| 1 |
Lv L , Ge W , Liu Y , et al. Lysine-specific demethylase 1 inhibitor rescues the osteogenic ability of mesenchymal stem cells under osteoporotic conditions by modulating H3K4 methylation[J]. Bone Res, 2016, 4, 16037.
doi: 10.1038/boneres.2016.37
|
| 2 |
Ge W , Shi L , Zhou Y , et al. Inhibition of osteogenic differentiation of human adipose-derived stromal cells by retinoblastoma binding protein 2 repression of RUNX2-activated transcription[J]. Stem Cells, 2011, 29 (7): 1112- 1125.
doi: 10.1002/stem.663
|
| 3 |
Zhang P , Liu Y , Jin C , et al. Histone H3K9 acetyltransferase PCAF is essential for osteogenic differentiation through bone morphogenetic protein signaling and may be involved in osteoporosis[J]. Stem Cells, 2016, 34 (9): 2332- 2341.
doi: 10.1002/stem.2424
|
| 4 |
Zhang P , Liu Y , Jin C , et al. Histone acetyltransferase GCN5 regulates osteogenic differentiation of mesenchymal stem cells by inhibiting NF-κB[J]. J Bone Miner Res, 2016, 31 (2): 391- 402.
doi: 10.1002/jbmr.2704
|
| 5 |
Zhang M , Liu X , Li Z , et al. Asymmetrical methyltransferase PRMT3 regulates human mesenchymal stem cell osteogenesis via miR-3648[J]. Cell Death Dis, 2019, 10 (8): 581.
doi: 10.1038/s41419-019-1815-7
|
| 6 |
Zhang Y , Qing J , Li Y , et al. PRMT7-mediated PTEN activation enhances bone regeneration in female mice[J]. Int J Mol Sci, 2025, 26 (7): 2981.
doi: 10.3390/ijms26072981
|
| 7 |
Lv L , Liu Y , Zhang P , et al. The nanoscale geometry of TiO2 nanotubes influences the osteogenic differentiation of human adipose-derived stem cells by modulating H3K4 trimethylation[J]. Biomaterials, 2015, 39, 193- 205.
doi: 10.1016/j.biomaterials.2014.11.002
|
| 8 |
Ge W , Liu Y , Chen T , et al. The epigenetic promotion of osteogenic differentiation of human adipose-derived stem cells by the genetic and chemical blockade of histone demethylase LSD1[J]. Biomaterials, 2014, 35 (23): 6015- 6025.
doi: 10.1016/j.biomaterials.2014.04.055
|
| 9 |
Fan C , Jia L , Zheng Y , et al. miR-34a promotes osteogenic differentiation of human adipose-derived stem cells via the RBP2/NOTCH1/CYCLIN D1 coregulatory network[J]. Stem Cell Reports, 2016, 7 (2): 236- 248.
doi: 10.1016/j.stemcr.2016.06.010
|
| 10 |
Chen S , Zheng Y , Zhang S , et al. Promotion effects of miR-375 on the osteogenic differentiation of human adipose-derived mesenchymal stem cells[J]. Stem Cell Reports, 2017, 8 (3): 773- 786.
doi: 10.1016/j.stemcr.2017.01.028
|
| 11 |
Jin C , Jia L , Huang Y , et al. Inhibition of lncRNA MIR31HG promotes osteogenic differentiation of human adipose-derived stem cells[J]. Stem Cells, 2016, 34 (11): 2707- 2720.
doi: 10.1002/stem.2439
|
| 12 |
Li Z , Jin C , Chen S , et al. Long non-coding RNA MEG3 inhibits adipogenesis and promotes osteogenesis of human adipose-derived mesenchymal stem cells via miR-140-5p[J]. Mol Cell Biochem, 2017, 433 (1/2): 51- 60.
|
| 13 |
Du Y , Zhang M , Liu X , et al. CDC20 promotes bone formation via APC/C dependent ubiquitination and degradation of p65[J]. EMBO Rep, 2021, 22 (9): e52576.
doi: 10.15252/embr.202152576
|
| 14 |
Du Y , Liu Y , Zhou Y , et al. Knockdown of CDC20 promotes adipogenesis of bone marrow-derived stem cells by modulating β-catenin[J]. Stem Cell Res Ther, 2022, 13 (1): 443.
doi: 10.1186/s13287-022-03062-0
|
| 15 |
Zhang H , Du Y , Lu D , et al. UBE2C orchestrates bone formation through stabilization of SMAD1/5[J]. Bone, 2024, 187, 117175.
doi: 10.1016/j.bone.2024.117175
|
| 16 |
Liu X , Liu X , Du Y , et al. DUSP5 promotes osteogenic differentiation through SCP1/2-dependent phosphorylation of SMAD1[J]. Stem Cells, 2021, 39 (10): 1395- 1409.
