[1] |
唇腭裂多学科协作诊疗专家组. 唇腭裂孕前-产前-产后多学科协作诊疗流程专家共识[J]. 中华口腔医学杂志,2021,56(11):1059-1065.
|
[2] |
Amasdl S, Natiq A, Sbiti A, et al. 20p12.3 deletion is rare cause of syndromic cleft palate: case report and review of literature[J]. BMC Res Notes,2016,9:1-4.
|
[3] |
Panamonta V, Pradubwong S, Panamonta M, et al. Global birth prevalence of orofacial clefts: a systematic review[J]. J Med Assoc Thai,2015,98 Suppl 7:S11-21.
|
[4] |
Wang M, Yuan Y, Wang Z, et al. Prevalence of orofacial clefts among live births in China: a systematic review and meta-analysis[J]. Birth Defects Res,2017,109(13):1011-1019.
|
[5] |
孙嘉琳,林岩松,石冰,等. 5种常见综合征型唇腭裂遗传学研究进展[J]. 国际口腔医学杂志,2021,48(6):718-724.
|
[6] |
Mossey PA, Little J, Munger RG, et al. Cleft lip and palate[J]. Lancet,2009,374(9703):1773-1785.
|
[7] |
Gundlach KK, Maus C. Epidemiological studies on the frequency of clefts in Europe and world-wide[J]. J Craniomaxillofac Surg,2006,34 Suppl 2:1-2.
|
[8] |
Vyas T, Gupta P, Kumar S, et al. Cleft of lip and palate: a review[J]. J Family Med Prim Care,2020,9(6):2621-2625.
|
[9] |
Banerjee M, Dhakar AS. Epidemiology-clinical profile of cleft lip and palate among children in India and its surgical consideration[J/OL]. CIBTech J Surg,2013,2(1):1-7.
|
[10] |
薛恩慈,王斯悦,郑鸿尘,等. 非综合征型单纯腭裂遗传流行病学研究进展[J]. 中华流行病学杂志,2021,42(6):1133-1138.
|
[11] |
Zhang Q, Yue Y, Shi B, et al. A bibliometric analysis of cleft lip and palate-related publication trends from 2000 to 2017[J]. Cleft Palate Craniofac J,2019,56(5):658-669.
|
[12] |
Thompson J, Mendoza F, Tan E, et al. A cleft lip and palate gene, Irf6, is involved in osteoblast differentiation of craniofacial bone[J]. Dev Dyn,2019,248(3):221-232.
|
[13] |
Neves LT, Dionísio TJ, Garbieri TF, et al. Novel rare variations in IRF6 in subjects with non-syndromic cleft lip and palate and dental agenesis[J]. Oral Dis,2019,25(1):223-233.
|
[14] |
Nakatomi M, Ludwig KU, Knapp M, et al. Msx1 deficiency interacts with hypoxia and induces a morphogenetic regulation during mouse lip development[J]. Development, 2020,147(21):1-13.
|
[15] |
Lancia M, Machado RA, Dionísio TJ, et al. Association between MSX1 rs12532 polymorphism with nonsyndromic unilateral complete cleft lip and palate and tooth agenesis[J]. Arch Oral Biol,2020,109:1-5.
|
[16] |
Tasanarong P, Pabalan N, Tharabenjasin P, et al. MSX1 gene polymorphisms and non-syndromic cleft lip with or without palate (NSCL/P): a meta-analysis[J]. Oral Dis,2019,25(6):1492-1501.
|
[17] |
Ardinger HH, Buetow KH, Bell GI, et al. Association of genetic variation of the transforming growth factor-alpha gene with cleft lip and palate[J]. Am J Hum Genet,1989,45(3):348-353.
|
[18] |
Sull JW, Liang KY, Hetmanski JB, et al. Evidence that TGFA influences risk to cleft lip with/without cleft palate through unconventional genetic mechanisms[J]. Hum Genet,2009,126(3):385-394.
|
[19] |
Bodo M, Baroni T, Carinci F, et al. TGFbeta isoforms and decorin gene expression are modified in fibroblasts obtained from non-syndromic cleft lip and palate subjects[J]. J Dent Res,1999,78(12):1783-1790.
|
[20] |
Lu XC, Yu W, Tao Y, et al. Contribution of transforming growth factor α polymorphisms to nonsyndromic orofacial clefts: a HuGE review and meta-analysis[J]. Am J Epidemiol,2014,179(3):267-281.
|
[21] |
Aberg T, Cavender A, Gaikwad JS, et al. Phenotypic changes in dentition of Runx2 homozygote-null mutant mice[J]. J Histochem Cytochem,2004,52(1):131-139.
|
[22] |
Sull JW, Liang KY, Hetmanski JB, et al. Differential parental transmission of markers in RUNX2 among cleft case-parent trios from four populations[J]. Genet Epidemiol,2008,32(6):505-512.
