[1] 王中和. 涎腺肿瘤放射治疗的新进展[J]. 口腔颌面外科杂志, 2010,20(3):153-157.
[2] Spielberger R, Stiff P, Bensinger W, et al. Palifermin for oral mucositis after intensive therapy for hematologic cancers[J]. N Engl J Med, 2004, 351(25): 2590-2598.
[3] Bektas-Kayhan K, Ozbek CD, Yazicioglu O, et al. Long-term maxillofacial effects of radiotherapy in young nasopharyngeal carcinoma patients: report of 3 cases[J]. J Clin Pediatr Dent, 2013, 37(4): 407-410.
[4] Trotti A,Colevas AD, Setser A, et al. CTCAE v3.0: development of a comprehensive grading system for the adverse effects of cancer treatment [J]. Semin Radiat Oncol, 2003, 13(3): 176-181.
[5] 赵竹陶, 王松灵, 朱宣智. 唾液量的检测[J]. 中华口腔医学杂志, 1998,33(05):61-62.
[6] Vissink A, Mitchell JB, Baum BJ, et al. Clinical management of salivary gland hypofunction and xerostomia in head-and-neck cancer patients: successes and barriers[J]. Int J Radiat Oncol Biol Phys, 2010, 78(4): 983-991.
[7] Coppes RP, Vissink A, Konings AW. Comparison of radiosensitivity of rat parotid and submandibular glands after different radiation schedules [J]. Radiother Oncol, 2002, 63(3): 321-328.
[8] Coppes RP, Zeilstra LJ, Kampinga HH, et al. Early to late sparing of radiation damage to the parotid gland by adrenergic and muscarinic receptor agonists [J]. Br J Cancer, 2001, 85(7): 1055-1063.
[9] Zeilstra LJ, Vissink A, Konings AW, et al. Radiation induced cell loss in rat submandibular gland and its relation to gland function [J]. Int J Radiat Biol, 2000, 76(3): 419-429.
[10] 陈玉成, 熊雪妍, 陈凤山, 等. 一次性18Gy放射对大鼠颌下腺损伤的实验研究[J]. 口腔颌面外科杂志, 2012, 22(5):337-341.
[11] Urek MM, Bralic M, Tomac J, et al. Early and late effects of X-irradiation on submandibular gland: a morphological study in mice[J]. Arch Med Res, 2005, 36(4): 339-343.
[12] Coppes RP, Roffel AF, Zeilstra LJ, et al. Early radiation effects on muscarinic receptor-induced secretory responsiveness of the parotid gland in the freely moving rat[J]. Radiat Res, 2000, 153(3): 339-346.
[13] Coppes RP, Zeilstra LJ, Vissink A, et al. Sialogogue-related radioprotection of salivary gland function: the degranulation concept revisited[J]. Radiat Res, 1997, 148(3): 240-247.
[14] Coppes RP, Vissink A, Zeilstra LJ, et al. Muscarinic receptor stimulation increases tolerance of rat salivary gland function to radiation damage[J]. Int J Radiat Biol, 1997, 72(5): 615-625.
[15] Vissink A, 's-Gravenmade EJ, Ligeon EE, et al. A functional and chemical study of radiation effects on rat parotid and submandibular/sublingual glands[J]. Radiat Res, 1990, 124(3): 259-265.
[16] Peter B, Van Waarde MA, Vissink A, et al, Konings AW. The role of secretory granules in radiation-induced dysfunction of rat salivary glands[J]. Radiat Res, 1995, 141(2): 176-182.
[17] Paardekooper GM, Cammelli S, Zeilstra LJ, et al. Radiation-induced apoptosis in relation to acute impairment of rat salivary gland function[J]. Int J Radiat Biol, 1998, 73(6): 641-648.
[18] Henriksson R, Frojd O, Gustafsson H, et al. Increase in mast cells and hyaluronic acid correlates to radiation-induced damage and loss of serous acinar cells in salivary glands: the parotid and submandibular glands differ in radiation sensitivity [J]. Br J Cancer, 1994, 69(2): 320-326.
