclerosis and Vascular Medicine, a section of the journal Frontiers in Cardiovascular Medicine
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Snippet Lower extremity arterial occlusive disease (AOD) results in significant morbidity and mortality for the population, with up to 10% of patients ultimately...
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StartPage 761007
SubjectTerms arterial occlusive disease
arteriogenesis
Cardiovascular Medicine
collateral arteries
elastic fiber
extracellular matrix
outward remodeling
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Title Structural Remodeling of the Extracellular Matrix in Arteriogenesis: A Review
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https://pubmed.ncbi.nlm.nih.gov/PMC8602576
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