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Published in: BMC Medical Genetics 1/2018

Open Access 01-12-2018 | Case report

A novel SLC6A8 mutation associated with intellectual disabilities in a Chinese family exhibiting creatine transporter deficiency: case report

Authors: Qin Wang, Jingxin Yang, Yang Liu, Xingping Li, Fuwei Luo, Jiansheng Xie

Published in: BMC Medical Genetics | Issue 1/2018

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Abstract

Background

X-linked creatine transporter deficiency (OMIM#300036,CRTR-D) is characterized by cerebral creatine deficiency, intellectual disabilities, severe speech impairment, seizures and behavioral problems. Mutations in the creatine transporter gene SLC6A8, a member of the solute-carrier family 6 mapped to Xq28, have been reported to cause the creatine transporter deficiency.

Case presentation

The proband presented at 5 yrs. 1 month of age with delays in intellectual and development, seizures and behavioral problems. A novel missense mutation, c.1181C > A (p.Thr394Lys), in the SLC6A8 gene (NM_005629.3) was detected via targeted exome sequencing, and then validated by Sanger sequencing. Multiple in silico variant effect analysis methods, including SIFT, PolyPhen2, PROVEAN, and Mutation Taster predicted that this variant was likely damaging or diseasing-causing. This hemizygous variation was also identified in the affected brother with the same clinical condition and inherited from the heterozygous carrier mother. The diagnosis was suggested by increased urinary creatine/creatinine (Cr:Crn) ratio and markedly reduced creatine content peak by brain proton magnetic resonance spectroscopy (MRS). The proband’s mother became pregnant with a 3rd sibling, in whom the Sanger sequencing result of c.1181C > A was negative.