[19] Franzen L, Funegard U, Sundstrom S, et al. Fractionated irradiation and early changes in salivary glands. Different effects on potassium efflux, exocytotic amylase release and gland morphology[J]. Lab Invest, 1991, 64(2): 279-283.
[20] Vissink A, Down JD, Konings AW. Contrasting dose-rate effects of gamma-irradiation on rat salivary gland function [J]. Int J Radiat Biol, 1992, 61(2): 275-282.
[21] Nagler RM. The enigmatic mechanism of irradiation-induced damage to the major salivary glands[J]. Oral Dis, 2002, 8(3): 141-146.
[22] Abok K, Brunk U, Jung B, et al. Morphologic and histochemical studies on the differing radiosensitivity of ductular and acinar cells of the rat submandibular gland[J]. Virchows Arch B Cell Pathol Incl Mol Pathol, 1984, 45(4):443-460.
[23] Nagler RM, Laufer D. Protection against irradiation-induced damage to salivary glands by adrenergic agonist administration [J]. Int J Radiat Oncol Biol Phys, 1998, 40(2): 477-481.
[24] Nagler RM. Short-and long-term functional vs morphometrical salivary effects of irradiation in a rodent model [J]. Anticancer Res, 1998, 18(1A):315-320.
[25] Nagler RM, Baum BJ, Fox PC. Effects of X irradiation on the function of rat salivary glands at 3 and 40 days [J]. Radiat Res, 1993, 136(3): 392-396.
[26] Nagler RM, Marmary Y, Fox PC, et al. Irradiation-induced damage to the salivary glands: the role of redox-active iron and copper [J]. Radiat Res, 1997, 147(7): 468-476.
[27] Hanks CT, Chakrabarti SG. Biochemical and morphological studies of rat submandibular gland: I. Centrifugal fractionation of granule-rich fraction[J]. J Dent Res, 1975, 54(5): 938-947.
[28] Nieuw Amerongen AV, Oderkerk C, de Lange GL, et al. Biochemical characteristics and protein composition of murine saliva evoked in vivo by receptor-selective agonists [J]. J Biol Buccale, 1985,13(2): 167-178.
[29] Avila JL, Grundmann O, Burd R, et al. Radiation-induced salivary gland dysfunction results from p53-dependent apoptosis[J]. Int J Radiat Oncol Biol Phys, 2009,73(2):523-529.
[30] O'Connell AC, Redman RS, Evans RL, et al. Radiation-induced progressive decrease in fluid secretion in rat submandibular glands is related to decreased acinar volume and not impaired calcium signaling[J]. Radiat Res, 1999, 151(2): 150-158.
[31] Gresz V, Kwon TH, Hurley PT, et al. Identification and localization of aquaporin water channels in human salivary glands[J]. Am J Physiol Gastrointest Liver Physiol, 2001, 281(1): G247-G254.
[32] Li Z, Zhao D, Gong B, et al. Decreased saliva secretion and down-regulation of AQP5 in submandibular gland in irradiated rats [J]. Radiat Res, 2006, 165(6): 678-687.
[33] Li X, Azlina A, Karabasil MR, et al. Degradation of submandibular gland AQP5 by parasympathetic denervation of chorda tympani and its recovery by cevimeline, an M3 muscarinic receptor agonist[J]. Am J Physiol Gastrointest Liver Physiol, 2008, 295(1): G112-G123.
[34] Beroukas D, Hiscock J, Gannon BJ, et al. Selective down-regulation of aquaporin-1 in salivary glands in primary Sjogren's syndrome[J]. Lab Invest, 2002, 82(11):1547-1552.
[35] Delporte C, O'Connell BC, He X, et al. Increased fluid secretion after adenoviral-mediated transfer of the aquaporin-1 cDNA to irradiated rat salivary glands [J]. Proc Natl Acad Sci U S A, 1997, 94(7): 3268-3273.
[36] Shan Z, Li J, Zheng C, et al. Increased fluid secretion after adenoviral-mediated transfer of the human aquaporin-1 cDNA to irradiated miniature pig parotid glands [J]. Mol Ther, 2005, 11(3): 444-451.
