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Harnessing Polyhydroxyalkanoates and Pressurized Gyration for Hard and Soft Tissue Engineering

delete2021-07-06
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OA
AI
P
Pooja Basnett
R
Rupy Kaur Matharu
C
Caroline S. Taylor
U
Upulitha Eranka Illangakoon
J
Jonathan I. Dawson
J
Janos M. Kanczler
E
Eleanor J. Humphrey
B
Barbara Lukasiewicz
R
Rinat Nigmatullin
P
Phoebe Heseltine
R
Richard O. C. Oreffo
J
John W. Haycock
C
Cesare M. Terracciano
S
Siân E. Harding
M
Mohan Edirisinghe
I
Ipsita Roy *
DOI:10.1021/acsami.0c19689delete
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Abstract

Abstract

En 中文
Organ dysfunction is a major cause of morbidity and mortality. Transplantation is typically the only definitive cure, challenged by the lack of sufficient donor organs. Tissue engineering encompasses the development of biomaterial scaffolds to support cell attachment, proliferation, and differentiation, leading to tissue regeneration. For efficient clinical translation, the forming technology utilized must be suitable for mass production. Herein, uniaxial polyhydroxyalkanoate scaffolds manufactured by pressurized gyration, a hybrid scalable spinning technique, are successfully used in bone, nerve, and cardiovascular applications. Chorioallantoic membrane and in vivo studies provided evidence of vascularization, collagen deposition, and cellular invasion for bone tissue engineering. Highly efficient axonal outgrowth was observed in dorsal root ganglion-based 3D ex vivo models. Human induced pluripotent stem cell derived cardiomyocytes exhibited a mature cardiomyocyte phenotype with optimal calcium handling. This study confirms that engineered polyhydroxyalkanoate-based gyrospun fibers provide an exciting and unique toolbox for the development of scalable scaffolds for both hard and soft tissue regeneration.
Keywords:
polyhydroxyalkanoates
pressurized gyration
scaffolds
fibers
cardiac
bone
nerve
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Journal

ACS Applied Materials and Interfaces cover
ACS Applied Materials and Interfaces
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8.2
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6.1W
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38.7W

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University of Sheffield
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university of southampton
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University College London
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University of Westminster
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university of london
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