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Published on: August 15, 2019
Genetic Findings in Short Turkish Children Born to Consanguineous Parents
Sjoerd D Joustra, Emregul Isik1, Jan M Wit2
1Department of Paediatrics, Division of Pediatric Endocrinology, Willem-Alexander Children's Hospital, Leiden University Medical Center, Leiden, The Netherlands.
Insights
Genetic testing in short children from consanguineous families offers a high diagnostic yield, particularly for severe growth hormone deficiency, microcephaly, and syndromic short stature cases. This aids in identifying genetic causes for these conditions.
Area of Science:
- Pediatric Endocrinology
- Human Genetics
- Medical Genomics
Background:
- Short stature evaluation in children often relies on genetic analysis, influenced by clinical features.
- The impact of parental consanguinity on diagnostic yield remains under-documented.
Purpose of the Study:
- To assess the diagnostic yield of genetic testing in children with short stature from consanguineous families.
- To identify specific genetic variants associated with short stature in this population.
Main Methods:
- Observational case series of 42 short children from 34 consanguineous families across six pediatric endocrinology centers.
- Utilized candidate gene approach for suspected growth hormone (GH) insulin-like growth factor I (IGF-I) axis defects.
- Employed hypothesis-free approaches including gene panels, microarray analysis, and whole exome sequencing for other cases.
Main Results:
- Pathogenic variants identified in 12/12 families (group 1) in genes like GHR, IGFALS, GH1, STAT5B.
- Variants detected in 9/12 families (group 2a) for severe short stature/microcephaly (PCNT, SMARCAL1, SRCAP, WDR4, GHSR).
- Variants found in 5/9 families (group 2b) for syndromic short stature (TTC37, SCUBE3, NSD2, RABGAP1, 17p13.3 microdeletions).
- No genetic cause identified in group 2c (nonspecific isolated GH deficiency).
Conclusions:
- Genetic testing demonstrates a high diagnostic yield in short children from consanguineous parents.
- Yield is particularly significant in cases involving severe GH deficiency/insensitivity, microcephaly, and syndromic short stature.
Introduction:
The diagnostic yield of genetic analysis in the evaluation of children with short stature depends on associated clinical characteristics, but the additional effect of parental consanguinity has not been well documented.
Methods:
This observational case series of 42 short children from 34 consanguineous families was collected by six referral centres of paediatric endocrinology (inclusion criteria: short stature and parental consanguinity). In 18 patients (12 families, group 1), the clinical features suggested a specific genetic defect in the growth hormone (GH) insulin-like growth factor I (IGF-I) axis, and a candidate gene approach was used. In others (group 2), a hypothesis-free approach was chosen (gene panels, microarray analysis, and whole exome sequencing) and further subdivided into 11 patients with severe short stature (height <-3.5 standard deviation score [SDS]) and microcephaly (head circumference <-3.0 SDS) (group 2a), 10 patients with syndromic short stature (group 2b), and 3 patients with nonspecific isolated GH deficiency (group 2c).
Results:
In all 12 families from group 1, (likely) pathogenic variants were identified in GHR, IGFALS, GH1, and STAT5B. In 9/12 families from group 2a, variants were detected in PCNT, SMARCAL1, SRCAP, WDR4, and GHSR. In 5/9 families from group 2b, variants were found in TTC37, SCUBE3, NSD2, RABGAP1, and 17p13.3 microdeletions. In group 2c, no genetic cause was found. Homozygous, compound heterozygous, and heterozygous variants were found in 21, 1, and 4 patients, respectively.
Conclusion:
Genetic testing in short children from consanguineous parents has a high diagnostic yield, especially in cases of severe GH deficiency or insensitivity, microcephaly, and syndromic short stature.
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