BIOMARKERS

Molecular Biopsy of Human Tumors

- a resource for Precision Medicine *

279 related articles for article (PubMed ID: 30543402)

  • 1. 3D Scaffolds Based on Conductive Polymers for Biomedical Applications.
    Alegret N; Dominguez-Alfaro A; Mecerreyes D
    Biomacromolecules; 2019 Jan; 20(1):73-89. PubMed ID: 30543402
    [TBL] [Abstract][Full Text] [Related]  

  • 2. Application of conductive polymers, scaffolds and electrical stimulation for nerve tissue engineering.
    Ghasemi-Mobarakeh L; Prabhakaran MP; Morshed M; Nasr-Esfahani MH; Baharvand H; Kiani S; Al-Deyab SS; Ramakrishna S
    J Tissue Eng Regen Med; 2011 Apr; 5(4):e17-35. PubMed ID: 21413155
    [TBL] [Abstract][Full Text] [Related]  

  • 3. Conductive Polymeric-Based Electroactive Scaffolds for Tissue Engineering Applications: Current Progress and Challenges from Biomaterials and Manufacturing Perspectives.
    Marsudi MA; Ariski RT; Wibowo A; Cooper G; Barlian A; Rachmantyo R; Bartolo PJDS
    Int J Mol Sci; 2021 Oct; 22(21):. PubMed ID: 34768972
    [TBL] [Abstract][Full Text] [Related]  

  • 4. Highly porous scaffolds of PEDOT:PSS for bone tissue engineering.
    Guex AG; Puetzer JL; Armgarth A; Littmann E; Stavrinidou E; Giannelis EP; Malliaras GG; Stevens MM
    Acta Biomater; 2017 Oct; 62():91-101. PubMed ID: 28865991
    [TBL] [Abstract][Full Text] [Related]  

  • 5. Electrically conductive biomaterials based on natural polysaccharides: Challenges and applications in tissue engineering.
    Vandghanooni S; Eskandani M
    Int J Biol Macromol; 2019 Dec; 141():636-662. PubMed ID: 31494165
    [TBL] [Abstract][Full Text] [Related]  

  • 6. Conducting Polymers for Tissue Engineering.
    Guo B; Ma PX
    Biomacromolecules; 2018 Jun; 19(6):1764-1782. PubMed ID: 29684268
    [TBL] [Abstract][Full Text] [Related]  

  • 7. A review of glycosaminoglycan-modified electrically conductive polymers for biomedical applications.
    Schöbel L; Boccaccini AR
    Acta Biomater; 2023 Oct; 169():45-65. PubMed ID: 37532132
    [TBL] [Abstract][Full Text] [Related]  

  • 8. Controlling scaffold conductivity and pore size to direct myogenic cell alignment and differentiation.
    Basurto IM; Muhammad SA; Gardner GM; Christ GJ; Caliari SR
    J Biomed Mater Res A; 2022 Oct; 110(10):1681-1694. PubMed ID: 35762455
    [TBL] [Abstract][Full Text] [Related]  

  • 9. 3D printing of electrically conductive hydrogels for tissue engineering and biosensors - A review.
    Distler T; Boccaccini AR
    Acta Biomater; 2020 Jan; 101():1-13. PubMed ID: 31476385
    [TBL] [Abstract][Full Text] [Related]  

  • 10. Electrically conductive materials for in vitro cardiac microtissue engineering.
    Baei P; Hosseini M; Baharvand H; Pahlavan S
    J Biomed Mater Res A; 2020 May; 108(5):1203-1213. PubMed ID: 32034936
    [TBL] [Abstract][Full Text] [Related]  

  • 11. Electrical stimulation of cell growth and neurogenesis using conductive and nonconductive microfibrous scaffolds.
    Grossemy S; Chan PPY; Doran PM
    Integr Biol (Camb); 2019 Jun; 11(6):264-279. PubMed ID: 31322680
    [TBL] [Abstract][Full Text] [Related]  

  • 12. Structural crystallisation of crosslinked 3D PEDOT:PSS anisotropic porous biomaterials to generate highly conductive platforms for tissue engineering applications.
    Solazzo M; Monaghan MG
    Biomater Sci; 2021 Jun; 9(12):4317-4328. PubMed ID: 33683230
    [TBL] [Abstract][Full Text] [Related]  

  • 13. Biomimetic approaches for tissue engineering.
    Reddy R; Reddy N
    J Biomater Sci Polym Ed; 2018 Oct; 29(14):1667-1685. PubMed ID: 29998794
    [TBL] [Abstract][Full Text] [Related]  

  • 14. Fabrication of scalable tissue engineering scaffolds with dual-pore microarchitecture by combining 3D printing and particle leaching.
    Mohanty S; Sanger K; Heiskanen A; Trifol J; Szabo P; Dufva M; Emnéus J; Wolff A
    Mater Sci Eng C Mater Biol Appl; 2016 Apr; 61():180-9. PubMed ID: 26838839
    [TBL] [Abstract][Full Text] [Related]  

  • 15. 3D Printable Electrically Conductive Hydrogel Scaffolds for Biomedical Applications: A Review.
    Athukorala SS; Tran TS; Balu R; Truong VK; Chapman J; Dutta NK; Roy Choudhury N
    Polymers (Basel); 2021 Feb; 13(3):. PubMed ID: 33540900
    [TBL] [Abstract][Full Text] [Related]  

  • 16. Design and Structure-Function Characterization of 3D Printed Synthetic Porous Biomaterials for Tissue Engineering.
    Kelly CN; Miller AT; Hollister SJ; Guldberg RE; Gall K
    Adv Healthc Mater; 2018 Apr; 7(7):e1701095. PubMed ID: 29280325
    [TBL] [Abstract][Full Text] [Related]  

  • 17. Moldable elastomeric polyester-carbon nanotube scaffolds for cardiac tissue engineering.
    Ahadian S; Davenport Huyer L; Estili M; Yee B; Smith N; Xu Z; Sun Y; Radisic M
    Acta Biomater; 2017 Apr; 52():81-91. PubMed ID: 27940161
    [TBL] [Abstract][Full Text] [Related]  

  • 18. Current approaches to electrospun nanofibers for tissue engineering.
    Rim NG; Shin CS; Shin H
    Biomed Mater; 2013 Feb; 8(1):014102. PubMed ID: 23472258
    [TBL] [Abstract][Full Text] [Related]  

  • 19. Challenges in the characterization of plasma-processed three-dimensional polymeric scaffolds for biomedical applications.
    Fisher ER
    ACS Appl Mater Interfaces; 2013 Oct; 5(19):9312-21. PubMed ID: 24028344
    [TBL] [Abstract][Full Text] [Related]  

  • 20. Engineering porous scaffolds using gas-based techniques.
    Dehghani F; Annabi N
    Curr Opin Biotechnol; 2011 Oct; 22(5):661-6. PubMed ID: 21546240
    [TBL] [Abstract][Full Text] [Related]  

    [Next]    [New Search]
    of 14.