Journal of Oral Science Research ›› 2021, Vol. 37 ›› Issue (3): 185-190.DOI: 10.13701/j.cnki.kqyxyj.2021.03.001
NIU Yumei*, SUN Xiangyu
Received:
2020-12-21
Published:
2021-03-19
NIU Yumei, SUN Xiangyu. Research Progress and Application Prospect of Dental Pulp Stem Cells in Repairing Facial Nerve Injury[J]. Journal of Oral Science Research, 2021, 37(3): 185-190.
[1] Takezawa K, Townsend G, Ghabriel M. The facial nerve: anatomy and associated disorders for oral health professionals [J]. Odontology, 2018,106(2):103-116. [2] Modrak M, Talukder MAH, Gurgenashvili K, et al. Peripheral nerve injury and myelination: potential therapeutic strategies [J]. J Neurosci Res, 2020, 98(5): 780-795. [3] 沈志森,张宇园,王侃,等. 面神经减压治疗周围性面瘫32例临床分析[J].临床耳鼻喉科头颈外科杂志,2009,23(1):21-23. [4] Radwan AM, Boxx C, Zuniga J. Post-traumatic injuries of the trigeminal and facial nerve [J]. Atlas Oral Maxillofac Surg Clin North Am, 2019, 27(2) :127-133. [5] Wang TV, Delaney S, Pepper JP. Current state of stem cell-mediated therapies for facial nerve injury [J]. Curr Opin Otolaryngol Head Neck Surg, 2016, 24(4):285-293. [6] Sun Z, Wei W, Liu H, et al. Acute response of neurons: an early event of neuronal cell death after facial nerve injury [J]. World Neurosurg, 2018, 109 :e252-e257. [7] 陆艳,迟放鲁,赵霞,等.丝素导管修复面神经缺损的实验研究[J].中华耳鼻喉头颈外科杂志,2006,41(8):603-606. [8] Hannila SS, Kawaja MD. Nerve growth factor-mediated collateral sprouting of central sensory axons into deafferentated regions of the dorsal horn is enhanced in the absence of the p75 neurotrophin receptor [J]. J Comp Neurol, 2005, 486(4):331-343. [9] Gronthos S, Mankani M, Brahim J, et al. Postnatal human dental pulp stem cells (DPSCs) in vitro and in vivo [J]. Proc Natl Acad Sci U S A, 2000, 97(25):13625-13630. [10] Heng BC, Lim LW, Wu W, et al. An overview of protocols for the neural induction of dental and oral stem cells in vitro [J]. Tissue Eng Part B Rev, 2016, 22(3):220-250. [11] Ahmed E, Murakami M, Hirose Y, et al. Therapeutic potential of dental pulp stem cell secretome for Alzheimer's disease treatment: an in vitro study [J]. Stem Cells Int, 2016, 2016:8102478. [12] Mead B, Hill LJ, Blanch RJ, et al. Mesenchymal stromal cell mediated neuroprotection and functional preservation of retinal ganglion cells in a rodent model of glaucoma [J]. Cytotherapy, 2016, 18(4):487-496. [13] Martens W, Wolfs E, Struys T, et al. Expression pattern of basal markers in human dental pulp stem cells and tissue [J]. Cells Tissues Organs, 2012, 196(6):490-500. [14] Mayo V, Sawatari Y, Huang CY, et al. Neural crest-derived dental stem cells-Where we are and where we are going [J]. J Dent, 2014, 42(9):1043-1051. [15] Gervois P, Wolfs E, Dillen Y, et al. Paracrine maturation and migration of SH-SY5Y cells by dental pulp stem cells [J]. J Dent Res, 2017, 96(6):654-662. [16] Hidalgo San Jose L, Stephens P, Song B, et al. Microfluidic encapsulation supports stem cell viability, proliferation, and neuronal differentiation [J]. Tissue Eng Part C Methods, 2018, 24(3):158-170. [17] Yamamoto A, Sakai K, Matsubara K, et al. Multifaceted neuro-regenerative activities of human dental pulp stem cells for functional recovery after spinal cord injury [J]. Neurosci Res, 2014, 78:16-20. [18] Yang C, Li X, Sun L, et al. Potential of human dental stem cells in repairing the complete transection of rat spinal cord [J]. J Neural Eng, 2017, 14(2):026005. [19] Zhang J, Lu X, Feng G, et al. Chitosan scaffolds induce human dental pulp stem cells to neural differentiation: potential roles for spinal cord injury therapy [J]. Cell Tissue Res, 2016, 366(1):129-142. [20] Lemmens R, Steinberg