Periosteal topology creates an osteo-friendly microenvironment for progenitor cells

Materials Today Bio - Tập 18 - Trang 100519 - 2023
Jun Pan1, Hanwen Li1, Kai Jin2, Huaye Jiang1, Ke Li3,4, Yingchuang Tang1, Zixiang Liu1, Kai Zhang1, Kangwu Chen1, Zhuobin Xu4, Huihui Wang4, Huilin Yang1, Junjie Niu1, Qin Shi1, Hao Chen3,4
1Department of Orthopedics, First Affiliated Hospital of Soochow University, Suzhou, Jiangsu, China
2Key Laboratory of Animal Breeding Reproduction and Molecular Design for Jiangsu Province, College of Animal Science and Technology, Yangzhou University, Yangzhou, China
3Department of Orthopedics, Affiliated Hospital of Yangzhou University, Yangzhou, Jiangsu, China
4Institute of Translational Medicine, Medical College, Yangzhou University, Yangzhou, Jiangsu, China

Tài liệu tham khảo

Augustin, 2007, The periosteum. Part 1: anatomy, histology and molecular biology, Injury, 38, 1115, 10.1016/j.injury.2007.05.017 Zhang, 2008, A perspective: engineering periosteum for structural bone graft healing, Clin. Orthop. Relat. Res., 466, 1777, 10.1007/s11999-008-0312-6 Zhang, 2005, Periosteal progenitor cell fate in segmental cortical bone graft transplantations: implications for functional tissue engineering, J. Bone Miner. Res., 20, 2124, 10.1359/JBMR.050806 Foolen, 2007, Collagen orientation in periosteum and perichondrium is aligned with preferential directions of tissue growth, J. Orthop. Res., 26, 1263, 10.1002/jor.20586 Svensson, 2013, Osseointegration of titanium with an antimicrobial nanostructured noble metal coating, Nanomed. Nanotechnol. Biol. Med., 9, 1048, 10.1016/j.nano.2013.04.009 Ballo, 2011, Nanostructured model implants for in vivo studies: influence of well-defined nanotopology on de novo bone formation on titanium implants, Int. J. Nanomed., 6, 3415, 10.2147/IJN.S25867 Kim, 2014, Multiscale patterned transplantable stem cell patches for bone tissue regeneration, Biomaterials, 35, 9058, 10.1016/j.biomaterials.2014.07.036 Coelho, 2014, Nanometer-scale features on micrometer-scale surface texturing: a bone histological, gene expression, and nanomechanical study, Bone, 65, 25, 10.1016/j.bone.2014.05.004 Koo, 2014, Micro- and nanotopology with extracellular matrix coating modulate human corneal endothelial cell behavior, Acta Biomater., 10, 1975, 10.1016/j.actbio.2014.01.015 Wei, 2021, Cellular modulation by the mechanical cues from biomaterials for tissue engineering, Biomaterials Translational, 2, 323 Gao, 2019, Macrophage-lineage TRAP+ cells recruit periosteum-derived cells for periosteal osteogenesis and regeneration, J. Clin. Invest., 129, 2578, 10.1172/JCI98857 Gong, 2015, Nanomaterials and bone regeneration, Bone Res, 3, 10.1038/boneres.2015.29 Lamers, 2012, Dynamic cell adhesion and migration on nanoscale grooved substrates, European Cells, 23, 182, 10.22203/eCM.v023a14 Hu, 2014, Effect of nano-hydroxyapatite coating on the osteoinductivity of porous biphasic calcium phosphate ceramics, BMC Muscoskel. Disord., 15, 114, 10.1186/1471-2474-15-114 Biggs, 2009, The use of nanoscale topology to modulate the dynamics of adhesion formation in primary osteoblasts and ERK/MAPK signalling in STRO-1+ enriched skeletal stem cells, Biomaterials, 30, 5094, 10.1016/j.biomaterials.2009.05.049 Metavarayuth, 2021, Surface topology and free energy regulate osteogenesis of stem cells: effects of shape-controlled gold nanoparticles, Biomaterials Translational, 2, 165 Kantawong, 2009, Whole proteome analysis of osteoprogenitor differentiation