儿童短肢型遗传性骨代谢性疾病的临床分析及基因诊断

黎芳,麻宏伟,宋莹,胡曼,任爽,宇亚芬,赵桂杰

中国当代儿科杂志 ›› 2013, Vol. 15 ›› Issue (11) : 932-936.

PDF(1855 KB)
PDF(1855 KB)
中国当代儿科杂志 ›› 2013, Vol. 15 ›› Issue (11) : 932-936. DOI: 10.7499/j.issn.1008-8830.2013.11.003
遗传性疾病专题

儿童短肢型遗传性骨代谢性疾病的临床分析及基因诊断

  • 黎芳,麻宏伟,宋莹,胡曼,任爽,宇亚芬,赵桂杰
作者信息 +

Clinical analysis and genetic diagnosis of short-limb inherited short stature diseases in children

  • LI Fang, MA Hong-Wei, SONG Ying, HU Man, REN Shuang, YU Ya-Fen, ZHAO Gui-Jie
Author information +
文章历史 +

摘要

目的:分析软骨发育不全(ACH)、软骨发育低下(HCH)及假性软骨发育不全(PSACH)3种短肢型遗传性骨代谢性疾病的临床表现、骨骼X线表现及基因结果。方法:对基因确诊的10例短肢型遗传性骨代谢性疾病患儿(其中4例为ACH,3例为HCH,3例为PSACH)的临床特点、骨骼X线表现及基因结果进行分析。结果:10例患儿的平均身高为-3.69±1.79 SD,平均坐高/身高比值为0.65±0.03,平均指间距/身高比值为0.93±0.04。4例ACH患儿及3例PSACH患儿具有典型骨骼X线表现,3例HCH患儿中1例表现为坐骨大切迹变小,1例表现为椎弓根间距未增宽。4例ACH患儿中3例检测到FGFR3基因G380R突变,1例检测到Y278C突变;3例HCH患儿均检测到FGFR3基因N540K突变;3例PSACH患儿检测到COMP基因的杂合突变。结论:ACH及PSACH患儿的矮小程度及骨骼畸形程度较HCH患儿重,HCH患儿临床表现轻,不典型;骨骼X线及基因分析有助于3种疾病的诊断及鉴别诊断;3种疾病涉及2个基因,分别有各自的突变热点,有利于临床基因诊断。

Abstract

OBJECTIVE: To analyze the clinical manifestations, bone X-ray findings and genetic analysis results of three short-limb inherited short stature diseases: achondroplasia (ACH), hypochondroplasia (HCH) and pseudoachondroplasia (PSACH). METHODS: The clinical manifestations, bone X-ray findings, and genetic analysis results of 10 children with genetically confirmed short-limb inherited short stature diseases, including 4 cases of ACH 3 cases of HCH, and 3 cases of PSACH, were analyzed. RESULTS: The 10 patients had a mean body height of -3.69±1.79?SD, a mean sitting height/standing height ratio of 0.65±0.03, and a mean finger spacing/body height ratio of 0.93±0.04. Four ACH cases and 3 PSACH cases showed typical bone X-ray findings; one HCH case showed a smaller sciatic notch, and another HCH case showed no widening of interpedicular distance. G380R mutation in FGFR3 gene was detected in 3 of 4 ACH cases, and Y278C mutation in the other ACH case, N540K mutation in FGFR3 gene was detected in 3 HCH cases, and heterozygous mutations in COMP gene were detected in 3 PSACH cases. CONCLUSIONS: Children with ACH and PSACH have severer short stature and skeletal deformities than children with HCH, who have mild, atypical clinical manifestations. Bone X-ray and genetic analysis are helpful for the diagnosis and differential diagnosis of the three diseases. The mutational hotspots in two genes are involved in the three diseases, which is conducive to clinical genetic diagnosis.