GK. Stem cell therapy for acute cerebral injury: what do we know and what will the future bring? [J]. Curr Opin Neurol, 2013, 26(6):617-625. [21] Yang KL, Chen MF, Liao CH, et al. A simple and efficient method for generating Nurr1-positive neuronal stem cells from human wisdom teeth (tNSC) and the potential of tNSC for stroke therapy [J]. Cytotherapy, 2009,11(5): 606-617. [22] Leong WK, Henshall TL, Arthur A, et al. Human adult dental pulp stem cells enhance poststroke functional recovery through non-neural replacement mechanisms [J]. Stem Cells Transl Med, 2012, 1(3):177-187. [23] Leong WK, Lewis MD, Koblar SA. Concise review: preclinical studies on human cell-based therapy in rodent ischemic stroke models: where are we now after a decade? [J]. Stem Cells, 2013, 31(6) :1040-1043. [24] Song M, Jue SS, Cho YA, et al. Comparison of the effects of human dental pulp stem cells and human bone marrow-derived mesenchymal stem cells on ischemic human astrocytes in vitro [J]. J Neurosci Res, 2015, 93(6): 973-983. [25] Wang F, Jia Y, Liu J, et al. Dental pulp stem cells promote regeneration of damaged neuron cells on the cellular model of Alzheimer's disease[J]. Cell Biol Int, 2017, 41(6):639-650. [26] Dauer W, Przedborski S. Parkinson’s disease: mechanisms and models [J]. Neuron, 2003, 39(6): 889-909. [27] Wang Y, Chen S, Yang D, et al. Stem cell transplantation: a promising therapy for Parkinson’s disease [J]. J Neuroimmune Pharmacol, 2007, 2(3):243-250. [28] Kanafi M, Majumdar D, Bhonde R, et al. Midbrain cues dictate differentiation of human dental pulp stem cells towards functional dopaminergic neurons [J]. J Cell Physiol, 2014, 229(10): 1369-1377. [29] Gnanasegaran N, Govindasamy V, Simon C, et al. Effect of dental pulp stem cells in MPTP-induced old-aged mice model [J]. Eur J Clin Invest, 2017, 47(6):403-414. [30] Gnanasegaran N, Govindasamy V, Mani V, et al. Neuroimmunomodulatory properties of DPSCs in an in vitro model of Parkinson’s disease [J]. IUBMB Life, 2017, 69(9):689-699. [31] Fujii H, Matsubara K, Sakai K, et al. Dopaminergic differentiation of stem cells from human deciduous teeth and their therapeutic benefits for Parkinsonian rats [J]. Brain Res, 2015 ,1613:59-72. [32] Faroni A, Mobasseri SA, Kingham PJ, et al. Peripheral nerve regeneration: experimental strategies and future perspectives [J]. Adv Drug Deliv Rev, 2015, 82-83:160-167. [33] Gärtner A, Amorim I, Almeida A, et al. Promoting nerve regeneration in a neurotmesis rat model using poly(DL-lac- tide-ε-caprolactone) membranes and mesenchymal stem cells from the Wharton’s jelly: in vitro and in vivo analysis [J]. Biomed Res Int, 2014, 2014:302659. [34] Sanen K, Martens W, Georgiou M, et al. Engineered neural tissue with Schwann cell differentiated human dental pulp stem cells: potential for peripheral nerve repair? [J]. J Tissue Eng Regen Med, 2017,11(12):3362-3372. [35] Carnevale G, Pisciotta A, Riccio M, et al. Human dental pulp stem cells expressing STRO-1, c-kit and CD34 markers in peripheral nerve regeneration [J]. J Tissue Eng Regen Med, 2017, 12(2):e774-e785. [36] Askari N, Yaghoobi MM, Shamsara M, et al. Tetracycline-regulated expression of OLIG2 gene in human dental pulp stem cells lead to mouse sciatic nerve regeneration upon transplantation [J]. Neuroscience, 2015, 305:197-208. [37] Martens W, Bronckaers A, Politis C, et al. Dental stem cells and their promising role in neural regeneration: an update [J]. Clin Oral Invest, 2013,17(9):1969-1983. [38] Omi M, Hata M, Nakamura N, et al. Transplantation of dental pulp stem cells improves long-term diabetic polyneuropathy together