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Connection

Yahya Choonara to Tissue Scaffolds

This is a "connection" page, showing publications Yahya Choonara has written about Tissue Scaffolds.
Connection Strength

2,645
  1. Electrospun nanofibrous scaffolds as a platform to reduce melanoma tumour growth, recurrence, and promote post-resection wound repair. Biomater Adv. 2024 Jul; 161:213870.
    View in: PubMed
    Score: 0,224
  2. Tannic acid-loaded chitosan-RGD-alginate scaffolds for wound healing and skin regeneration. Biomed Mater. 2023 05 17; 18(4).
    View in: PubMed
    Score: 0,210
  3. A 3D-Printed Biomaterial Scaffold Reinforced with Inorganic Fillers for Bone Tissue Engineering: In Vitro Assessment and In Vivo Animal Studies. Int J Mol Sci. 2023 Apr 20; 24(8).
    View in: PubMed
    Score: 0,209
  4. Advances in Stimuli-responsive Hydrogels for Tissue Engineering and Regenerative Medicine Applications: A Review Towards Improving Structural Design for 3D Printing. Curr Pharm Des. 2023; 29(40):3187-3205.
    View in: PubMed
    Score: 0,204
  5. Functionalizing nanofibrous platforms for neural tissue engineering applications. Drug Discov Today. 2022 05; 27(5):1381-1403.
    View in: PubMed
    Score: 0,191
  6. Gellan-Xanthan Hydrogel Conduits with Intraluminal Electrospun Nanofibers as Physical, Chemical and Therapeutic Cues for Peripheral Nerve Repair. Int J Mol Sci. 2021 Oct 26; 22(21).
    View in: PubMed
    Score: 0,188
  7. Advanced Strategies for Tissue Engineering in Regenerative Medicine: A Biofabrication and Biopolymer Perspective. Molecules. 2021 Apr 26; 26(9).
    View in: PubMed
    Score: 0,182
  8. Three-dimensional printing of extracellular matrix (ECM)-mimicking scaffolds: A critical review of the current ECM materials. J Biomed Mater Res A. 2020 12; 108(12):2324-2350.
    View in: PubMed
    Score: 0,173
  9. Preprocessing of Medical Image Data for Three-Dimensional Bioprinted Customized-Neural-Scaffolds. Tissue Eng Part C Methods. 2019 07; 25(7):401-410.
    View in: PubMed
    Score: 0,160
  10. 3D scaffolds for brain tissue regeneration: architectural challenges. Biomater Sci. 2018 Oct 24; 6(11):2812-2837.
    View in: PubMed
    Score: 0,153
  11. Functionalizing bioinks for 3D bioprinting applications. Drug Discov Today. 2019 01; 24(1):198-205.
    View in: PubMed
    Score: 0,152
  12. A 3D bioprinted in situ conjugated-co-fabricated scaffold for potential bone tissue engineering applications. J Biomed Mater Res A. 2018 05; 106(5):1311-1321.
    View in: PubMed
    Score: 0,145
  13. A composite chitosan-gelatin bi-layered, biomimetic macroporous scaffold for blood vessel tissue engineering. Carbohydr Polym. 2017 Feb 10; 157:1215-1225.
    View in: PubMed
    Score: 0,133
  14. Development and in vivo evaluation of an implantable nano-enabled multipolymeric scaffold for the management of AIDS dementia complex (ADC). Int J Pharm. 2015 Dec 30; 496(2):863-77.
    View in: PubMed
    Score: 0,124
  15. Self-assembling peptides: implications for patenting in drug delivery and tissue engineering. Recent Pat Drug Deliv Formul. 2011 Jan; 5(1):24-51.
    View in: PubMed
    Score: 0,089
  16. Bioplatform Fabrication Approaches Affecting Chitosan-Based Interpolymer Complex Properties and Performance as Wound Dressings. Molecules. 2020 Jan 06; 25(1).
    View in: PubMed
    Score: 0,042
  17. Design and characterisation of PHBV-magnesium oleate directional nanofibers for neurosupport. Biomed Mater. 2019 10 17; 14(6):065015.
    View in: PubMed
    Score: 0,041
  18. Novel high-viscosity polyacrylamidated chitosan for neural tissue engineering: fabrication of anisotropic neurodurable scaffold via molecular disposition of persulfate-mediated polymer slicing and complexation. Int J Mol Sci. 2012 Oct 29; 13(11):13966-84.
    View in: PubMed
    Score: 0,025
Connection Strength

The connection strength for concepts is the sum of the scores for each matching publication.

Publication scores are based on many factors, including how long ago they were written and whether the person is a first or senior author.