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Novel types of mutation in the choroideremia (CHM) gene: a full-length L1 insertion and an intronic mutation activating a cryptic exon

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Abstract

Choroideremia (CHM) is a progressive chorioretinal degeneration caused by mutations in the widely expressed CHM gene on chromosome Xq21. The product of this gene, Rab escort protein (REP)-1, is involved in the posttranslational lipid modification and subsequent membrane targeting of Rab proteins, small GTPases that play a key role in intracellular trafficking. We have searched for mutations of the CHM gene in patients with choroideremia by analysis of individual CHM exons and adjacent intronic sequences PCR-amplified from genomic DNA and by reverse transcription (RT)-PCR analysis of the coding region of the CHM mRNA. In 35 patients, at least 21 different causative CHM defects were identified. These included two partial CHM gene deletions and an insertion of a full-length L1 retrotransposon into the coding region of the CHM gene, a type of mutation that has not been previously reported as a cause of CHM. We also detected nine different nonsense mutations, five of which are recurrent, a small deletion, a small insertion, and at least five distinct splice site mutations, one of which has been described previously. Moreover, we report for the first time the identification of an intronic mutation remote from the exon-intron junctions that creates a strong acceptor splice site and leads to the inclusion of a cryptic exon into the CHM mRNA. Finally, in an affected male who did not have a mutation in any of the CHM exons or their splice sites, the deletion of a complete exon from the CHM mRNA was observed.

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References

  • Alexandrov K, Horiuchi H, Steele-Mortimer O, Seabra MC, Zerial M (1994) Rab escort protein-1 is a multifunctional protein that accompanies newly prenylated rab proteins to their target membranes. EMBO J 13:5262–5273

    CAS  PubMed  Google Scholar 

  • Anant JS, Desnoyers L, Machius M, Demeler B, Hansen JC, Westover KD, Deisenhofer J, Seabra MC (1998) Mechanism of Rab geranylgeranylation: formation of the catalytic ternary complex. Biochemistry 37:12559–12568

    Article  CAS  PubMed  Google Scholar 

  • Andres DA, Seabra MC, Brown MS, Armstrong SA, Smeland TE, Cremers FPM, Goldstein JL (1993) cDNA cloning of component A of Rab geranylgeranyl transferase and demonstration of its role as a Rab escort protein. Cell 73:1091–1099

    CAS  PubMed  Google Scholar 

  • Beaufrère L, Tuffery S, Hamel C, Arnaud B, Demaille J, Claustres M (1996) A novel mutation (S558X) causing choroideremia. Hum Mutat 8:395

    Article  Google Scholar 

  • Beaufrère L, Rieu S, Hache J-C, Dumur V, Claustres M, Tuffery S (1998) Altered rep-1 expression due to substitution at position +3 of the IVS13 splice-donor site of the choroideremia (CHM) gene. Curr Eye Res 17:726–729

    Article  PubMed  Google Scholar 

  • Beaufrère L, Tuffery S, Hamel C, Bareil C, Arnaud B, Demaille J, Claustres M (1997) The protein truncation test (PTT) as a method of detection for choroideremia mutations. Exp Eye Res 65:849–854

    Article  PubMed  Google Scholar 

  • Brouha B, Meischl C, Ostertag E, de Boer M, Zhang Y, Neijens H, Roos D, Kazazian HH Jr (2002) Evidence consistent with human L1 retrotransposition in maternal meiosis I. Am J Hum Genet 71:327–336

    Article  CAS  PubMed  Google Scholar 

  • Cogan JD, Prince MA, Lekhakula S, Bundey S, Futrakul A, McCarthy EMS, Phillips JA III (1997) A novel mechanism of aberrant pre-mRNA splicing in humans. Hum Mol Genet 6:909–912

    Article  CAS  PubMed  Google Scholar 

  • Cremers FPM, van de Pol DJR, van Kerkhoff LPM, Wieringa B, Ropers H-H (1990) Cloning of a gene that is rearranged in patients with choroideraemia. Nature 347:674–677