Conclusion

The novel mutation c.1181C > A in the SLC6A8 gene reported in a Chinese family has expanded the mutation spectrum of CRTR-D. The combination of powerful new technologies such as targeted exome sequencing with thorough systematic clinical evaluation of patients will improve the diagnostic yield, and assist in genetic counselling and prenatal diagnosis for suspected genetic disorders.
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Literature
1.
go back to reference Wyss M, Kaddurah-Daouk R. Creatine and creatinine metabolism. Physiol Rev. 2000;80(3):1107–213.CrossRef Wyss M, Kaddurah-Daouk R. Creatine and creatinine metabolism. Physiol Rev. 2000;80(3):1107–213.CrossRef
2.
go back to reference Joncquel-Chevalier Curt M, Voicu PM, Fontaine M, Dessein AF, Porchet N, Mention-Mulliez K, et al. Creatine biosynthesis and transport in health and disease. Biochimie. 2015;119:146–65.CrossRef Joncquel-Chevalier Curt M, Voicu PM, Fontaine M, Dessein AF, Porchet N, Mention-Mulliez K, et al. Creatine biosynthesis and transport in health and disease. Biochimie. 2015;119:146–65.CrossRef
3.
go back to reference Brosnan JT, Brosnan ME. Creatine: endogenous metabolite, dietary, and therapeutic supplement. Annu Rev Nutr. 2007;27:241–61.CrossRef Brosnan JT, Brosnan ME. Creatine: endogenous metabolite, dietary, and therapeutic supplement. Annu Rev Nutr. 2007;27:241–61.CrossRef
4.
go back to reference van de Kamp JM, Mancini GM, Salomons GS. X-linked creatine transporter deficiency: clinical aspects and pathophysiology. J Inherit Metab Dis. 2014;37(5):715–33.CrossRef van de Kamp JM, Mancini GM, Salomons GS. X-linked creatine transporter deficiency: clinical aspects and pathophysiology. J Inherit Metab Dis. 2014;37(5):715–33.CrossRef
5.
go back to reference Rosenberg EH, Almeida LS, Kleefstra T, deGrauw RS, Yntema HG, Bahi N, et al. High prevalence of SLC6A8 deficiency in X-linked mental retardation. Am J Hum Genet. 2004;75(1):97–105.CrossRef Rosenberg EH, Almeida LS, Kleefstra T, deGrauw RS, Yntema HG, Bahi N, et al. High prevalence of SLC6A8 deficiency in X-linked mental retardation. Am J Hum Genet. 2004;75(1):97–105.CrossRef
6.
go back to reference Salomons GS, van Dooren SJ, Verhoeven NM, Cecil KM, Ball WS, Degrauw TJ, et al. X-linked creatine-transporter gene (SLC6A8) defect: a new creatine-deficiency syndrome. Am J Hum Genet. 2001;68(6):1497–500.CrossRef Salomons GS, van Dooren SJ, Verhoeven NM, Cecil KM, Ball WS, Degrauw TJ, et al. X-linked creatine-transporter gene (SLC6A8) defect: a new creatine-deficiency syndrome. Am J Hum Genet. 2001;68(6):1497–500.CrossRef
7.
go back to reference Puusepp H, Kall K, Salomons GS, Talvik I, Männamaa M, Rein R, et al. The screening of SLC6A8 deficiency among Estonian families with X-linked mental retardation. J Inherit Metab Dis. 2009;33(S3):5–11.CrossRef Puusepp H, Kall K, Salomons GS, Talvik I, Männamaa M, Rein R, et al. The screening of SLC6A8 deficiency among Estonian families with X-linked mental retardation. J Inherit Metab Dis. 2009;33(S3):5–11.CrossRef
8.
go back to reference Garcia P, Rodrigues F, Valongo C, Salomons GS, Diogo L. Phenotypic variability in a portuguese family with x-linked creatine transport deficiency. Pediatr Neurol. 2012;46(1):39–41.CrossRef Garcia P, Rodrigues F, Valongo C, Salomons GS, Diogo L. Phenotypic variability in a portuguese family with x-linked creatine transport deficiency. Pediatr Neurol. 2012;46(1):39–41.CrossRef
9.
go back to reference van de Kamp JM, Betsalel OT, Mercimek-Mahmutoglu S, Abulhoul L, Grunewald S, Anselm I, et al. Phenotype and genotype in 101 males with X-linked creatine transporter deficiency. J Med Genet. 2013;50(7):463–72.CrossRef van de Kamp JM, Betsalel OT, Mercimek-Mahmutoglu S, Abulhoul L, Grunewald S, Anselm I, et al. Phenotype and genotype in 101 males with X-linked creatine transporter deficiency. J Med Genet. 2013;50(7):463–72.CrossRef
10.
go back to reference Stockler S, Schutz PW, Salomons GS. Cerebral creatine deficiency syndromes: clinical aspects, treatment and pathophysiology. Subcell Biochem. 2007;46:149–66.CrossRef Stockler S, Schutz PW, Salomons GS. Cerebral creatine deficiency syndromes: clinical aspects, treatment and pathophysiology. Subcell Biochem. 2007;46:149–66.CrossRef
11.
go back to reference Salomons GS, van Dooren SJ, Verhoeven NM, Marsden D, Schwartz C, Cecil KM, et al. X-linked creatine transporter defect: an overview. J Inherit Metab Dis. 2003;26(2–3):309–18.CrossRef Salomons GS, van Dooren SJ, Verhoeven NM, Marsden D, Schwartz C, Cecil KM, et al. X-linked creatine transporter defect: an overview. J Inherit Metab Dis. 2003;26(2–3):309–18.CrossRef
12.