induced by disordered nanotopology and mediated by ERK signalling, Biomaterials, 30, 4723, 10.1016/j.biomaterials.2009.05.040 Gao, 2016, Bioinspired design of polycaprolactone composite nanofibers as artificial bone extracellular matrix for bone regeneration application, ACS Appl. Mater. Interfaces, 8, 27594, 10.1021/acsami.6b10417 Yang, 2020, Topology induced stiffness alteration of stem cells influences osteogenic differentiation, Biomater. Sci., 8, 2638, 10.1039/D0BM00264J Duchamp de Lageneste, 2018, Periosteum contains skeletal stem cells with high bone regenerative potential controlled by Periostin, Nat. Commun., 9, 773, 10.1038/s41467-018-03124-z The Gene Ontology, 2019, The gene ontology resource: 20 years and still GOing strong, Nucleic Acids Res., 47, D330, 10.1093/nar/gky1055 Rotwein, 1986, Organization and sequence of the human insulin-like growth factor I gene. Alternative RNA processing produces two insulin-like growth factor I precursor peptides, J. Biol. Chem., 261, 4828, 10.1016/S0021-9258(19)89179-2 Chew, 1995, An alternatively spliced human insulin-like growth factor-I transcript with hepatic tissue expression that diverts away from the mitogenic IBE1 peptide, Endocrinology, 136, 1939, 10.1210/endo.136.5.7720641 Bell, 1986, Sequences of liver cDNAs encoding two different mouse insulin-like growth factor I precursors, Nucleic Acids Res., 14, 7873, 10.1093/nar/14.20.7873 Roberts, 1987, Molecular cloning of rat insulin-like growth factor I complementary deoxyribonucleic acids: differential messenger ribonucleic acid processing and regulation by growth hormone in extrahepatic tissues, Mol. Endocrinol., 1, 243, 10.1210/mend-1-3-243 Gupta, 2021, Periosteum-mimicking tissue-engineered composite for treating periosteum damage in critical-sized bone defects, Biomacromolecules, 22, 3237, 10.1021/acs.biomac.1c00319 Hoffman, 2013, The effect of mesenchymal stem cells delivered via hydrogel-based tissue engineered periosteum on bone allograft healing, Biomaterials, 34, 8887, 10.1016/j.biomaterials.2013.08.005 Shi, 2014, Periosteum-mimetic structures made from freestanding microgrooved nanosheets, Adv. Mater., 26, 3290, 10.1002/adma.201305804 Li, 2020, Nanoscaled bionic periosteum orchestrating the osteogenic microenvironment for sequential bone regeneration, ACS Appl. Mater. Interfaces, 12, 36823, 10.1021/acsami.0c06906 Shi, 2013, Enhanced osteogenesis by a biomimic pseudo-periosteum-involved tissue engineering strategy, Adv Healthc Mater, 2, 1229, 10.1002/adhm.201300012 Yang, 2021, Bioinspired membrane provides periosteum-mimetic microenvironment for accelerating vascularized bone regeneration, Biomaterials, 268, 10.1016/j.biomaterials.2020.120561 Langlois, 1998, Association between insulin-like growth factor I and bone mineral density in older women and men: the Framingham Heart Study, J. Clin. Endocrinol. Metab., 83, 4257 Crane, 2014, Function of matrix IGF-1 in coupling bone resorption and formation, J. Mol. Med. (Berl.), 92, 107, 10.1007/s00109-013-1084-3 Yakar, 2009, Serum IGF-1 determines skeletal strength by regulating subperiosteal expansion and trait interactions, J. Bone Miner. Res., 24, 1481, 10.1359/jbmr.090226 Deng, 2011, Mechano growth factor E peptide promotes osteoblasts proliferation and bone-defect healing in rabbits, Int. Orthop., 35, 1099, 10.1007/s00264-010-1141-2 Li, 2015, Mechano-growth factor enhances differentiation of bone marrow-derived mesenchymal stem cells, Biotechnol. Lett., 37, 2341, 10.1007/s10529-015-1915-0