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第43卷第3期 孙上雯,陈汉帮,胡姝颖,等. 负载γ⁃Fe2O3的壳聚糖多孔海绵对大鼠骨髓间质干细胞增殖和
2023年3月 成骨分化的影响[J]. 南京医科大学学报(自然科学版),2023,43(3):326-333 ·333 ·
[13] CHENG Y X,DAISY R,PAUL L,et al. Collagen function⁃ [25] ZHANG W H,DU A L,LIU S,et al. Research progress in
alized bioactive nanofiber matrices for osteogenic differen⁃ decellularized extracellular matrix⁃derived hydrogels[J].
tiation of mesenchymal stem cells:bone tissue engineering Regen Ther,2021,18:88-96
[J]. J Biomed Nanotechnol,2014,10(2):287-298 [26] SHARIFI F,ATYABI S M,NOROUZIAN D,et al. Poly⁃
[14]XIA Y,SUN J F,ZHAO L,et al. Magnetic field and nano⁃ caprolactone/carboxymethyl chitosan nanofibrous scaf⁃
scaffolds with stem cells to enhance bone regeneration folds for bone tissue engineering application[J]. Int J Biol
[J]. Biomaterials,2018,183:151-170 Macromol,2018,115:243-248
[15] ZHUANG J J,LIN S Y,DONG L Q,et al. Magnetically ac⁃ [27] ZHAO C,QAZVINI N T,SADATI M,et al. A pH⁃trig⁃
tuated mechanical stimuli on Fe 3O4/mineralized collagen gered,self ⁃ assembled,and bioprintable hybrid hydrogel
coatings to enhance osteogenic differentiation of the scaffold for mesenchymal stem cell based bone tissue en⁃
MC3T3⁃E1 cells[J]. Acta Biomater,2018,71:49-60 gineering[J]. ACS Appl Mater Interfaces,2019,11(9):
[16] KRZYSZTOF M,MICHALINA A,KATARZYNA K G,et 8749-8762
al. Promotion through external magnetic field of osteogenic [28] HO M H,YAO C J,LIAO M H,et al. Chitosan nanofiber
differentiation potential in adipose⁃derived mesenchymal scaffold improves bone healing via stimulating trabecular
stem cells:design of polyurethane/poly(lactic)acid spong⁃ bone production due to upregulation of the Runx2/osteo⁃
es doped with iron oxide nanoparticles[J]. J Biomed Ma⁃ calcin/alkaline phosphatase signaling pathway[J]. Int J
ter Res Part B Appl Biomater,2020,108(4):1398-1411 Nanomedicine,2015,10:5941-5954
[17] HE Y,YU L J,LIU J Y,et al. Enhanced osteogenic differ⁃ [29] VIMALRAJ S. Alkaline phosphatase:structure,expres⁃
entiation of human bone⁃derived mesenchymal stem cells sion and its function in bone mineralization[J]. Gene,
in 3⁃dimensional printed porous titanium scaffolds by static 2020,754:144855
magnetic field through up⁃regulating Smad4[J]. FASEB [30] ZHANG J,WEI W,YANG L L,et al. Stimulation of cell
J,2019,33(5):6069-6081 responses and bone ingrowth into macro⁃microporous im⁃
[18] HUANG Z F,HE Y,CHANG X,et al. A magnetic iron ox⁃ plants of nano ⁃ bioglass/polyetheretherketone composite
ide/polydopamine coating can improve osteogenesis of 3D⁃ and enhanced antibacterial activity by release of hinokitiol
printed porous titanium scaffolds with a static magnetic [J]. Colloids Surf B Biointerfaces,2018,164:347-357
field by upregulating the TGFβ⁃smads pathway[J]. Adv [31] OGASAWARA T,KAWAGUCHI H,JINNO S,et al. Bone
Healthc Mater,2020,9(14):2000318 morphogenetic protein 2 ⁃ induced osteoblast differentia⁃
[19] WANG Q W,CHEN B,CAO M,et al. Response of MAPK tion requires Smad ⁃ mediated down ⁃ regulation of Cdk6
pathway to iron oxide nanoparticles in vitro treatment pro⁃ [J]. Mol Cell Biol,2004,24(15):6560-6568
motes osteogenic differentiation of hBMSCs[J]. Biomate⁃ [32] LIU T J,GAO Y H,SAKAMOTO K,et al. BMP⁃2 pro⁃
rials,2016,86:11-20 motes differentiation of osteoblasts and chondroblasts in
[20] FU Q,SAIZ E,RAHAMAN M N,et al. Bioactive glass Runx2⁃deficient cell lines[J]. J Cell Physiol,2007,211
scaffolds for bone tissue engineering:state of the art and (3):728-735
future perspectives[J]. Mater Sci Eng C Mater Biol Appl, [33] TOSHIHISA K. Runx2,an inducer of osteoblast and chon⁃
2011,31(7):1245-1256 drocyte differentiation[J]. Histochem Cell Biol,2018,149
[21] KAUR G,KUMAR V,BAINO F,et al. Mechanical proper⁃ (4):313-323
ties of bioactive glasses,ceramics,glass ⁃ ceramics and [34] KOMORI T. Regulation of proliferation,differentiation
composites:state⁃of⁃the⁃art review and future challenges and functions of osteoblasts by Runx2[J]. Int J Mol Sci,
[J]. Mater Sci Eng C Mater Biol Appl,2019,104:109895 2019,20(7):E1694
[22] ULERY B D,NAIR L S,LAURENCIN C T. Biomedical [35] XIA Y,CHEN H M,ZHANG F M,et al. Injectable calci⁃
applications of biodegradable polymers[J]. J Polym Sci B um phosphate scaffold with iron oxide nanoparticles to en⁃
Polym Phys,2011,49(12):832-864 hance osteogenesis via dental pulp stem cells[J]. Artif
[23] LEE J,HONG J,KIM W,et al. Bone⁃derived dECM/algi⁃ Cells Nanomed Biotechnol,2018,46(sup1):423-433
nate bioink for fabricating a 3D cell⁃laden mesh structure [36] CUTIONGCO MARIE F A,SAND J B,REYNOLDS P M,
for bone tissue engineering[J]. Carbohydr Polym,2020, et al. Predicting gene expression using morphological cell
250:116914 responses to nanotopography[J]. Nat Commun,2020,11
[24] CHOUDHURY D,YEE M,SHENG Z L J,et al. Decellu⁃ (1):1384
larization systems and devices:state⁃of⁃the⁃art[J]. Acta [收稿日期] 2022-06-03
Biomater,2020,115:51-59 (本文编辑:陈汐敏)