华西口腔医学杂志 ›› 2020, Vol. 38 ›› Issue (2): 198-204.doi: 10.7518/hxkq.2020.02.015
收稿日期:
2019-07-12
修回日期:
2020-01-07
出版日期:
2020-04-01
发布日期:
2020-04-15
通讯作者:
李敬
E-mail:lijing1984@scu.edu.cn
作者简介:
程俊鑫,学士,E-mail:jxcheng@stu.scu.edu.cn
基金资助:
Cheng Junxin, Bai Hetian, Chang Zhinan, Li Jing(), Chen Qianming
Received:
2019-07-12
Revised:
2020-01-07
Online:
2020-04-01
Published:
2020-04-15
Contact:
Jing Li
E-mail:lijing1984@scu.edu.cn
Supported by:
摘要:
口腔黏膜癌前病变和口腔癌是发展中国家的常见疾病尤其是在南亚地区,其癌变机制尚不明确,目前缺乏有效防治措施,因此口腔黏膜癌前病变及口腔癌动物模型建立显得尤为重要。本文结合相关研究,就近年来口腔黏膜癌前病变及口腔癌动物模型建立方法的进展作一综述。
中图分类号:
程俊鑫, 白贺天, 常治楠, 李敬, 陈谦明. 口腔黏膜癌前病变和口腔癌动物模型的研究进展[J]. 华西口腔医学杂志, 2020, 38(2): 198-204.
Cheng Junxin, Bai Hetian, Chang Zhinan, Li Jing, Chen Qianming. Development of precancerous lesions of oral mucous membrane diseases and oral cancer animal models[J]. West China Journal of Stomatology, 2020, 38(2): 198-204.
表1
OLK动物模型比较
主要方法 | 动物对象 | 处理方法 | 建模周期 | 建模成 功率/% | 模型解剖及组织 生理与人类相似 | 操作接 种简便 | 稳定性 | 癌变发 展观察 | 参考 文献 |
---|---|---|---|---|---|---|---|---|---|
化学诱导 | 5周龄金黄 地鼠 | 用0.005 g·L-1的BaP/DMBA涂抹地 鼠颊囊 | 15周 | - | × | √ | √ | √ | [13] |
6周龄小鼠 | 用0.000 1 g·L-1的4NQO采取饮药法 | 24周 | 68.6 | √ | √ | × | - | [14] | |
6周龄小鼠 | 取0.000 5 g·L-1的4NQO涂抹小鼠舌部 | 20周 | 97.1 | √ | √ | √ | √ | [14] | |
慢性刺激+ 化学诱导 | 8周龄小鼠 | 采用慢性机械刺激及50%香烟烟丝 丙酮提取液涂擦已拔髓针轻刮8周 龄的小鼠舌左侧缘及左颊部中份黏 膜处数次至发红或出现少许出血点 | 15~25周 | - | × | √ | √ | √ | [15] |
原位移植 | SCID的5~ 8周龄小鼠 | 向小鼠舌腹位置原位移植人非白色 念珠菌感染的OLK病损组织 | 8周 | 81.2 | √ | × | √ | √ | [16] |
表2
OLP建模的比较
处理方法 | 实验对象 | 效果简述 | 建模成功 | 参考文献 |
---|---|---|---|---|
向大鼠的皮下注射氯化汞水溶液,导致其出现 自身性免疫综合征,后局部涂抹氯化汞溶液 | 具有遗传易感性的棕色挪 威鼠 | 8~10周后显示有单一症状的苔藓样病变 | √ | [19] |
将人类非糜烂型OLP病损移植到小鼠的舌腹 以及背部 | SCID且NK细胞活性不强 的小鼠 | 1周出现扁平苔藓病变;2周病理特征消失 | × | [20] |
对于口腔黏膜上皮与背部皮肤的表面采用针 刺划痕法 | 金黄地鼠颊囊与背部皮肤 | 2周发现皮肤深处血管增生,炎细胞浸润; 4周发现大量炎细胞浸润,但维持时间短 | × | [22] |
将典型的扁平苔藓病灶移植到小鼠的皮肤上 | 裸鼠 | 扁平苔藓在6周之后病理特征基本消失和正 常皮肤相似,但角质层在6周后仍然是角质 化。 | × | [21] |
[1] | Rivera C . Essentials of oral cancer[J]. Int J Clin Exp Pathol, 2015,8(9):11884-11894. |
[2] | Bray F, Ferlay J, Soerjomataram I , et al. Global cancer statistics 2018: GLOBOCAN estimates of incidence and mortality worldwide for 36 cancers in 185 countries[J]. CA Cancer J Clin, 2018,68(6):394-424. |
[3] | El-Naggar AK, Chan JKC, Grandis JR , et al. WHO classification of head and neck tumours[M]. 4th ed. World Health Organization, 2017: 112-115. |
[4] | Sarode SC, Sarode GS, Tupkari JV . Oral potentially malignant disorders: precising the definition[J]. Oral Oncol, 2012,48(9):759-760. |
[5] | Rhodus NL, Kerr AR, Patel K . Oral cancer: leukoplakia, premalignancy, and squamous cell carcinoma[J]. Dent Clin North Am, 2014,58(2):315-340. |
[6] | Nogueira PA, Carneiro S, Ramos-e-Silva M . Oral lichen planus: an update on its pathogenesis[J]. Int J Dermatol, 2015,54(9):1005-1010. |