关键词

软骨发育不全 / 软骨发育低下 / 假性软骨发育不全 / 基因分析 / 儿童

Key words

Achondroplasia / Hypochondroplasia / Pseudoachondroplasia / Genetic analysis, Child

引用本文

导出引用
黎芳,麻宏伟,宋莹,胡曼,任爽,宇亚芬,赵桂杰. 儿童短肢型遗传性骨代谢性疾病的临床分析及基因诊断[J]. 中国当代儿科杂志. 2013, 15(11): 932-936 https://doi.org/10.7499/j.issn.1008-8830.2013.11.003
LI Fang, MA Hong-Wei, SONG Ying, HU Man, REN Shuang, YU Ya-Fen, ZHAO Gui-Jie. Clinical analysis and genetic diagnosis of short-limb inherited short stature diseases in children[J]. Chinese Journal of Contemporary Pediatrics. 2013, 15(11): 932-936 https://doi.org/10.7499/j.issn.1008-8830.2013.11.003

参考文献

[1] Trotter TL. Health supervision for children with achondroplasia[J]. Pediatrics, 2005, 116(3): 771-783.

[2] McKeand J, Rotta J, Hecht JT. Natural history study of pseudoachondroplasia[J]. Am J Med Genet, 1996, 63: 406-410.

[3] Korkmaz HA, Hazan F, Dizdarer C, Tukun A. Hypochondroplasia in a child with 1620c>G (Asn540lys) mutation in FGFR3[J]. J Clin Res Pediatr Endocrinol, 2012, 4(4): 220-222.

[4] 赵宏, 赵润博.小儿软骨发育不全的X线分析[J].中国医学影像技术, 2007, 23 (10): 1581-1582.

[5] 伍金林, 陈娟, 丘力, 弓晓媛. 新生儿磷酸酶过少症[J]. 中国当代儿科杂志, 2008, 10(3): 301-303.

[6] Song SH, Balce GC, Agashe MV, Lee H, Hong SJ, Park YE, et al. New proposed clinico-radiologic and molecular criteria in hypochondroplasia: FGFR 3 gene mutations are not the only cause of hypochondroplasia[J]. Am J Med Genet A, 2012, 158A(10): 2456-2462.

[7] Satiroglu-Tufan NL, Tufan AC, Semerci CN, Bagci H. Accurate diagnosis of a homozygous G1138A mutation in the fibroblast growth factor receptor 3 gene responsible for achondroplasia[J]. Tohoku J Exp Med, 2006, 208(2): 103-107.

[8] Placone J, Hristova K. Direct assessment of the effect of the Gly380Arg achondroplasia mutation on FGFR3 dimerization using quantitative imaging FRET[J]. PLoS ONE, 2012, 7(10): e46678. 

[9] Heuertz S, Le Merrer M, Zabel B, Wright M, Legeai-Mallet L, Cormier-Daire V, et al. Novel FGFR3 mutations creating cysteine residues in the extracellular domain of the receptor cause achondroplasia or severe forms of hypochondroplasia[J]. Eur J Hum Genet, 2006, 14(12): 1240-1247.

[10] Bober MB, Bellus GA, Nikkel SM, Tiller GE. Hypochondrop-lasia[M] // Pagon RA, Adam MP, Bird TD, Dolan CR, Fong CT, Stephens K. GeneReviewsTM[internet]. Seattle(WA): University of Washington, Seattle; 1993-2013[updated 2013 Sep 26].

[11] Xie X, Liao L, Gao J, Luo X. A novel COMP mutation in a Chinese patient with pseudoachondroplasia[J]. Gene, 2013, 522(1): 102-106.

[12] Mabuchi A, Haga N, Ikeda T, Manabe N, Ohashi H, Takatori Y, et al. Novel mutation in exon 18 of the cartilage oligomeric matrix protein gene causes a severe pseudoachondroplasia[J]. Am J Med Genet, 2001, 104(2): 135-139.


PDF(1855 KB)

Accesses

Citation

Detail

段落导航
相关文章

/