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1. Johnson JM, Castle J, Garrett-Engele P, Kan Z, Loerch PM, Armour CD, Santos R, Schadt EE, Stoughton R, Shoemaker DD. Genomewide survey of human alternative pre-mRNA splicing with exon junction microarrays.
2. Цит. no: Keren H, Lev-Maor G, Ast G. Alternative splicing and evolution: diversification, exon definition and function.
3. Эти стадии очень четко описаны в ряде обзоров. Напр.: WangGS, Cooper ТА. Splicing in disease: disruption of the splicing code and the decoding machinery.
4. Подробнее о сплайсосоме см., напр., в: Padgett RA. New connections between splicing and human disease.
6. Vithana EN, Abu-Safeh L, Allen MJ, Carey A, Papaioannou M, Chakarova C, Al-Maghtheh M, Ebenezer ND, Willis C, Moore AT, Bird AC, Hunt DM, Bhattacharya SS. A human homolog of yeast pre-mRNA splicing gene, PRP31, underlies autosomal dominant retinitis pigmentosa on chromosome 19ql3.4(RPll).
7. McKie AB, McHale JC, Keen TJ, Tarttelin EE, Goliath R, van Lith-Verhoeven JJ, Greenberg J, Ramesar RS, Hoyng CB, Cremers FP, Mackey DA, Bhattacharya SS, Bird AC, Markham AF, Inglehearn CF. Mutations in the pre-mRNA splicing factor gene PRPC8 in autosomal dominant retinitis pigmentosa (RP13).
8. Chakarova CF, Hirns MM, Bolz H, Abu-Safeh L, Patel RJ, Papaioannou MG, Inglehearn CF, Keen TJ, WillisC, Moore AT, RosenbergT, Webster AR, Bird AC, Gal A, Hunt D, Vithana EN, Bhattacharya SS. Mutations in HPRP3, a third member of pre-mRNA splicing factor genes, implicated in autosomal dominant retinitis pigmentosa.
9. Maita H, Kitaura H, Keen TJ, Inglehearn CF, Ariga H, Iguchi-Ariga SM. PAP-1, the mutated gene underlying the RP9 form of dominant retinitis pigmentosa, is a splicing factor.
10. Микроцефальная остеодиспластическая примордиальная карликовость первого типа (также называется синдромом Тауби-Линдера): http://rarediseases.info.nih.gov/gard/5120/microcephalic-osteodysplastic-primordial-dwarfism-type-1
/resources/1.11. Не H, Liyanarachchi S, Akagi K, Nagy R, Li J, Dietrich RC, U W, Sebastian N, Wen B, Xin B, Singh J, Yan P, Aider H, Haan E, Wieczorek D, Albrecht B, Puf fenberger E, Wang H, Westman JA, Padgett RA, Symer DE, de la Chapelle A. Mutations in U4atac snRNA, a component of the minor spliceosome, in the developmental disorder MOPD I.
12. Padgett RA. New connections between splicing and human disease.
13. Haas JT, Winter HS, Lim E, Kirby A, Blumenstiel B, DeFelice M, Gabriel S, Jalas C, Branski D, Grueter CA, Toporovski MS, Walther TC, Daly MJ, Farese RV Jr. DGAT1 mutation is linked to a congenital diarrheal disorder.
14. Byun M, Abhyankar A, Leiarge V, Plancoulaine S, Palanduz A, Telhan L, Boisson В, Picard C, Dewell S, Zhao C, Jouanguy E, Feske S, Abel L, Casanova JL. Whole-exome sequencing-based discovery of STIM1 deficiency in a child with fatal classic Kaposi sarcoma.
15. См.: http://www.genome.gov/11007255
.16. Eriksson M, Brown WT, Gordon LB, Glynn MW, Singer J, Scott L, Erdos MR, Robbins CM, Moses TY, Berglund P, Dutra A, Pak E, Durkin S, Csoka AB, Boehnke M, Glover TW, Collins FS. Recurrent de novo point mutations in lamin A cause Hutchinson-Gilford progeria syndrome.
17. http://www.nhs.uk/conditions/spinal-muscular-atrophy/Pages/
Introduction.aspx..19. Monani UR, Lorson CL, Parsons DW, Prior TW, Androphy EJ, Burghes AH, McPherson JD. A single nucleotide difference that alters splicing patterns distinguishes the SMA gene SMN1 from the copy gene SMN2.
20. Cooper TA, Wan L, Dreyfuss G. RNA and disease.