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Flexible shape-memory scaffold for minimally invasive delivery of functional tissues
by
Montgomery, Miles
, Lo Rito, Mauro
, Davenport Huyer, Locke
, Pahnke, Aric
, Akbari, Saeed
, Reis, Lewis A.
, Ahadian, Samad
, Radisic, Milica
, Caldarone, Christopher A.
, Wu, Jun
, Li, Ren-Ke
, Vanderlaan, Rachel D.
, Civitarese, Robert A.
, Momen, Abdul
in
140/131
/ 142/126
/ 631/61/2035
/ 631/61/54/2295
/ 639/166/985
/ Biodegradable materials
/ Biodegradation
/ Biomaterials
/ Condensed Matter Physics
/ DNA repair
/ Epicardium
/ Lattice design
/ Materials Science
/ Myocardial infarction
/ Nanotechnology
/ Optical and Electronic Materials
/ Orifices
/ Polymers
/ Scaffolds
/ Shape memory
/ Tissue engineering
/ Tissues
2017
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Flexible shape-memory scaffold for minimally invasive delivery of functional tissues
by
Montgomery, Miles
, Lo Rito, Mauro
, Davenport Huyer, Locke
, Pahnke, Aric
, Akbari, Saeed
, Reis, Lewis A.
, Ahadian, Samad
, Radisic, Milica
, Caldarone, Christopher A.
, Wu, Jun
, Li, Ren-Ke
, Vanderlaan, Rachel D.
, Civitarese, Robert A.
, Momen, Abdul
in
140/131
/ 142/126
/ 631/61/2035
/ 631/61/54/2295
/ 639/166/985
/ Biodegradable materials
/ Biodegradation
/ Biomaterials
/ Condensed Matter Physics
/ DNA repair
/ Epicardium
/ Lattice design
/ Materials Science
/ Myocardial infarction
/ Nanotechnology
/ Optical and Electronic Materials
/ Orifices
/ Polymers
/ Scaffolds
/ Shape memory
/ Tissue engineering
/ Tissues
2017
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
Flexible shape-memory scaffold for minimally invasive delivery of functional tissues
by
Montgomery, Miles
, Lo Rito, Mauro
, Davenport Huyer, Locke
, Pahnke, Aric
, Akbari, Saeed
, Reis, Lewis A.
, Ahadian, Samad
, Radisic, Milica
, Caldarone, Christopher A.
, Wu, Jun
, Li, Ren-Ke
, Vanderlaan, Rachel D.
, Civitarese, Robert A.
, Momen, Abdul
in
140/131
/ 142/126
/ 631/61/2035
/ 631/61/54/2295
/ 639/166/985
/ Biodegradable materials
/ Biodegradation
/ Biomaterials
/ Condensed Matter Physics
/ DNA repair
/ Epicardium
/ Lattice design
/ Materials Science
/ Myocardial infarction
/ Nanotechnology
/ Optical and Electronic Materials
/ Orifices
/ Polymers
/ Scaffolds
/ Shape memory
/ Tissue engineering
/ Tissues
2017
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Flexible shape-memory scaffold for minimally invasive delivery of functional tissues
Journal Article
Flexible shape-memory scaffold for minimally invasive delivery of functional tissues
2017
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Overview
Despite great progress in engineering functional tissues for organ repair, including the heart, an invasive surgical approach is still required for their implantation. Here, we designed an elastic and microfabricated scaffold using a biodegradable polymer (poly(octamethylene maleate (anhydride) citrate)) for functional tissue delivery via injection. The scaffold’s shape memory was due to the microfabricated lattice design. Scaffolds and cardiac patches (1 cm × 1 cm) were delivered through an orifice as small as 1 mm, recovering their initial shape following injection without affecting cardiomyocyte viability and function. In a subcutaneous syngeneic rat model, injection of cardiac patches was equivalent to open surgery when comparing vascularization, macrophage recruitment and cell survival. The patches significantly improved cardiac function following myocardial infarction in a rat, compared with the untreated controls. Successful minimally invasive delivery of human cell-derived patches to the epicardium, aorta and liver in a large-animal (porcine) model was achieved.
Cardiac repair usually requires highly invasive interventional procedures. Here, the authors develop an injectable shape-memory cardiac patch and demonstrated its applicability in a myocardial infarction model.
Publisher
Nature Publishing Group UK,Nature Publishing Group
Subject
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