    CAS  PubMed  Google Scholar 

  • Cremers FPM, Molloy CM, van dePol DJR, van den Hurk JAJM, Bach I, Geurts van Kessel AHM, Ropers H-H (1992) An autosomal homologue of the choroideremia gene colocalizes with the Usher syndrome type II locus on the distal part of chromosome 1q. Hum Mol Genet 1:71–75

    CAS  PubMed  Google Scholar 

  • Cremers FPM, Armstrong SA, Seabra MC, Brown MS, Goldstein JL (1994) REP-2, a Rab escort protein encoded by the choroideremia-like gene. J Biol Chem 269:2111–2117

    CAS  PubMed  Google Scholar 

  • den Dunnen JT, Antonarakis SE (2001) Nomenclature for the description of human sequence variations. Hum Genet 109:121–124

    PubMed  Google Scholar 

  • Desnoyers L, Anant JS, Seabra MC (1998) Geranylgeranylation of Rab proteins. Bioch Soc Transact 24:699–703

    Google Scholar 

  • Divoky V, Indrak K, Mrug M, Brabec V, Huisman THJ, Prchal JT (1996) A novel mechanism of β thalassemia: the insertion of L1 retrotransposable element into β globin IVS II. Blood 88:148a

    Google Scholar 

  • Forsythe P, Maguire A, Fujite R, Moen C, Swaroop A, Bennett J (1997) A carboxy-terminal truncation of 99 amino acids resulting from a novel mutation (Arg555>stop) in the CHM gene leads to choroideremia. Exp Eye Res 64:487–490

    Article  CAS  PubMed  Google Scholar 

  • Fujiki K, Hotta Y, Hayakawa M, Saito A, Mashima Y, Mori M, Yoshii M, Murakami A, Matsumoto M, Hayasaka S, Tagami N, Isashiki Y, Ohba N, Kanai A (1999) REP-1 gene mutations in Japanese patients with choroideremia. Graefes Arch Clin Exp Ophthalmol 237:735–740

    Google Scholar 

  • Heckenlively JR, Bird AC (1988) Choroideremia. In: Heckenlively JR (ed) Retinitis pigmentosa. Lippincott, Philadelphia, pp 176–187

  • Hotta Y, Fujiki K, Hayakawa M, Kohno N, Kitagawa H, Doi R, Kanai A (1997) A hemizygous A to CC base change of the CHM gene causing choroideremia associated with pinealoma. Graefes Arch Clin Exp Ophthalmol 235:653–655

    Google Scholar 

  • International Human Genome Sequencing Consortium (2001) Initial sequencing and analysis of the human genome. Nature 409:860–921

    CAS  PubMed  Google Scholar 

  • Kazazian HH Jr, Moran JV (1998) The impact of L1 retrotransposons on the human genome. Nat Genet 19:19–24

    CAS  PubMed  Google Scholar 

  • Kimberland ML, Divoky V, Prchal J, Schwahn U, Berger W, Kazazian HH Jr (1999) Full-length human L1 insertions retain the capacity for high frequency retrotransposition in cultured cells. Hum Mol Genet 8:1557–1560

    Article  CAS  PubMed  Google Scholar 

  • Kinsella BT, Maltese WA (1992) Rab GTP-binding proteins with three different carboxyl-terminal cysteine motifs are modified in vivo by 20-carbon isoprenoids. J Biol Chem 267:3940–3945

    CAS  PubMed  Google Scholar 

  • MacDonald IM, Mah DY, Ho YK, Lewis RA, Seabra MC (1998) A practical diagnostic test for choroideremia. Ophthalmology 105:1637–1640

    CAS  PubMed  Google Scholar 

  • Maltese WA, Wilson AL, Erdman RA (1996) Prenylation-dependent interaction of Rab proteins with GDP dissociation inhibitors. Biochem Soc Trans 24:703–708

    CAS  PubMed  Google Scholar 

  • Martinez O, Goud B (1998) Rab proteins. Biochim Biophys Acta 1404:101–112

    Article  CAS  PubMed  Google Scholar 

  • McCarthy EMS, Phillips JA III (1998) Characterization of an intron splice enhancer that regulates alternative splicing of human GH pre-mRNA. Hum Mol Genet 7:1491–1496

