4. Недавний обзор, посвященный импринтингу у сумчатых: Graves JA, Renfree MB. Marsupials in the age of genomics.
5. Landers M, Bancescu DL, Le Meur E, Rougeulle C, Glatt-Deeley H, Brannan C, Muscatelli F, Lalande M. Regulation of the large (approximately 1000 kb) imprinted murine Ube3a antisense transcript by alternative exons upstream of Snurf/Snrpn.
6. Terranova R, Yokobayashi S, Stadler MB, Otte AP, van Lohuizen M, Orkin SH, Peters AH. Polycomb group proteins Ezh2 and Rnf2 direct genomic contraction and imprinted repression in early mouse embryos.
7. Wagschal A, Sutherland HG, Woodfine K, Henckel A, Chebli K, Schulz R, Oakey RJ, Bickmore WA, Feil R. G9a histone methyltransferase contributes to imprinting in the mouse placenta.
8. Nagano T, Mitchell JA, Sanz LA, Pauler FM, Ferguson-Smith AC, Feil R, Fraser P. The Air noncoding RNA epigenetically silences transcription by targeting G9a to chromatin.
9. Цит. no: Koerner MV, Pauler FM, Huang R, Barlow DP. The function of non-coding RNAs in genomic imprinting.
10. Barlow DP. Methylationand imprinting: from host defense to gene regulation?
11. Цит. no: Skaar DA, Li Y, Bernal AJ, Hoyo C, Murphy SK, Jirtle RL. The human imprintome: regulatory mechanisms, methods of ascertainment, and roles in disease susceptibility.
12. Описание действий этих белков в процессе метилирования материнской ОКИ см. в: Bourc’his D, Proudhon С. Sexual dimorphism in parental imprint ontogeny and contribution to embryonic development.
13. Вот статья, продемонстрировавшая важную роль этого белка в поддержании материнского импринта: Hirasawa R, Chiba Н, Kaneda М, Tajima S. Li E, Jaenisch R, Sasaki H. Maternal and zygotic Dnmtl are necessary and sufficient for the maintenance of DNA methyl-ation imprints during preimplantation development.
14. Reinhart B, Paoloni-Giacobino A, Chaillet JR. Specific differentially methylated domain sequences direct the maintenance of méthylation at imprinted genes.
15. Skaar DA, Li Y, Bernal AJ, HoyoC, Murphy SK, Jirtle RL. The human imprintome: regulatory mechanisms, methods of ascertainment, and roles in disease susceptibility. ILAR J. 2012 Dec; 53(3-4):341-58.
16. Kawahara M, Wu Q, Takahashi N, Morita S, Yamada K, Ito M, Ferguson-Smith AC, Kono T. High-frequency generation of viable mice from engineered bi-maternal embryos.
17. Цит. no: Fatica A, Bozzoni I. Long non-coding RNAs: new players in cell differentiation and development.
18. Обзор данного аспекта проблемы см. в: Frost JM, Moore GE. The importance of imprinting in the human placenta.
19. Полное описание см. в: http://omim.org/entry/176270
.20. Полное описание см. в: http://omim.org/entry/105830
.21. de Smith AJ, Purmann C, Walters RG, Ellis RJ, Holder SE, Van Haclst MM, Brady AF, Fairbrother UL, Dattani M, Keogh JM, Henning E, Yeo GS, O’Rahilly S, Froguel P, Farooqi 1S, Blakemore AI. A deletion of the HBII-85 class of small nucleolar RNAs (snoRNAs) is associated with hyperphagia, obesity and hypogonadism.
22. Duker AL, Ballif BC, Bawle EY, Person RE, Mahadevan S, Alliman S, Thompson R, Traylor R, Bejjani BA, Shaffer LG, Rosenfeld JA, Lamb AN, SahooT. Paternally inherited microdeletion at 15qll.2 confirms a significant role for the SNORD116 C/D box snoRNA cluster in Prader-Willi syndrome.
23. Sahoo T, del Gaudio D, German JR, Shinawi M, Peters SU, Person RE, Garnica A, Cheung SW, Beaudet AL. Prader-Willi phenotype caused by paternal deficiency for the HBII-85 C/D box small nucleolar RNA cluster.
24. Полное описание см. в: http://omim.org/entry/180860
.25. Полное описание см. в: http://omim.org/entry/130650
.26. Данные собраны в: Kotzot D. Maternal uniparental disomy 14 dissection of the phenotype with respect to rare autosomal recessively inherited traits, trisomy mosaicism, and genomic imprinting.