Biomimetic Cell-Substrate of Chitosan-Cross-linked Polyaniline Patterning on TiO Nanotubes Enables HBM-MSCs to Differentiate the Osteoblast Cell Type
Overview
Biotechnology
Authors
Affiliations
Titanium-based substrates are widely used in orthopedic treatments and hard tissue engineering. However, many of these titanium (Ti) substrates fail to interact properly between the cell-to-implant interface, which can lead to loosening and dislocation from the implant site. As a result, scaffold implant-associated complications and the need for multiple surgeries lead to an increased clinical burden. To address these challenges, we engineered osteoconductive and osteoinductive biosubstrates of chitosan (CS)-cross-linked polyaniline (PANI) nanonets coated on titanium nanotubes (TiONTs) in an attempt to mimic bone tissue's major extracellular matrix. Inspired by the architectural and tunable mechanical properties of such tissue, the TiONTs-PANI@CS-based biofilm conferred strong anticorrosion, the ability to nucleate hydroxyapatite nanoparticles, and excellent biocompatibility with human bone marrow-derived mesenchymal stem cells (hBM-MSCs). An in vitro study showed that the substrate-supported cell activities induced greater cell proliferation and differentiation compared to cell-TiONTs alone. Notably, the bone-related genes (collagen-I, OPN, OCN, and RUNX 2) were highly expressed within TiONTs-PANI@CS over a period of 14 days, indicating greater bone cell differentiation. These findings demonstrate that the in vitro functionality of the cells on the osteoinductive-like platform of TiONTs-PANI@CS improves the efficiency for osteoblastic cell regeneration and that the substrate potentially has utility in bone tissue engineering applications.
Crosslinked polymeric networks of TiO-polymer composites: a comprehensive review.
Arif M, Javed M, Akhter T RSC Adv. 2024; 14(46):33843-33863.
PMID: 39469015 PMC: 11514414. DOI: 10.1039/d4ra06922f.
Xia D, Qian Q, Wang S, Dong X, Liu Y Int J Nanomedicine. 2024; 19:7983-7996.
PMID: 39135672 PMC: 11317228. DOI: 10.2147/IJN.S462514.
Elkadi O, Abinzano F, Nippolainen E, Gonzalez O, Levato R, Malda J Mater Today Bio. 2023; 24:100879.
PMID: 38130429 PMC: 10733684. DOI: 10.1016/j.mtbio.2023.100879.
Guar-Based Injectable Hydrogel for Drug Delivery and In Vitro Bone Cell Growth.
Poudel H, RanguMagar A, Singh P, Oluremi A, Ali N, Watanabe F Bioengineering (Basel). 2023; 10(9).
PMID: 37760190 PMC: 10525255. DOI: 10.3390/bioengineering10091088.