[7] | Yang SW, Lee YS, Chang LC , et al. Outcome of excision of oral erythroplakia[J]. Br J Oral Maxillofac Surg, 2015,53(2):142-147. |
[8] | Wollina U, Verma SB, Ali FM , et al. Oral submucous fibrosis: an update[J]. Clin Cosmet Investig Dermatol, 2015,8:193-204. |
[9] | Bharti S, Dogra S, Saikia B , et al. Immunofluorescence profile of discoid lupus erythematosus[J]. Indian J Pathol Microbiol, 2015,58(4):479-482. |
[10] | Lalla RV, Patton LL, Dongari-Bagtzoglou A . Oral candidiasis: pathogenesis, clinical presentation, diagnosis and treatment strategies[J]. J Calif Dent Assoc, 2013,41(4):263-268. |
[11] | de Santana Sarmento DJ, da Costa Miguel MC, Queiroz LM , et al. Actinic cheilitis: clinicopathologic profile and association with degree of dysplasia[J]. Int J Dermatol, 2014,53(4):466-472. |
[12] | World Health Organization. ICD-11 for mortality and morbidity statistics[ER/OL]. [2019-04-30]. |
[13] | 于丽媛 . 口腔黏膜白斑恶变动物模型和细胞模型建立以及大学生复发性口腔溃疡的流行病学调查[D]. 大连: 大连医科大学, 2014. |
Yu LY . Establishment of animal model and cell model for oral leukoplakia malignant transformation and epidemiological investigations of college students’ recurrent oral ulcers[D]. Dalian: Dalian Medical University, 2014. | |
[14] | 孔杰 . 4NQO诱导SD大鼠口腔白斑模型的建立及树突状细胞在模型中的表达[D]. 合肥: 安徽医科大学, 2016. |
Kong J . The Sprague-Dawley rats model with oral leukoplakia induced by 4NQO and the expression of dendritic cells in the model[D]. Hefei: Anhui Medical University, 2016. | |
[15] | 黄亚筠, 周敏, 贾问炬 , 等. 大白鼠口腔粘膜白斑动物模型实验研究[J]. 华西口腔医学杂志, 1984,2(1):24-26, 66. |
Huang YY, Zhou M, Jia WJ , et al. Experimental study on animal model of oral leukoplakia in rats[J]. West China J Stomatol, 1984,2(1):24-26, 66. | |
[16] | 王玉栋, 潘宣, 李张维 , 等. 人类口腔白斑-严重联合免疫缺陷小鼠原位移植模型的建立[J]. 实用医学杂志, 2010,26(7):1122-1124. |
Wang YD, Pan X, Li ZW , et al. Establishment of SCID mice model of orthotopic human oral leukoplakia transplantation[J]. J Pract Med, 2010,26(7):1122-1124. | |
[17] | Khudhur AS, Di Zenzo G, Carrozzo M . Oral lichenoid tissue reactions: diagnosis and classification[J]. Expert Rev Mol Diagn, 2014,14(2):169-184. |
[18] | Olson MA, Rogers RS 3rd, Bruce AJ . Oral lichen planus[J]. Clin Dermatol, 2016,34(4):495-504. |
[19] | Dunsche A, Frank MP, Lüttges J , et al. Lichenoid reactions of murine mucosa associated with amalgam[J]. Br J Dermatol, 2003,148(4):741-748. |
[20] | 杨灵澜, 叶萍, 马莉 , 等. 口腔扁平苔藓移植严重联合免疫缺陷小鼠的实验研究[J]. 实用口腔医学杂志, 2005,21(2):210-213. |
Yang LL, Ye P, Ma L , et al. Preliminary study on xenografts of oral lichen planus tissue into SCID mice[J]. J Parct Stomatol, 2005,21(2):210-213. | |
[21] | Tammi R, Hyyryläinen A, Fräki JE . Histologic characteristics of lichen planus transplanted onto nude mice and cultured in vitro[J]. Arch Dermatol Res, 1988,280(1):23-28. |