doi: 10.1002/stem.3428
|
| 17 |
Jin C , Zhang P , Zhang M , et al. Inhibition of SLC7A11 by sulfasalazine enhances osteogenic differentiation of mesenchymal stem cells by modulating BMP2/4 expression and suppresses bone loss in ovariectomized mice[J]. J Bone Miner Res, 2017, 32 (3): 508- 521.
doi: 10.1002/jbmr.3009
|
| 18 |
Wang Y , Liu Y , Zhang M , et al. Inhibition of PTGS1 promotes osteogenic differentiation of adipose-derived stem cells by suppres-sing NF-κB signaling[J]. Stem Cell Res Ther, 2019, 10 (1): 57.
doi: 10.1186/s13287-019-1167-3
|
| 19 |
Liu X , Li Z , Liu H , et al. Low concentration flufenamic acid enhances osteogenic differentiation of mesenchymal stem cells and suppresses bone loss by inhibition of the NF-κB signaling pathway[J]. Stem Cell Res Ther, 2019, 10 (1): 213.
doi: 10.1186/s13287-019-1321-y
|
| 20 |
Zhang P , Dong J , Fan X , et al. Characterization of mesenchymal stem cells in human fetal bone marrow by single-cell transcriptomic and functional analysis[J]. Signal Transduct Target Ther, 2023, 8 (1): 126.
doi: 10.1038/s41392-023-01338-2
|
| 21 |
Li Y , Lu D , Xu F , et al. EGR1 promotes craniofacial bone rege-neration via activation of ALPL+ PDGFD+ periosteal stem cells[J]. Adv Sci (Weinh), 2025, 12 (30): e10243.
doi: 10.1002/advs.202410243
|
| 22 |
Li W , Liu Y , Zhang P , et al. Tissue-engineered bone immobilized with human adipose stem cells-derived exosomes promotes bone regeneration[J]. ACS Appl Mater Interfaces, 2018, 10 (6): 5240- 5254.
doi: 10.1021/acsami.7b17620
|
| 23 |
Chen S , Tang Y , Liu Y , et al. Exosomes derived from miR-375-overexpressing human adipose mesenchymal stem cells promote bone regeneration[J]. Cell Prolif, 2019, 52 (5): e12669.
doi: 10.1111/cpr.12669
|
| 24 |
Zhang X , Tang J , Kou X , et al. Proteomic analysis of MSC-derived apoptotic vesicles identifies Fas inheritance to ameliorate haemophilia a via activating platelet functions[J]. J Extracell Vesicles, 2022, 11 (7): e12240.
doi: 10.1002/jev2.12240
|
| 25 |
Zhu Y , Yang K , Cheng Y , et al. Apoptotic vesicles regulate bone metabolism via the miR1324/SNX14/SMAD1/5 signaling axis[J]. Small, 2023, 19 (16): e2205813.
doi: 10.1002/smll.202205813
|
| 26 |
Yang K , Zhu Y , Shao Y , et al. Apoptotic vesicles derived from dental pulp stem cells promote bone formation through the ERK1/2 signaling pathway[J]. Biomedicines, 2024, 12 (4): 730.
doi: 10.3390/biomedicines12040730
|
| 27 |
Jiang Y , Zhu Y , Shao Y , et al. Platelet-derived apoptotic vesicles promote bone regeneration via Golgi phosphoprotein 2 (GOLPH2)-AKT signaling axis[J]. ACS Nano, 2023, 17 (24): 25070- 25090.
doi: 10.1021/acsnano.3c07717
|
| 28 |
Shao Y , Jiang Y , Yang K , et al. Apoptotic vesicles derived from human red blood cells promote bone regeneration via carbonic anhydrase 1[J]. Cell Prolif, 2024, 57 (2): e13547.
doi: 10.1111/cpr.13547
|
| 29 |
Cheng Y , Zhu Y , Liu Y , et al. Tailored apoptotic vesicles promote bone regeneration by releasing the osteoinductive brake[J]. Int J Oral Sci, 2024, 16 (1): 31.
doi: 10.1038/s41368-024-00293-0
|
| 30 |
Liu Y , Zhu Y , Ding Y , et al. Poly (lactic-co-glycolic) acid porous microspheres for the sequential delivery of apoptotic vesicles and strontium in maxillofacial bone regeneration[J]. Chem Eng J, 2025, 513, 162902.
doi: 10.1016/j.cej.2025.162902
|
| 31 |
Xia D , Liu Y , Wang S , et al. In vitro and in vivo investigation on biodegradable Mg-Li-Ca alloys for bone implant application[J]. Sci China Mater, 2019, 62 (2): 256- 272.
doi: 10.1007/s40843-018-9293-8
|
| 32 |
Xia D , Jia Z , Shen Y , et al. pH stimuli-responsive, rapidly self-healable coatings enhanced the corrosion resistance and osteogenic differentiation of Mg-1Ca osteoimplant[J]. Small, 2022, 18 (36): 2106056.
doi: 10.1002/smll.202106056
|
| 33 |
Du S , Shen Y , Zheng Y , et al. Systematic in vitro and in vivo study on biodegradable binary Zn-0.2 at% Rare Earth alloys (Zn-RE: Sc, Y, La-Nd, Sm-Lu)[J]. Bioact Mater, 2023, 24, 507- 523.