with improvement of nerve morphometrical evaluation [J]. Stem Cell Res Ther, 2017, 8(1): 279. [39] Kolar MK, Itte VN, Kingham PJ, et al. The neurotrophic effects of different human dental mesenchymal stem cells [J]. Sci Rep, 2017, 7(1): 12605. [40] Ng TK, Yang Q, Fortino VR, et al. MicroRNA-132 directs human periodontal ligament-derived neural crest stem cell neural differentiation [J]. J Tissue Eng Regen Med, 2019, 13(1):12-24. [41] Raza SS, Wagner AP, Hussain YS, et al. Mechanisms underlying dental-derived stem cell-mediated neurorestoration in neurodegenerative disorders [J]. Stem Cell Res Ther, 2018, 9(1): 245. [42] Kolar MK, Itte VN, Kingham PJ, et al. The neurotrophic effects of different human dental mesenchymal stem cells [J]. Sci Rep, 2017, 7(1):12605. [43] Yamamoto T, Osako Y, Ito M, et al. Trophic effects of dental pulp stem cells on Schwann cells in peripheral nerve regeneration [J]. Cell Transplant, 2016, 25(1):183-193. [44] Nicola FDC, Marques MR, Odorcyk F, et al. Neuroprotector effect of stem cells from human exfoliated deciduous teeth transplanted after traumatic spinal cord injury involves inhibition of early neuronal apoptosis [J]. Brain Res, 2017, 1663: 95-105. [45] Luo L, He Y, Wang X, et al. Potential roles of dental pulp stem cells in neural regeneration and repair [J]. Stem Cells Int, 2018, 2018:1731289. [46] Nicola F, Marques MR, Odorcyk F, et al. Neuroprotector effect of stem cells from human exfoliated deciduous teeth transplanted after traumatic spinal cord injury involves inhibition of early neuronal apoptosis [J]. Brain Res, 2017, 1663: 95-105. [47] Chiu HY, Lin CH, Hsu CY et al. IGF1R+ Dental pulp stem cells enhanced neuroplasticity in hypoxia-ischemia model [J]. Mol Neurobiol, 2017, 54(10): 8225-8241. [48] Sasaki R, Matsumine H, Watanabe Y, et al. Electrophysiologic and functional evaluations of regenerated facial nerve defects with a tube containing dental pulp cells in rats [J]. Plast Reconstr Surg, 2014,134(5):970-978. [49] Sasaki R, Aoki S, Yamato M, et al. Tubulation with dental pulp cells promotes facial nerve regeneration in rat [J]. Tissue Eng Part A, 2008, 14(7):1141-1147. [50] Sasaki R, Aoki S, Yamato M, et al. PLGA artificial nerve conduits with dental pulp cells promote facial nerve regeneration [J]. J Tissue Eng Regen Med, 2011, 5 (10):823-830. [51] 陈彪,张睿,张文娟,等.牙髓干细胞对兔面神经损伤的修复作用及其机制[J].吉林大学学报(医学版), 2018, 44(3): 504-509+695. [52] Zhao Y, Wang Y, Gong J, et al. Chitosan degradation products facilitate peripheral nerve regeneration by improving macrophage-constructed microenvironments [J]. Biomaterials, 2017,134:64-77. [53] Li X, Yang C, Li L, et al. A therapeutic strategy for spinal cord defect: human dental follicle cells combined with aligned PCL/PLGA electrospun material [J]. Biomed Res Int, 2015, 2015:197183. [54] Sasaki R. Regeneration of facial nerve defects using a silicone tube filled with dental pulp cells [J]. J Oral Maxillofac Surg, 2007, 65: 40.e1-40.e2. [55] Das S, Bellare JR. Dental pulp stem cells in customized 3D nanofibrous scaffolds for regeneration of peripheral nervous system [J]. Methods Mol Bio, 2020, 2125:157-166. [56] Sugiyama K, Nagashima K, Miwa T, et al. FGF2-responsive genes in human dental pulp cells assessed using a rat spinal cord injury model [J]. J Bone Miner Metab, 2019, 37(3):467-474. [57] Mead B, Logan A, Berry M, et al. Intravitreally transplanted dental pulp stem cells promote neuroprotection and axon regeneration of retinal ganglion cells after optic nerve injury [J]. Invest Ophthalmol Vis Sci, 2013, 54(12): 7544-7556. |
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