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PMID: 11726556 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

The IC-SNURF-SNRPN transcript serves as a host for multiple small nucleolar RNA species and as an antisense RNA for UBE3A.

Human molecular genetics ·Vol. 10 ·No. 23 ·2001-11-01 ·Pages 2687-700

Runte M, Hüttenhofer A, Gross S, Kiefmann M, Horsthemke B, Buiting K

Abstract

The imprinted domain on human chromosome 15 consists of two oppositely imprinted gene clusters, which are under the coordinated control of an imprinting center (IC) at the 5' end of the SNURF-SNRPN gene. One gene cluster spans the centromeric part of this domain and contains several genes that are transcribed from the paternal chromosome only (MKRN3, MAGEL2, NDN, SNURF-SNRPN, HBII-13, HBII-85 and HBII-52). Apart from the HBII small nucleolar RNA (snoRNA) genes, each of these genes is associated with a 5' differentially methylated region (DMR). The second gene cluster maps to the telomeric part of the imprinted domain and contains two genes (UBE3A and ATP10C), which in some tissues are preferentially expressed from the maternal chromosome. So far, no DMR has been identified at these loci. Instead, maternal-only expression of UBE3A may be regulated indirectly through a paternally expressed antisense transcript. We report here that a processed antisense transcript of UBE3A starts at the IC. The SNURF-SNRPN sense/UBE3A antisense transcription unit spans more than 460 kb and contains at least 148 exons, including the previously identified IPW exons. It serves as the host for the previously identified HBII-13, HBII-85 and HBII-52 snoRNAs as well as for four additional snoRNAs (HBII-436, HBII-437, HBII-438A and HBII-438B), newly identified in this study. Almost all of those snoRNAs are encoded within introns of this large transcript. Northern blot analysis indicates that most if not all of these snoRNAs are indeed expressed by processing from these introns. As we have not obtained any evidence for other genes in this region, which, from the mouse data appears to be critical for the neonatal Prader-Willi syndrome phenotype, a lack of these snoRNAs may be causally involved in this disease.

MeSH Terms
Adult Angelman Syndrome/genetics Autoantigens/genetics Base Sequence Blotting, Northern Chromosomes, Human, Pair 15/genetics DNA, Complementary/chemistry,genetics Exons Gene Dosage Gene Expression Gene Expression Regulation, Developmental Genes/genetics Genomic Imprinting Humans Introns Ligases/genetics Molecular Sequence Data Nuclear Proteins/genetics Prader-Willi Syndrome/genetics RNA, Messenger/genetics,metabolism RNA, Small Nucleolar/genetics Ribonucleoproteins, Small Nuclear Sequence Alignment Sequence Analysis, DNA Sequence Homology, Nucleic Acid Tissue Distribution Transcription, Genetic/genetics Ubiquitin-Protein Ligases snRNP Core Proteins
Chemicals
Autoantigens DNA, Complementary Nuclear Proteins RNA, Messenger RNA, Small Nucleolar Ribonucleoproteins, Small Nuclear SNRPN protein, human SNURF protein, human SNURF protein, mouse snRNP Core Proteins UBE3A protein, human Ubiquitin-Protein Ligases Ligases
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Runte M
Institut für Humangenetik, Universitätsklinikum Essen, 45122 Essen, Germany.
Hüttenhofer A
Gross S
Kiefmann M
Horsthemke B
Buiting K
Article Info
Journal
Human molecular genetics
Abbr.
Hum Mol Genet
ISSN
0964-6906
Published
2001-11-01
Pages
2687-700
Language
English
Region
England
NLM ID
9208958
Subset
IM
Databases
GENBANK
AF400485, AF400486, AF400487, AF400488, AF400489, AF400490, AF400491, AF400492, AF400493, AF400494, AF400495, AF400496, AF400497, AF400498, AF400499, AF400500, AF400501, AF400502, AY055806, AY055807, AY055808
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