| [1] |
Kiyokawa K, Kiyokawa M, Takagi M, et al. New regenerative treatment for tooth and periodontal bone defect associated with posttraumatic alveolar bone crush fracture[J]. J Craniofac Surg, 2009, 20(3): 780-783.
doi: 10.1097/SCS.0b013e3181a14b7b
pmid: 19369891
|
| [2] |
Lausten LL, Ferguson BL, Barker BF, et al. Oral Kaposi sarcoma associated with severe alveolar bone loss: Case report and review of the literature[J]. J Periodontol, 2003, 74(11): 1668-1675.
pmid: 14682665
|
| [3] |
Zheng Y, Deng JH, Wang G, et al. P53 negatively regulates the osteogenic differentiation in jaw bone marrow MSCs derived from diabetic osteoporosis[J]. Heliyon, 2023, 9(4):e15188.
doi: 10.1016/j.heliyon.2023.e15188
|
| [4] |
Wang X, Xing H, Zhang G, et al. Restoration of a critical mandibular bone defect using human alveolar bone-derived stem cells and porous nano-HA/collagen/PLA scaffold[J]. Stem Cell Int, 2016:8741641.
|
| [5] |
Zhang LL, Wei W. Anti-inflammatory and immunoregulatory effects of paeoniflorin and total glucosides of paeony[J]. Pharmacol Ther, 2020, 207: 107452.
doi: 10.1016/j.pharmthera.2019.107452
|
| [6] |
Wu LE, Tang RK, Xiong WB, et al. Paeoniflorin shows chondroprotective effects under IL-1β stress by regulating circ-PREX1/miR-140-3p/WNT5B axis[J]. J Orthop Surg Res, 2023, 18(1): 766.
doi: 10.1186/s13018-023-04238-x
pmid: 37817257
|
| [7] |
晁二涛, 白海, 王存邦, 等. 芍药苷对骨髓间充质干细胞增殖的影响[J]. 中国组织工程研究, 2015, 19(1):101-107.
|
| [8] |
李敏, 于洋, 程基焱. 芍药苷对脂多糖干预骨髓间充质干细胞的作用机制[J]. 中国组织工程研究, 2022, 26(13):2000-2005.
|
| [9] |
Wang YM, Dai JZ, Zhu Y, et al. Paeoniflorin regulates osteoclastogenesis and osteoblastogenesis manipulating NF-κB signaling pathway both and in vivo[J]. Oncotarget, 2017, 9(7): 7372-7388.
doi: 10.18632/oncotarget.v9i7
|
| [10] |
Ma Y, Lang X, Yang Q, et al. Paeoniflorin promotes intestinal stem cell-mediated epithelial regeneration and repair via PI3K-AKT-mTOR signalling in ulcerative colitis[J]. Int Immunopharmacol, 2023, 119:110247.
doi: 10.1016/j.intimp.2023.110247
|
| [11] |
Yang LY, Liu SY, Mu S, et al. Paeoniflorin attenuates dexamethasone-induced apoptosis of osteoblast cells and promotes bone formation regulating AKT/mTOR/autophagy signaling pathway[J]. Evid Based Complement Alternat Med, 2021, 2021: 6623464.
|
| [12] |
Liu HX, Chang ZY, Liu SL, et al. MEDAG expression and paeoniflorin alleviates bone loss by regulating the MEDAG/AMPK/PPARγ signaling pathway in vivo[J]. Heliyon, 2024, 10(1): e24241.
doi: 10.1016/j.heliyon.2024.e24241
|
| [13] |
Qiu MF, Bae KB, Liu G, et al. Osteolectin promotes odontoblastic differentiation in human dental pulp cells[J]. J Endod, 2023, 49(12): 1660-1667.
|
| [14] |
Fan LL, Chen S, Yang MH, et al. Metallic materials for bone repair[J]. Adv Healthc Mater, 2024, 13(3): e2302132.
|
| [15] |
Guo K, Zhao HM, Chen GK, et al. PAP polypeptide promotes osteogenesis in jaw bone defect repair by inhibiting inflammatory reactions[J]. Front Bioeng Biotechnol, 2022, 10: 916330.
doi: 10.3389/fbioe.2022.916330
|
| [16] |
Haugen HJ, Lyngstadaas SP, Rossi F, et al. Bone grafts: Which is the ideal biomaterial?[J]. J Clin Periodontol, 2019, 46(Suppl 21): 92-102.
doi: 10.1111/jcpe.2019.46.issue-S21
|
| [17] |
Kumar BP, Venkatesh V, Kumar KA, et al. Mandibular reconstruction: Overview[J]. J Maxillofac Oral Surg, 2016, 15(4): 425-441.
doi: 10.1007/s12663-015-0766-5
|
| [18] |
Song YP, Wang N, Shi HX, et al. Biomaterials combined with ADSCs for bone tissue engineering: Current advances and applications[J]. Regen Biomater, 2023, 10: rbad083.
|
| [19] |
Hoveidaei AH, Sadat-Shojai M, Nabavizadeh SS, et al. Clinical challenges in bone tissue engineering-A narrative review[J]. Bone, 2025, 192:117363.
doi: 10.1016/j.bone.2024.117363
|
| [20] |
Arthur A, Gronthos S. Clinical application of bone marrow mesenchymal stem/stromal cells to repair skeletal tissue[J]. Int J Mol Sci, 2020, 21(24):9759.
doi: 10.3390/ijms21249759
|
| [21] |
Zhang W, Sun T, Zhang J, et al. Construction of a.PNGicial periosteum with methacrylamide gelatin hydrogel-Wharton’s jelly based on stem cell recruitment and its application in bone tissue engineering[J]. Mater Today Bio, 2022, 18:100528.
|
| [22] |
Chai Y, Maxson RE Jr. Recent advances in craniofacial morphogenesis[J]. Dev Dyn, 2006, 235(9): 2353-2375.
doi: 10.1002/dvdy.v235:9
|
| [23] |
Endo T. Molecular mechanisms of skeletal muscle development, regeneration, and osteogenic conversion[J]. Bone, 2015, 80: 2-13.
doi: S8756-3282(15)00076-9
pmid: 26453493
|
| [24] |
Liu F, Yuan YJ, Bai L, et al. LRRc17 controls BMSC senescence via mitophagy and inhibits the therapeutic effect of BMSCs on ovariectomy-induced bone loss[J]. Redox Biol, 2021, 43: 101963.
doi: 10.1016/j.redox.2021.101963
|
| [25] |
Fu XR, Liu G, Halim A, et al. Mesenchymal stem cell migration and tissue repair[J]. Cells, 2019, 8(8): 784.
doi: 10.3390/cells8080784
|
| [26] |
Oh EJ, Lee HW, Kalimuthu S, et al. In vivo migration of mesenchymal stem cells to burn injury sites and their therapeutic effects in a living mouse model[J]. J Control Release, 2018, 279: 79-88.
doi: 10.1016/j.jconrel.2018.04.020
|
| [27] |
Li MZ, Zhu XD, Zhang MX, et al. The analgesic effect of paeoniflorin: A focused review[J]. Open Life Sci, 2024, 19(1): 20220905.
|
| [28] |
Zhou YX, Gong XH, Zhang H, et al. A review on the pharmacokinetics of paeoniflorin and its anti-inflammatory and immunomodulatory effects[J]. Biomed Pharmacother, 2020, 130: 110505.
doi: 10.1016/j.biopha.2020.110505
|