go back to reference Clark JF, Cecil KM. Diagnostic methods and recommendations for the cerebral creatine deficiency syndromes. Pediatr Res. 2015;77(3):398–405.CrossRef Clark JF, Cecil KM. Diagnostic methods and recommendations for the cerebral creatine deficiency syndromes. Pediatr Res. 2015;77(3):398–405.CrossRef
13.
go back to reference Clark AJ, Rosenberg EH, Almeida LS, Wood TC, Jakobs C, Stevenson RE, et al. X-linked creatine transporter (SLC6A8) mutations in about 1% of males with mental retardation of unknown etiology. Hum Genet. 2006;119(6):604–10.CrossRef Clark AJ, Rosenberg EH, Almeida LS, Wood TC, Jakobs C, Stevenson RE, et al. X-linked creatine transporter (SLC6A8) mutations in about 1% of males with mental retardation of unknown etiology. Hum Genet. 2006;119(6):604–10.CrossRef
14.
go back to reference Betsalel OT, Rosenberg EH, Almeida LS, Kleefstra T, Schwartz CE, Valayannopoulos V, et al. Characterization of novel SLC6A8 variants with the use of splice-site analysis tools and implementation of a newly developed LOVD database. Eur J Hum Genet. 2011;19(1):56–63.CrossRef Betsalel OT, Rosenberg EH, Almeida LS, Kleefstra T, Schwartz CE, Valayannopoulos V, et al. Characterization of novel SLC6A8 variants with the use of splice-site analysis tools and implementation of a newly developed LOVD database. Eur J Hum Genet. 2011;19(1):56–63.CrossRef
15.
go back to reference Yang Y, Muzny DM, Reid JG, Bainbridge MN, Willis A, Ward PA, et al. Clinical whole-exome sequencing for the diagnosis of mendelian disorders. N Engl J Med. 2013;369(16):1502–11.CrossRef Yang Y, Muzny DM, Reid JG, Bainbridge MN, Willis A, Ward PA, et al. Clinical whole-exome sequencing for the diagnosis of mendelian disorders. N Engl J Med. 2013;369(16):1502–11.CrossRef
16.
go back to reference Kuhlenbaumer G, Hullmann J, Appenzeller S. Novel genomic techniques open new avenues in the analysis of monogenic disorders. Hum Mutat. 2011;32(2):144–51.CrossRef Kuhlenbaumer G, Hullmann J, Appenzeller S. Novel genomic techniques open new avenues in the analysis of monogenic disorders. Hum Mutat. 2011;32(2):144–51.CrossRef
17.
go back to reference Biesecker LG, Green RC. Diagnostic clinical genome and exome sequencing. N Engl J Med. 2014;370(25):2418–25.CrossRef Biesecker LG, Green RC. Diagnostic clinical genome and exome sequencing. N Engl J Med. 2014;370(25):2418–25.CrossRef
18.
go back to reference Wang Q, Geng Q, Zhou Q, Luo F, Li P, Xie J. De novo paternal origin duplication of chromosome 11p15.5: report of two Chinese cases with Beckwith-Wiedemann syndrome. Mol Cytogenet. 2017;10:46.CrossRef Wang Q, Geng Q, Zhou Q, Luo F, Li P, Xie J. De novo paternal origin duplication of chromosome 11p15.5: report of two Chinese cases with Beckwith-Wiedemann syndrome. Mol Cytogenet. 2017;10:46.CrossRef
19.
go back to reference Stelzer G, Plaschkes I, Oz-Levi D, Alkelai A, Olender T, Zimmerman S, et al. VarElect: the phenotype-based variation prioritizer of the GeneCards suite. BMC Genomics. 2016;17(Suppl 2):444.CrossRef Stelzer G, Plaschkes I, Oz-Levi D, Alkelai A, Olender T, Zimmerman S, et al. VarElect: the phenotype-based variation prioritizer of the GeneCards suite. BMC Genomics. 2016;17(Suppl 2):444.CrossRef
20.
go back to reference Lion-Francois L, Cheillan D, Pitelet G, Acquaviva-Bourdain C, Bussy G, Cotton F, et al. High frequency of creatine deficiency syndromes in patients with unexplained mental retardation. Neurology. 2006;67(9):1713–4.CrossRef Lion-Francois L, Cheillan D, Pitelet G, Acquaviva-Bourdain C, Bussy G, Cotton F, et al. High frequency of creatine deficiency syndromes in patients with unexplained mental retardation. Neurology. 2006;67(9):1713–4.CrossRef
21.
go back to reference Betsalel OT, van de Kamp JM, Martinez-Munoz C, Rosenberg EH, de Brouwer AP, Pouwels PJ, et al. Detection of low-level somatic and germline mosaicism by denaturing high-performance liquid chromatography in a EURO-MRX family with SLC6A8 deficiency. Neurogenetics. 2008;9(3):183–90.CrossRef Betsalel OT, van de Kamp JM, Martinez-Munoz C, Rosenberg EH, de Brouwer AP, Pouwels PJ, et al. Detection of low-level somatic and germline mosaicism by denaturing high-performance liquid chromatography in a EURO-MRX family with SLC6A8 deficiency. Neurogenetics. 2008;9(3):183–90.CrossRef
22.
go back to reference DesRoches CL, Patel J, Wang P, Minassian B, Salomons GS, Marshall CR, et al. Estimated carrier frequency of creatine transporter deficiency in females in the general population using functional characterization of novel missense variants in the SLC6A8 gene. Gene. 2015;565(2):187–91.CrossRef DesRoches CL, Patel J, Wang P, Minassian B, Salomons GS, Marshall CR, et al. Estimated carrier frequency of creatine transporter deficiency in females in the general population using functional characterization of novel missense variants in the SLC6A8 gene. Gene. 2015;565(2):187–91.CrossRef