[22] | 董鑫 . 口腔扁平苔藓动物模型的建立及口腔扁平苔藓患者唾液酶、IL-18的检测及临床意义[D]. 石家庄: 河北医科大学, 2014. |
Dong X . Establishment of animal model of oral lichen planus and the detection and clinical significance of salivary enzymes, IL-18 in patients with oral lichen planus[D]. Shijiazhuang: Hebei Medical University, 2014. | |
[23] | Patil S, Rao RS, Majumdar B , et al. Clinical appearance of oral Candida infection and therapeutic strategies[J]. Front Microbiol, 2015,6:1391. |
[24] | Zhang L, Yan K, Zhang Y , et al. High-throughput synergy screening identifies microbial metabolites as combination agents for the treatment of fungal infections[J]. Proc Natl Acad Sci U S A, 2007,104(11):4606-4611. |
[25] | 黄韧 . 口腔念珠菌病动物模型的建立分析[J]. 临床和实验医学杂志, 2011,10(20):1631-1632. |
Huang R . Establishment of an animal model of oral candidiasis[J]. J Clin Exp Med, 2011,10(20):1631-1632. | |
[26] | 王乐 . 小鼠口腔阴道双部位白念珠菌感染模型的构建及不同部位来源白念珠菌的毒力差异研究[D]. 北京: 北京协和医学院中国医学科学院, 2014. |
Wang L . Establishment of a mouse model of candidiasis with concurrent oral and vaginal mucosal infection & virulence comparison of Candida albicans isolated from different human candidiasis[D]. Beijing: Chinese Academy of Medical Sciences & Peking Union Medical College, 2014. | |
[27] | 吕秋菊, 马晟利, 代雪丽 . 两种方法建立口腔念珠菌病动物模型的比较[J]. 中国实验诊断学, 2010,14(2):289-290. |
Lü QJ, Ma SL, Dai XL . Comparison of two methods for establishing oral candidiasis animal models[J]. Chin J Lab Diagn, 2010,14(2):289-290. | |
[28] | Hu Y, Farah CS, Ashman RB . Isolates of Candida albicans that differ in virulence for mice elicit strain-specific antibody-mediated protective responses[J]. Microbes Infect, 2006,8(3):612-620. |
[29] | Sumeth Perera MW, Gunasinghe D, Perera PA , et al. Development of an in vivo mouse model to study oral submucous fibrosis[J]. J Oral Pathol Med, 2007,36(5):273-280. |
[30] | 张姗姗 . 姜黄素对口腔黏膜下纤维性变SD大鼠模型抗纤维化作用及机制的研究[D]. 长沙: 中南大学, 2012. |
Zhang SS . Antifibrotic effect and mechanism of curcumin in SD rat model of oral submucous fibrosis[D]. Changsha: Central South University, 2012. | |
[31] | Della Latta V, Cecchettini A, Del Ry S , et al. Bleomycin in the setting of lung fibrosis induction: from biological mechanisms to counteractions[J]. Pharmacol Res, 2015,97:122-130. |
[32] | Follett SE, Ingersoll AD, Murray SA , et al. Interaction of Zn(II)bleomycin-A2 and Zn(II)peplomycin with a DNA hairpin containing the 5’-GT-3’ binding site in comparison with the 5’-GC-3’ binding site studied by NMR spectroscopy[J]. J Biol Inorg Chem, 2017,22(7):1039-1054. |
[33] | Ulloa L, Doody J, Massagué J . Inhibition of transforming growth factor-beta/SMAD signalling by the interferon-gamma/STAT pathway[J]. Nature, 1999,397(6721):710-713. |
[34] | Kanojia D, Vaidya MM . 4-nitroquinoline-1-oxide induced experimental oral carcinogenesis[J]. Oral Oncol, 2006,42(7):655-667. |