|
[23] |
Yan F, Simon LM, Suzuki A, et al. Spatiotemporal microRNA-gene expression network related to orofacial clefts[J]. J Dent Res,2022,101(11):1398-1407.
|
[24] |
Castilla EE, Lopez-Camelo JS, Campaña H. Altitude as a risk factor for congenital anomalies[J]. Am J Med Genet,1999,86(1):9-14.
|
[25] |
Poletta FA, Castilla EE, Orioli IM, et al. Regional analysis on the occurrence of oral clefts in South America[J]. Am J Med Genet A,2007,143A(24):3216-3227.
|
[26] |
Millicovsky G, Johnston MC. Hyperoxia and hypoxia in pregnancy: simple experimental manipulation alters the incidence of cleft lip and palate in CL/Fr mice[J]. Proc Natl Acad Sci U S A,1981,78(9):5722-5723.
|
[27] |
Sabbagh HJ, Hassan MH, Innes NP, et al. Passive smoking in the etiology of non-syndromic orofacial clefts: a systematic review and meta-analysis[J]. PLoS One,2015,10(3):1-21.
|
[28] |
Fell M, Dack K, Chummun S, et al. Maternal cigarette smoking and cleft lip and palate: a systematic review and meta-analysis[J]. Cleft Palate Craniofac J,2022,59(9):1185-1200.
|
[29] |
Wyszynski DF, Duffy DL, Beaty TH. Maternal cigarette smoking and oral clefts: a meta-analysis[J]. Cleft Palate Craniofac J,1997,34(3):206-210.
|
[30] |
McRonald FE, Morris MR, Gentle D, et al. CpG methylation profiling in VHL related and VHL unrelated renal cell carcinoma[J]. Mol Cancer,2009,8:1-11.
|
[31] |
Chakraborty AA, Laukka T, Myllykoski M, et al. Histone demethylase KDM6A directly senses oxygen to control chromatin and cell fate[J]. Science,2019,363(6432):1217-1222.
|
[32] |
Batie M, Frost J, Frost M, et al. Hypoxia induces rapid changes to histone methylation and reprograms chromatin[J]. Science,2019,363(6432):1222-1226.
|
[33] |
Wright CY, Kapwata T, Wernecke B, et al. The Risk of orofacial cleft lip/palate due to maternal ambient air pollution exposure: a call for further research in South Africa[J]. Ann Glob Health,2023,89(1):1-13.
|
[34] |
Ni W, Yang W, Yu J, et al. Association between selected essential trace element concentrations in umbilical cord and risk for cleft lip with or without cleft palate: a case-control study[J]. Sci Total Environ,2019,661:196-202.
|
[35] |
Li Y, Qiu S, Shi J, et al. Association between MTHFR C677T/A1298C and susceptibility to autism spectrum disorders: a meta-analysis[J]. BMC Pediatr,2020,20(1):1-44.
|
[36] |
Shu X, Shu S, Yang L. Association between methylenetetrahydrofolate reductase polymorphisms and non-syndromic cleft lip with or without palate susceptibility: an updated systematic review and meta-analysis[J]. Br J Oral Maxillofac Surg,2019,57(9):819-830.
|
[37] |
Jugessur A, Lie RT, Wilcox AJ, et al. Cleft palate, transforming growth factor alpha gene variants, and maternal exposures: assessing gene-environment interactions in case-parent triads[J]. Genet Epidemiol,2003,25(4):367-374.
|
[38] |
Shi FP, Huang YY, Dai QQ, et al. Maternal common cold or fever during pregnancy and the risk of orofacial clefts in the offspring: a systematic review and meta-analysis[J]. Cleft Palate Craniofac J,2023,60(4):446-453.
|
[39] |
Shahrukh HS, Gallaway MS, Waller DK, et al. Maternal fever during early pregnancy and the risk of oral clefts[J]. Birth Defects Res A Clin Mol Teratol,2010,88(3):186-194.
|
[40] |
Murphy VE, Schatz M. Asthma in pregnancy: a hit for two[J]. Eur Respir Rev,2014,23(131):64-68.
|
[41] |
Abbott BD, Harris MW, Birnbaum LS. Comparisons of the effects of TCDD and hydrocortisone on growth factor expression provide insight into their interaction in the embryonic mouse palate[J]. Teratology,1992,45(1):35-53.
|
[42] |
Puhó EH, Szunyogh M, Métneki J, et al. Drug treatment during pregnancy and isolated orofacial clefts in hungary[J]. Cleft Palate Craniofac J,2007,44(2):194-202.
|
[43] |
Liang Y, Chen L, Yu H, et al. Which type of congenital malformations is significantly increased in singleton pregnancies following after in vitro fertilization/intracytoplasmic sperm injection: a systematic review and meta-analysis[J]. Oncotarget,2018,9(3):4267-4278.
|