[37] Nakamura M, Saga T, Watanabe K, et al. An immunohistochemistry-based study on aquaporin (AQP)-1, 3, 4, 5 and 8 in the parotid glands, submandibular glands and sublingual glands of Sjogren's syndrome mouse modelschronically administered cevimeline[J]. Kurume Med J, 2013, 60(1): 7-19.
[38] Takagi K, Yamaguchi K, Sakurai T, et al. Secretion of saliva in X-irradiated rat submandibular glands[J]. Radiat Res, 2003, 159(3): 351-360.
[39] Takakura K, Takaki S, Takeda I, et al. Effect of cevimeline on radiation-induced salivary gland dysfunction and AQP5 in submandibular gland in mice[J]. Bull Tokyo Dent Coll, 2007, 48(2): 47-56.
[40] Yamamura Y, Aota K, Yamanoi T, et al. DNA demethylating agent decitabine increases AQP5 expression and restores salivary function [J]. J Dent Res, 2012, 91(6): 612-617.
[41] Ma T, Song Y, Gillespie A, et al. Defective secretion of saliva in transgenic mice lacking aquaporin-5 water channels [J]. J Biol Chem, 1999, 274(29): 20071-20074.
[42] Wang D, Iwata F, Muraguchi M, et al. Correlation between salivary secretion and salivary AQP5 levels in health and disease [J]. J Med Invest, 2009, 56 Suppl: 350-353.
[43] Susa T, Sawai N, Aoki T, et al. Effects of repeated administration of pilocarpine and isoproterenol on aquaporin-5 expression in rat salivary glands [J]. Acta Histochem Cytochem, 2013, 46(6): 187-197.
[44] Paris F, Fuks Z, Kang A, et al. Endothelial apoptosis as the primary lesion initiating intestinal radiation damage in mice[J]. Science, 2001, 293(5528):293-297.
[45] Cotrim AP, Sowers A, Mitchell JB, et al. Prevention of irradiation-induced salivary hypofunction by microvessel protection in mouse salivary glands[J]. Mol Ther, 2007, 15(12):2101-2106.
[46] Xu J, Yan X, Gao R, et al. Effect of irradiation on microvascular endothelial cells of parotid glands in the miniature pig[J]. Int J Radiat Oncol Biol Phys, 2010, 78(3):897-903.
[47] 霍文艳, 颜兴, 郝龙英, 等. 血管内皮生长因子对小型猪腮腺放射性损伤影响的实验研究[J]. 中华老年口腔医学杂志, 2010, 8(2):102-106.
[48] Konings AW, Coppes RP, Vissink A. On the mechanism of salivary gland radiosensitivity[J]. Int J Radiat Oncol Biol Phys, 2005, 62(4): 1187-1194
[49] 王艳. 干细胞对小鼠涎腺放射损伤的预防实验研究[D]. 西安: 第四军医大学, 2013.
[50] Khalili S, Liu Y, Kornete M, et al. Mesenchymal stromal cells improve salivary function and reduce lymphocytic infiltrates in mice with Sjogren's-like disease[J]. PLoS One, 2012, 7(6):e38615.
[51] Xu J, Wang D, Liu D, et al. Allogeneic mesenchymal stem cell treatment alleviates experimental and clinical Sjogren syndrome[J]. Blood, 2012, 120(15):3142-3151.
[52] Friedrich RE, Bartel-Friedrich S, Holzhausen HJ, et al. The effect of external fractionated irradiation on the distribution pattern of extracellular matrix proteins in submandibular salivary glands of the rat[J]. J Craniomaxillofac Surg, 2002, 30(4):246-254.
[53] Janebodin K, Buranaphatthana W, Ieronimakis N, et al. An in vitro culture system for long-term expansion of epithelial and mesenchymal salivary gland cells: role of TGF-beta1 in salivary gland epithelial and mesenchymal differentiation[J]. Biomed Res Int, 2013,2013:815895.
[54] 许礼平, 杨曦, 赵奎领, 等. 辛伐他汀减轻放射性唾液腺损伤的研究[J]. 医学研究生学报, 2013, 26(8):794-797. |