[35] | Hawkins BL, Heniford BW, Ackermann DM , et al. 4NQO carcinogenesis: a mouse model of oral cavity squamous cell carcinoma[J]. Head Neck, 1994,16(5):424-432. |
[36] | Nagini S, Letchoumy PV, A T , et al. Of humans and hamsters: a comparative evaluation of carcinogen activation, DNA damage, cell proliferation, apoptosis, invasion, and angiogenesis in oral cancer patients and hamster buccal pouch carcinomas[J]. Oral Oncol, 2009,45(6):e31-e37. |
[37] | 岳阳丽, 季旭东, 刘进忠 . 4NQO诱导大鼠腭黏膜癌模型建立的实验研究[J]. 暨南大学学报(医学版), 2013,34(2):139-143. |
Yue YL, Ji XD, Liu JZ . A rat model of palatal mucosa carcinoma induced by 4-nitroquinoline 1-oxide water solution[J]. J Jinan Univ (Med Ed), 2013,34(2):139-143. | |
[38] | 刘兴坤, 何荣根, 陈万涛 , 等. 4NQO诱发大鼠舌癌变细胞分化异常的超微结构观察[J]. 上海口腔医学, 2001,10(1):43-45. |
Liu XK, He RG, Chen WT , et al. Ultramicrostructural observation on epithelial cell disdifferentiation in rat tongue carcinogenesis induced by 4NQO[J]. Shanghai J Stomatol, 2001,10(1):43-45. | |
[39] | Liu L, Tang XH, Scognamiglio T , et al. Oral carcinogenesis induced by 4-nitroquinoline 1-oxide in lecithin: retinol acyltransferase gene knockout mice[J]. J Nutr Biochem, 2010,21(10):975-982. |
[40] | Lin LM, Chen YK, Lai DL , et al. Minimal arecaidine concentrations showing a promotion effect during DMBA-induced hamster cheek pouch carcinogenesis[J]. J Oral Pathol Med, 1996,25(2):65-68. |
[41] | 余苏云, 汪思亮, 贾琦 , 等. 临床前癌症模型的研究进展[J]. 肿瘤, 2017,37(8):878-882. |
Yu SY, Wang SL, Jia Q , et al. Research progress in preclinical cancer models[J]. Tumor, 2017,37(8):878-882. | |
[42] | 马树泽, 王秀平 . 舌鳞癌动物模型的建立及研究进展[J]. 口腔颌面外科杂志, 2011,21(6):443-446. |
Ma SZ, Wang XP . Advance study in model of the tougue squamous cell carcinoma[J]. J Oral Maxillofac Surg, 2011,21(6):443-446. | |
[43] | Mognetti B, Di Carlo F, Berta GN . Animal models in oral cancer research[J]. Oral Oncol, 2006,42(5):448-460. |
[44] | 田媛, 金武龙 . 口腔癌动物模型的建立及研究进展[J]. 临床口腔医学杂志, 2013,29(12):756-757. |
Tian Y, Jin WL . Establishment and research progress of oral cancer animal models[J]. J Clin Stomatol, 2013,29(12):756-757. | |
[45] | 倪春晓, 李晓光 . 口腔癌动物模型建立的研究进展[J]. 泰山医学院学报, 2012,33(4):317-320. |
Ni CX, Li XG . Research progress in the establishment of oral cancer animal models[J]. J Taishan Med Coll, 2012,33(4):317-320. | |
[46] | 郑艳利, 刘进忠 . 口腔癌动物模型的建立[J]. 国际口腔医学杂志, 2007,34(2):112-115. |
Zheng YL, Liu JZ . Establishment of animal model of oral carcinoma[J]. Int J Stomatol, 2007,34(2):112-115. | |
[47] | Wulong J, Zhou L, Xiaojian Z , et al. Establishment of a highly metastatic tongue squamous cell carcinoma cell line from New Zealand White rabbit[J]. Arch Oral Biol, 2008,53(11):1084-1090. |