    Article  CAS  PubMed  Google Scholar 

  • McCullough AJ, Berget SM (1997) G triplets located throughout a class of small vertebrate introns enforce intron borders and regulate splice site selection. Mol Cell Biol 17:4562–4571

    CAS  PubMed  Google Scholar 

  • McTaggart KE, Tran M, Mah DY, Lai SW, Nesslinger NJ, MacDonald IM (2002) Mutational analysis of patients with the diagnosis of choroideremia. Hum Mutat 20:189–196

    Article  CAS  PubMed  Google Scholar 

  • Merry DE, Jänne PA, Landers JE, Lewis RA, Nussbaum RL (1992) Isolation of a candidate gene for choroideremia. Proc Natl Acad Sci USA 89:2135–2139

    CAS  PubMed  Google Scholar 

  • Miller SA, Dykes DD, Polesky HF (1988) A simple salting out procedure for extracting DNA from human nucleated cells. Nucleic Acids Res 16:1215

    PubMed  Google Scholar 

  • Muntau AC, Mayerhofer PU, Paton BC, Kammerer S, Roscher AA (2000) Defective peroxisome membrane synthesis due to mutations in human PEX3 causes Zellweger syndrome, complementation group G. Am J Hum Genet 67:967–975

    Article  CAS  PubMed  Google Scholar 

  • Nesslinger N, Mitchell G, Strasberg P, MacDonald IM (1996) Mutation analysis in Canadian families with choroideremia. Ophthalmic Genet 17:47–52

    CAS  PubMed  Google Scholar 

  • Novick P, Zerial M (1997) The diversity of Rab proteins in vesicle transport. Curr Opin Cell Biol 9:496–504

    Google Scholar 

  • Ostertag EM, Kazazian HH Jr (2001) Biology of mammalian L1 retrotransposons. Ann Rev Genet 35:501–538

    Article  CAS  PubMed  Google Scholar 

  • Pfeffer SR, Dirac-Svejstrup AB, Soldati T (1995) Rab GDP dissociation inhibitor: putting Rab GTPases in the right place. J Biol Chem 270:17057–17059

    Article  CAS  PubMed  Google Scholar 

  • Pylypenko O, Rak A, Reents R, Niculae A, Sidorovitch V, Cioaca M-D, Bessolitsyna E, Thomä NH, Waldmann H, Schlichting I, Goody RS, Alexandrov K (2003) Structure of Rab escort protein-1 in complex with Rab geranylgeranyltransferase. Mol Cell 11:483–494

    CAS  PubMed  Google Scholar 

  • Schalk I, Zeng K, Wu S-K, Stura EA, Matteson J, Huang M, Tandon A, Wilson IA, Balch WE (1996) Structure and mutational analysis of Rab GDP-dissociation inhibitor. Nature 381:42–48

    CAS  PubMed  Google Scholar 

  • Schwahn U, Lenzner S, Dong J, Feil S, Hinzmann B, van Duijnhoven G, Kirschner R, Hemberger M, Bergen AAB, Rosenberg T, Pinckers AJLG, Fundele R, Rosenthal A, Cremers FPM, Ropers H-H, Berger W (1998) Positional cloning of the gene for X-linked retinitis pigmentosa 2. Nat Genet 19:327–332

    Google Scholar 

  • Scott AF, Schmeckpeper BJ, Abdelrazik M, Comey CT, O'Hara B, Rossiter JP, Cooley T, Heath P, Smith KD, Margolet L (1987) Origin of the human L1 elements: proposed progenitor genes deduced from a consensus DNA sequence. Genomics 1:113–125

    CAS  PubMed  Google Scholar 

  • Seabra MC, Brown MS, Goldstein JL (1993) Retinal degeneration in choroideremia: deficiency of Rab geranylgeranyl transferase. Science 259:377–381

    CAS  PubMed  Google Scholar 

  • Seabra MC, Brown MS, Slaughter CA, Südhof TC, Goldstein JL (1992) Purification of component A of Rab geranylgeranyl transferase: possible identity with the choroideremia gene product. Cell 70:1049–1057

