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Tri-Layered and Gel-Like Nanofibrous Scaffolds with Anisotropic Features for Engineering Heart Valve Leaflets.
Adv Healthc Mater. 2022 May;11(10):e2200053. doi: 10.1002/adhm.202200053. Epub 2022 Mar 21.
2
Tri-layered elastomeric scaffolds for engineering heart valve leaflets.
Biomaterials. 2014 Sep;35(27):7774-85. doi: 10.1016/j.biomaterials.2014.04.039. Epub 2014 Jun 16.
3
Living nano-micro fibrous woven fabric/hydrogel composite scaffolds for heart valve engineering.
Acta Biomater. 2017 Mar 15;51:89-100. doi: 10.1016/j.actbio.2017.01.051. Epub 2017 Jan 18.
4
Core-shell PLGA/collagen nanofibers loaded with recombinant FN/CDHs as bone tissue engineering scaffolds.
Connect Tissue Res. 2014 Aug;55(4):292-8. doi: 10.3109/03008207.2014.918112. Epub 2014 Jun 10.
5
Optimization of polycaprolactone fibrous scaffold for heart valve tissue engineering.
Biomed Mater. 2019 Oct 8;14(6):065014. doi: 10.1088/1748-605X/ab3d24.
7
Electrospun PGS:PCL microfibers align human valvular interstitial cells and provide tunable scaffold anisotropy.
Adv Healthc Mater. 2014 Jun;3(6):929-39. doi: 10.1002/adhm.201300505. Epub 2014 Jan 22.
10
Biofunctionalized Nanofibrous Bilayer Scaffolds for Enhancing Cell Adhesion, Proliferation and Osteogenesis.
ACS Appl Bio Mater. 2021 Jun 21;4(6):5276-5294. doi: 10.1021/acsabm.1c00414. Epub 2021 May 13.

引用本文的文献

1
Emerging technologies for cardiac tissue engineering and artificial hearts.
Smart Med. 2023 Feb 16;2(1):e20220040. doi: 10.1002/SMMD.20220040. eCollection 2023 Feb.
2
Strategies for Development of Synthetic Heart Valve Tissue Engineering Scaffolds.
Prog Mater Sci. 2023 Oct;139. doi: 10.1016/j.pmatsci.2023.101173. Epub 2023 Jul 26.
3
Multi-material electrospinning: from methods to biomedical applications.
Mater Today Bio. 2023 Jun 23;21:100710. doi: 10.1016/j.mtbio.2023.100710. eCollection 2023 Aug.
6
Fibrin gel enhanced trilayer structure in cell-cultured constructs.
Biotechnol Bioeng. 2023 Jun;120(6):1678-1693. doi: 10.1002/bit.28371. Epub 2023 Mar 18.

本文引用的文献

1
Anticalcification Potential of POSS-PEG Hybrid Hydrogel as a Scaffold Material for the Development of Synthetic Heart Valve Leaflets.
ACS Appl Bio Mater. 2021 Mar 15;4(3):2534-2543. doi: 10.1021/acsabm.0c01544. Epub 2021 Feb 16.
2
Tendon-bioinspired wavy nanofibrous scaffolds provide tunable anisotropy and promote tenogenesis for tendon tissue engineering.
Mater Sci Eng C Mater Biol Appl. 2021 Jul;126:112181. doi: 10.1016/j.msec.2021.112181. Epub 2021 May 13.
3
Predicting the Key Genes Involved in Aortic Valve Calcification Through Integrated Bioinformatics Analysis.
Front Genet. 2021 May 11;12:650213. doi: 10.3389/fgene.2021.650213. eCollection 2021.
5
Recent Progress Toward Clinical Translation of Tissue-Engineered Heart Valves.
Can J Cardiol. 2021 Jul;37(7):1064-1077. doi: 10.1016/j.cjca.2021.03.022. Epub 2021 Apr 8.
8
Poly(aspartic acid) in Biomedical Applications: From Polymerization, Modification, Properties, Degradation, and Biocompatibility to Applications.
ACS Biomater Sci Eng. 2021 Jun 14;7(6):2083-2105. doi: 10.1021/acsbiomaterials.1c00150. Epub 2021 Apr 2.
9
Electrospun Polyurethane and Hydrogel Composite Scaffolds as Biomechanical Mimics for Aortic Valve Tissue Engineering.
ACS Biomater Sci Eng. 2016 Sep 12;2(9):1546-1558. doi: 10.1021/acsbiomaterials.6b00309. Epub 2016 Aug 17.
10
A review of the immune response stimulated by xenogenic tissue heart valves.
Scand J Immunol. 2021 Apr;93(4):e13018. doi: 10.1111/sji.13018. Epub 2021 Jan 7.

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