23.
go back to reference Ardon O, Amat di San Filippo C, Salomons GS, Longo N. Creatine transporter deficiency in two half-brothers. Am J Med Genet A. 2010;152A(8):1979–83.CrossRef Ardon O, Amat di San Filippo C, Salomons GS, Longo N. Creatine transporter deficiency in two half-brothers. Am J Med Genet A. 2010;152A(8):1979–83.CrossRef
24.
go back to reference Kato H, Miyake F, Shimbo H, Ohya M, Sugawara H, Aida N, et al. Urine screening for patients with developmental disabilities detected a patient with creatine transporter deficiency due to a novel missense mutation in SLC6A8. Brain Dev. 2014;36(7):630–3.CrossRef Kato H, Miyake F, Shimbo H, Ohya M, Sugawara H, Aida N, et al. Urine screening for patients with developmental disabilities detected a patient with creatine transporter deficiency due to a novel missense mutation in SLC6A8. Brain Dev. 2014;36(7):630–3.CrossRef
25.
go back to reference deGrauw TJ, Salomons GS, Cecil KM, Chuck G, Newmeyer A, Schapiro MB, et al. Congenital creatine transporter deficiency. Neuropediatrics. 2002;33(5):232–8.CrossRef deGrauw TJ, Salomons GS, Cecil KM, Chuck G, Newmeyer A, Schapiro MB, et al. Congenital creatine transporter deficiency. Neuropediatrics. 2002;33(5):232–8.CrossRef
26.
go back to reference Kleefstra T, Rosenberg EH, Salomons GS, Stroink H, van Bokhoven H, Hamel BC, et al. Progressive intestinal, neurological and psychiatric problems in two adult males with cerebral creatine deficiency caused by an SLC6A8 mutation. Clin Genet. 2005;68(4):379–81.CrossRef Kleefstra T, Rosenberg EH, Salomons GS, Stroink H, van Bokhoven H, Hamel BC, et al. Progressive intestinal, neurological and psychiatric problems in two adult males with cerebral creatine deficiency caused by an SLC6A8 mutation. Clin Genet. 2005;68(4):379–81.CrossRef
27.
go back to reference Jiddeke M, van de Kamp CJ, Michael K. Gibson,Gajja S. Salomons. New insights into creatine transporter deficiency:the importance of recycling creatine in the brain. J Inherit Metab Dis. 2013;36:155–6.CrossRef Jiddeke M, van de Kamp CJ, Michael K. Gibson,Gajja S. Salomons. New insights into creatine transporter deficiency:the importance of recycling creatine in the brain. J Inherit Metab Dis. 2013;36:155–6.CrossRef
28.
go back to reference Heussinger N, Saake M, Mennecke A, Dorr HG, Trollmann R. Variable white matter atrophy and intellectual development in a family with X-linked Creatine transporter deficiency despite genotypic homogeneity. Pediatr Neurol. 2017;67:45–52.CrossRef Heussinger N, Saake M, Mennecke A, Dorr HG, Trollmann R. Variable white matter atrophy and intellectual development in a family with X-linked Creatine transporter deficiency despite genotypic homogeneity. Pediatr Neurol. 2017;67:45–52.CrossRef
29.
go back to reference Baroncelli L, Alessandri MG, Tola J, Putignano E, Migliore M, Amendola E, et al. A novel mouse model of creatine transporter deficiency. F1000Res. 2014;3:228.PubMedPubMedCentral Baroncelli L, Alessandri MG, Tola J, Putignano E, Migliore M, Amendola E, et al. A novel mouse model of creatine transporter deficiency. F1000Res. 2014;3:228.PubMedPubMedCentral
30.
go back to reference Skelton MR, Schaefer TL, Graham DL, Degrauw TJ, Clark JF, Williams MT, et al. Creatine transporter (CrT; Slc6a8) knockout mice as a model of human CrT deficiency. PLoS One. 2011;6(1):e16187.CrossRef Skelton MR, Schaefer TL, Graham DL, Degrauw TJ, Clark JF, Williams MT, et al. Creatine transporter (CrT; Slc6a8) knockout mice as a model of human CrT deficiency. PLoS One. 2011;6(1):e16187.CrossRef
31.
go back to reference Nota B, Ndika JD, van de Kamp JM, Kanhai WA, van Dooren SJ, van de Wiel MA, et al. RNA sequencing of creatine transporter (SLC6A8) deficient fibroblasts reveals impairment of the extracellular matrix. Hum Mutat. 2014;35(9):1128–35.CrossRef Nota B, Ndika JD, van de Kamp JM, Kanhai WA, van Dooren SJ, van de Wiel MA, et al. RNA sequencing of creatine transporter (SLC6A8) deficient fibroblasts reveals impairment of the extracellular matrix. Hum Mutat. 2014;35(9):1128–35.CrossRef
Metadata
Title
A novel SLC6A8 mutation associated with intellectual disabilities in a Chinese family exhibiting creatine transporter deficiency: case report
Authors
Qin Wang
Jingxin Yang
Yang Liu
Xingping Li
Fuwei Luo
Jiansheng Xie
Publication date
01-12-2018
Publisher
BioMed Central
Published in
BMC Medical Genetics / Issue 1/2018
Electronic ISSN: 1471-2350
DOI
https://doi.org/10.1186/s12881-018-0707-5

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