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Trichothiodystrophy: quantification of cysteine in human hair and nails by application of sodium azide-dependent oxidation to cysteic acid

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Abstract

The term “trichothiodystrophy” (TTD) covers several autosomal recessive diseases whose diagnostic hallmark is short, brittle hair low in sulfur and cystine because of impaired synthesis of high-sulfur matrix protein. Clinical symptoms associated with TTD represent a variable range of abnormalities in organs derived from ectoderm and neuroectoderm. Important laboratory tests of the hair for the diagnosis of TTD comprise polarizing microscopy (“tiger-tail” pattern), electron microscopy, and amino acids analysis of hydrolyzed hair with a special focus on cystine. However, only very few institutions determine the amino acid composition of human hair and nail clippings, which requires special sample preparation including hydrolysis. If no special precautions are taken, quantification of cysteine and cystine becomes inaccurate because of decomposition of these residues during hydrolysis. We therefore performed the sample work-up with azide-dependent oxidation which we have for the first time adapted for analysis of hair and nail clippings. With our control and parent data resembling published data on hair and nail samples, we obtained a decreased proportion of cysteine (half cystine, determined as cysteic acid) in materials obtained from a boy with TTD. Clearly, the method for the quantification of cysteine following sodium azide-dependent oxidation is a suitable and rather convenient approach to the quantification of cyst(e)ine and other amino acids in hair and nail proteins, and is a valuable contribution to the diagnosis of TTD.

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References

  • Bergmann E, Egly JM (2001) Trichothiodystrophy, a transcription syndrome. Trends Genet 17:279–286

    Article  CAS  PubMed  Google Scholar 

  • Bootsma D, Kraemer KH, Cleaver JE, Hoeijmakers JH (2001) Nucleotide excision repair syndromes: xeroderma pigmentosum, Cockayne syndrome, and trichothiodystrophy. In: Scriver CR, Beaudet AL, Sly WS, Valle D (eds) The metabolic and molecular bases of inherited disease. McGraw-Hill, New York, pp 677–703

  • Dawber R (1999) Congenital and hereditary hair abnormalities. Exp Dermatol 8:296–297

    CAS  PubMed  Google Scholar 

  • Gillespie JM, Marshall RC, Rogers M (1988) Trichothiodystrophy—biochemical and clinical studies. Australas J Dermatol 29:85–93

    CAS  PubMed  Google Scholar 

  • Greaves MS, Fieller NR, Moll JM (1979) Differentiation between psoriatic arthritis and rheumatoid arthritis: a biochemical and statistical analysis of fingernail amino acids. Scand J Rheumatol 8:33–38

    CAS  PubMed  Google Scholar 

  • Itin PH, Sarasin A, Pittelkow MR (2001) Trichothiodystrophy: update on the sulfur-deficient brittle hair syndromes. J Am Acad Dermatol 44:891–920

    Article  CAS  PubMed  Google Scholar 

  • Manneberg M, Lahm HW, Fountoulakis M (1995) Quantification of cysteine residues following oxidation to cysteic acid in the presence of sodium azide. Anal Biochem 231:349–353

    Article  CAS  PubMed  Google Scholar 

  • Meynadier J, Guillot B, Barneon G, Djian B, Lévy A (1987) Trichothiodystrophie. Ann Dermatol Venereol 114:1529–1536

    CAS  PubMed  Google Scholar 

  • Murrin KL, Clarke DJ (2002) Behavioural aspects of Pollitt syndrome: a 32-year follow-up of a case described by R. J. Pollitt and colleagues in 1968. J Intellect Disabil Res 46:273–278

    Article  CAS  PubMed  Google Scholar 

  • Price VH, Odom RB, Ward WH, Jones FT (1980) Trichothiodystrophy: sulfur-deficient brittle hair as a marker for a neuroectodermal symptom complex. Arch Dermatol 116:1375–1384

    Article  CAS  PubMed  Google Scholar 

  • Savarirayan R, Gardner RJ, Sinclair RD, McDowell M, Cleaver JE (2000) Rough skin, brittle hair, and photosensitivity: a mild phenotypic variant of trichothiodystrophy. J Med Genet 37:312–314

    Article  CAS  PubMed  Google Scholar 

  • Tay CH (1971) Ichthyosiform erythroderma, hair shaft abnormalities, and mental and growth retardation. A new recessive disorder. Arch Dermatol 104:4–13

    Article  CAS  PubMed  Google Scholar 

  • Van Neste DJJ, Gillespie JM, Marshall RC, Taieb A, De Brouwer B (1993) Morphological and biochemical characteristics of trichothiodystrophy-variant hair are maintained after grafting of scalp specimens on to nude mice. Br J Dermatol 128:384–387

    PubMed  Google Scholar 

  • Viprakasit V, Gibbons RJ, Broughton BC, Tolmie JL, Brown D, Lunt P, Winter RM, Marinoni S, Stefanini M, Brueton L, Lehmann AR, Higgs DR (2001) Mutations in the general transcription factor TFIIH result in beta-thalassaemia in individuals with trichothiodystrophy. Hum Mol Genet 10:2797–2802

    Article  CAS  PubMed  Google Scholar 

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Correspondence to J. O. Sass.

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Sass, J.O., Skladal, D., Zelger, B. et al. Trichothiodystrophy: quantification of cysteine in human hair and nails by application of sodium azide-dependent oxidation to cysteic acid. Arch Dermatol Res 296, 188–191 (2004). https://doi.org/10.1007/s00403-004-0483-2

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  • DOI: https://doi.org/10.1007/s00403-004-0483-2

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