|
| 34 |
Liang S , Du S , Zheng Y , et al. Biodegradable Zn-xY alloys with enhanced osteogenesis and angiogenesis effects for bone implant applications[J]. Acta Biomater, 2025, 201, 684- 702.
doi: 10.1016/j.actbio.2025.05.048
|
| 35 |
Yuan W , Xia D , Zheng Y , et al. Controllable biodegradation and enhanced osseointegration of ZrO2-nanofilm coated Zn-Li alloy: In vitro and in vivo studies[J]. Acta Biomater, 2020, 105, 290- 303.
doi: 10.1016/j.actbio.2020.01.022
|
| 36 |
Hsu Y , He Y , Zhao X , et al. Photothermal coating on zinc alloy for controlled biodegradation and improved osseointegration[J]. Adv Sci (Weinh), 2025, 12 (9): e2409051.
doi: 10.1002/advs.202409051
|
| 37 |
Guo H , Xia D , Zheng Y , et al. A pure zinc membrane with degradability and osteogenesis promotion for guided bone regeneration: In vitro and in vivo studies[J]. Acta Biomater, 2020, 106, 396- 409.
doi: 10.1016/j.actbio.2020.02.024
|
| 38 |
Yan F , Yu M , He Y , et al. Hierarchical mineralized collagen coated Zn membrane to tailor cell microenvironment for guided bone regeneration[J]. Adv Funct Mater, 2025, 35 (7): 2412695.
doi: 10.1002/adfm.202412695
|
| 39 |
Xia D , Qin Y , Guo H , et al. Additively manufactured pure zinc porous scaffolds for critical-sized bone defects of rabbit femur[J]. Bioact Mater, 2022, 19, 12- 23.
|
| 40 |
Lu Y , Liu A , Jin S , et al. Additively manufactured biodegradable Zn-based porous scaffolds to suppress osteosarcoma and promote osteogenesis[J]. Adv Mater, 2025, 37 (3): e2410589.
doi: 10.1002/adma.202410589
|
| 41 |
Qin Y , Liu A , Guo H , et al. Additive manufacturing of Zn-Mg alloy porous scaffolds with enhanced osseointegration: In vitro and in vivo studies[J]. Acta Biomater, 2022, 145, 403- 415.
doi: 10.1016/j.actbio.2022.03.055
|
| 42 |
Xia D , Yang F , Zheng Y , et al. Research status of biodegradable metals designed for oral and maxillofacial applications: A review[J]. Bioact Mater, 2021, 6 (11): 4186- 4208.
|
| 43 |
Wan Z , Bai X , Wang X , et al. Mgp high-expressing MSCs orchestrate the osteoimmune microenvironment of collagen/nanohydroxyapatite- mediated bone regeneration[J]. Adv Sci (Weinh), 2024, 11 (23): e2308986.
doi: 10.1002/advs.202308986
|
| 44 |
Guo X , Yi J , Wan Z , et al. Morphology and function dual-adjustable biomimetic 4D-printed scaffold for the regenerative restoration of complex bone defects[J]. Adv Funct Mater, 2025, 35 (45): 2509961.
doi: 10.1002/adfm.202509961
|
| 45 |
Wan Z , Dong Q , Liu Y , et al. Programmed biomolecule delivery orchestrate bone tissue regeneration via MSC recruitment and epigenetic modulation[J]. Chem Eng J, 2022, 438, 135518.
doi: 10.1016/j.cej.2022.135518
|
| 46 |
Wan Z , Zhang P , Lv L , et al. NIR light-assisted phototherapies for bone-related diseases and bone tissue regeneration: A systema-tic review[J]. Theranostics, 2020, 10 (25): 11837- 11861.
doi: 10.7150/thno.49784
|
| 47 |
Wan Z , Dong Q , Guo X , et al. A dual-responsive polydopamine-modified hydroxybutyl chitosan hydrogel for sequential regulation of bone regeneration[J]. Carbohydr Polym, 2022, 297, 120027.
doi: 10.1016/j.carbpol.2022.120027
|
| 48 |
Zhai M , Xianyu B , Zhang H , et al. Se polyurethane-coated titanium for improved osteogenesis and immune response[J]. Adv Funct Mater, 2026, 36 (3): e14534.
doi: 10.1002/adfm.202514534
|
| 49 |
Zhai M , Huang Z , Xianyu B , et al. Selenium-containing polyurethane thermo-sensitive hydrogel accelerates diabetic wound healing by activating unfolded protein response[J]. Aggregate, 2025, 6 (7): e70074.
doi: 10.1002/agt2.70074
|
| 50 |
Yuan Z , Bai X , Li S , et al. Multimaterial and multidimensional bioprinting in regenerative medicine: Advances, limitations, and future directions[J]. Adv Healthc Mater, 2025, 14 (18): e2500475.
doi: 10.1002/adhm.202500475
|