    CAS  PubMed  Google Scholar 

  • Shapiro MB, Senapathy P (1987) RNA splice junctions of different classes of eukaryotes: sequence statistics and functional implications in gene expression. Nucleic Acids Res 15:7155–7174

    PubMed  Google Scholar 

  • Smit AFA (1999) Interspersed repeats and other mementos of transposable elements in mammalian genomes. Curr Opin Genet Dev 9:657–663

    CAS  PubMed  Google Scholar 

  • Thomä NH, Iakovenko A, Goody RS, Alexandrov K (2001) Phosphoisoprenoids modulate association of Rab geranylgeranyltransferase with REP-1. J Biol Chem 276:48637–48643

    Article  PubMed  Google Scholar 

  • Trujillo MJ, Sanz R, Rodriguez de Alba M, Lorda I, Ramos C, Ibañez A, Garcia-Sandoval B, Ayuso C (1998) First mutation (S340X) in choroideremia gene in a Spanish family. Mutations in brief no. 173, online. Hum Mutat 12:213

    Article  CAS  Google Scholar 

  • van Bokhoven H, van den Hurk JAJM, Bogerd L, Philippe C, Gilgenkrantz S, de Jong P, Ropers H-H, Cremers FPM (1994a) Cloning and characterization of the human choroideremia gene. Hum Mol Genet 3:1041–1046

    PubMed  Google Scholar 

  • van Bokhoven H, Schwartz M, Andréasson S, van den Hurk JAJM, Bogerd L, Jay M, Rüther K, Jay B, Pawlowitzki IH, Sankila E-M, Wright A, Ropers H-H, Rosenberg T, Cremers FPM (1994b) Mutation spectrum in the CHM gene of Danish and Swedish choroideremia patients. Hum Mol Genet 3:1047–1051

    PubMed  Google Scholar 

  • van den Hurk JAJM, van de Pol TJR, Molloy CM, Brunsmann F, Rüther K, Zrenner E, Pinckers AJLG, Pawlowitzki IH, Bleeker-Wagemakers EM, Wieringa B, Ropers H-H, Cremers FPM (1992) Detection and characterization of point mutations in the choroideremia candidate gene by PCR-SSCP analysis and direct DNA sequencing. Am J Hum Genet 50:1195–1202

    PubMed  Google Scholar 

  • van den Hurk JAJM, Schwartz M, van Bokhoven H, van de Pol TJR, Bogerd L, Pinckers AJLG, Bleeker-Wagemakers EM, Pawlowitzki IH, Rüther K, Ropers H-H, Cremers FPM (1997) Molecular basis of choroideremia (CHM): mutations involving the Rab escort protein-1 (REP-1) gene. Hum Mutat 9:110–117

    Article  PubMed  Google Scholar 

  • Waldherr M, Ragnini A, Schweyen RJ, Boguski MS (1993) MRS6 — yeast homologue of the choroideraemia gene. Nat Genet 3:193–194

    CAS  PubMed  Google Scholar 

  • Wilson AL, Erdman RA, Maltese WA (1996) Association of Rab1B with GDP-dissociation inhibitor (GDI) is required for recycling but not initial membrane targeting of the Rab protein. J Biol Chem 271:10932–10940

    Article  CAS  PubMed  Google Scholar 

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Acknowledgements

We would like to thank E.A. Sistermans, A.J.L.G. Pinckers, A.S. Plomp, E.M. Bleeker-Wagemakers, K. Rüther, M. Seeliger, U. Kellner, G. Matthijs, K. Baerlocher, and M. Jay for providing us with patient samples or clinical data. We also wish to thank S. van der Velde-Visser and B. van den Helm for tissue culturing and I.C. Meij for technical assistance and for a critical reading of the manuscript. This work was supported by the Netherlands Organization for Scientific Research (NWO).

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Correspondence to José A. J. M. van den Hurk.

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van den Hurk, J.A.J.M., van de Pol, D.J.R., Wissinger, B. et al. Novel types of mutation in the choroideremia (CHM) gene: a full-length L1 insertion and an intronic mutation activating a cryptic exon. Hum Genet 113, 268–275 (2003). https://doi.org/10.1007/s00439-003-0970-0

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