[48] | Jefferis AF, Berenbaum MC . The rabbit VX2 tumour as a model for carcinomas of the tongue and larynx[J]. Acta Otolaryngol, 1989,108(1/2):152-160. |
[49] | Opitz OG, Quante M, von Werder A , et al. A mouse model of oral-esophageal carcinogenesis[J]. Onkologie, 2005,28(1):44-48. |
[50] | Caulin C, Nguyen T, Longley MA , et al. Inducible activation of oncogenic K-ras results in tumor formation in the oral cavity[J]. Cancer Res, 2004,64(15):5054-5058. |
[51] | Huang P, Tong D, Sun J , et al. Generation and characterization of a human oral squamous carcinoma cell line SCC-9 with CRISPR/Cas9-mediated deletion of the p75 neurotrophin receptor[J]. Arch Oral Biol, 2017,82:223-232. |
[52] | Jinek M, Chylinski K, Fonfara I , et al. A programmable dual-RNA-guided DNA endonuclease in adaptive bacterial immunity[J]. Science, 2012,337(6096):816-821. |
[53] | Ran FA, Hsu PD, Lin CY , et al. Double nicking by RNA-guided CRISPR Cas9 for enhanced genome editing specificity[J]. Cell, 2013,154(6):1380-1389. |
[54] | Xue W, Chen S, Yin H , et al. CRISPR-mediated direct mutation of cancer genes in the mouse liver[J]. Nature, 2014,514(7522):380-384. |
[55] | Kim D, Bae S, Park J , et al. Digenome-seq: genome-wide profiling of CRISPR-Cas9 off-target effects in human cells[J]. Nat Methods, 2015,12(3):237-243. |
[1] | 卢妍竹, 张婧琦, 赖文莉. 大鼠三叉神经痛模型中小胶质细胞激活情况及经时变化[J]. 华西口腔医学杂志, 2022, 40(6): 638-644. |
[2] | 卢倩, 郭柳媚, 毕小琴. 口腔癌患者术后吞咽障碍危险因素的系统评价[J]. 华西口腔医学杂志, 2022, 40(3): 328-334. |
[3] | 李若焓, 黄颖昭, 廖乃麟, 吴沉洲, 李一. 口腔癌细胞通过传递性内质网应激影响胰岛β细胞功能的初探[J]. 华西口腔医学杂志, 2022, 40(1): 22-31. |
[4] | 贾美娥, 李志勇, 徐凯, 王怡衡, 于菲, 何祥一. 口腔癌细胞Cal27外泌体对人正常牙龈成纤维细胞的生物学作用[J]. 华西口腔医学杂志, 2021, 39(3): 313-319. |
[5] | 刘伟, 李春洁, 李龙江. 口腔癌颌骨侵犯的分子机制研究进展[J]. 华西口腔医学杂志, 2021, 39(2): 221-226. |
[6] | 张东升, 郑家伟, 张陈平, 蔡志刚, 李龙江, 廖贵清, 尚政军, 孙沫逸, 韩正学, 尚伟, 孟箭, 龚忠诚, 黄圣运. 口腔癌合并全身系统性疾病患者的多学科协作诊疗模式专家共识[J]. 华西口腔医学杂志, 2020, 38(6): 603-615. |
[7] | 廖敏, 程磊, 周学东, 任彪. 白色念珠菌对口腔黏膜疾病恶性转化作用的研究进展[J]. 华西口腔医学杂志, 2020, 38(4): 431-437. |
[8] | 许智,吕逢源,姜二辉,赵小平,尚政军. 槟榔与细胞内活性氧及自噬的关系[J]. 华西口腔医学杂志, 2020, 38(1): 80-85. |
[9] | 赵军方,查治安,谢卫红,王海斌,李新明,孙强,孙明磊. 长链非编码RNA H19对口腔癌细胞的迁移和侵袭的影响以及分子机制[J]. 华西口腔医学杂志, 2019, 37(4): 378-383. |
[10] | 杨博,符梦凡,唐瞻贵. 槟榔碱及机械刺激构建大鼠口腔黏膜下纤维化模型[J]. 华西口腔医学杂志, 2019, 37(3): 260-264. |
[11] | 秦帅华, 李新明, 李文鹿. 口腔癌相关生存质量量表的系统性回顾研究[J]. 华西口腔医学杂志, 2018, 36(4): 410-420. |
[12] | 秦帅华, 李新明, 李文鹿. 口腔癌患者生存质量的影响因素及医学应对方式分析[J]. 华西口腔医学杂志, 2018, 36(3): 271-276. |
[13] | 王迪侃, 廖贵清. 唾液中白细胞介素与口腔癌的关系[J]. 华西口腔医学杂志, 2018, 36(3): 325-330. |
[14] | 苏花, 郭新程, 王海青. 口底癌同期并食道癌1例[J]. 华西口腔医学杂志, 2017, 35(5): 561-563. |
[15] | 王晓念, 罗奋娟, 乔翔鹤, 杨文宾, 林洁, 李春洁. 单光子发射计算机断层成像在诊断口腔癌颌骨侵犯中的价值:系统评价及Meta分析[J]. 华西口腔医学杂志, 2017, 35(4): 413-418. |
阅读次数 | ||||||||||||||||||||||||||||||||||||||||||||||||||
全文 3499
|
|
|||||||||||||||||||||||||||||||||||||||||||||||||
摘要 1157
|
|
|||||||||||||||||||||||||||||||||||||||||||||||||