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ZAC, LIT1 (KCNQ1OT1) and p57(KIP2) (CDKN1C) are in an imprinted gene network that may play a role in Beckwith–Wiedemann syndrome
Loss of genomic imprinting is involved in a number of developmental abnormalities and cancers. ZAC is an imprinted gene expressed from the paternal allele of chromosome 6q24 within a region known to harbor a tumor suppressor gene for several types of neoplasia. p57(KIP2) (CDKN1C) is a maternally exp...
Autores principales: | , , , , , , , , , |
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Formato: | Texto |
Lenguaje: | English |
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Oxford University Press
2005
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1097765/ https://www.ncbi.nlm.nih.gov/pubmed/15888726 http://dx.doi.org/10.1093/nar/gki555 |
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author | Arima, Takahiro Kamikihara, Tetsuya Hayashida, Toshirou Kato, Kiyoko Inoue, Toshiaki Shirayoshi, Yasuaki Oshimura, Mitsuo Soejima, Hidenobu Mukai, Tunehiro Wake, Norio |
author_facet | Arima, Takahiro Kamikihara, Tetsuya Hayashida, Toshirou Kato, Kiyoko Inoue, Toshiaki Shirayoshi, Yasuaki Oshimura, Mitsuo Soejima, Hidenobu Mukai, Tunehiro Wake, Norio |
author_sort | Arima, Takahiro |
collection | PubMed |
description | Loss of genomic imprinting is involved in a number of developmental abnormalities and cancers. ZAC is an imprinted gene expressed from the paternal allele of chromosome 6q24 within a region known to harbor a tumor suppressor gene for several types of neoplasia. p57(KIP2) (CDKN1C) is a maternally expressed gene located on chromosome 11p15.5 which encodes a cyclin-dependent kinase inhibitor that may also act as a tumor suppressor gene. Mutations in ZAC and p57(KIP2) have been implicated in transient neonatal diabetes mellitus (TNDB) and Beckwith–Wiedemann syndrome, respectively. Patients with these diseases share many characteristics. Here we show that mouse Zac1 and p57(Kip2) have a strikingly similar expression pattern. ZAC, a sequence-specific DNA-binding protein, binds within the CpG island of LIT1 (KCNQ1OT1), a paternally expressed, anti-sense RNA thought to negatively regulate p57(KIP2) in cis. ZAC induces LIT1 transcription in a methylation-dependent manner. Our data suggest that ZAC may regulate p57(KIP2) through LIT1, forming part of a novel signaling pathway regulating cell growth. Mutations in ZAC may, therefore, contribute to Beckwith–Wiedemann syndrome. Furthermore, we find changes in DNA methylation at the LIT1 putative imprinting control region in two patients with TNDB. |
format | Text |
id | pubmed-1097765 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2005 |
publisher | Oxford University Press |
record_format | MEDLINE/PubMed |
spelling | pubmed-10977652005-05-12 ZAC, LIT1 (KCNQ1OT1) and p57(KIP2) (CDKN1C) are in an imprinted gene network that may play a role in Beckwith–Wiedemann syndrome Arima, Takahiro Kamikihara, Tetsuya Hayashida, Toshirou Kato, Kiyoko Inoue, Toshiaki Shirayoshi, Yasuaki Oshimura, Mitsuo Soejima, Hidenobu Mukai, Tunehiro Wake, Norio Nucleic Acids Res Article Loss of genomic imprinting is involved in a number of developmental abnormalities and cancers. ZAC is an imprinted gene expressed from the paternal allele of chromosome 6q24 within a region known to harbor a tumor suppressor gene for several types of neoplasia. p57(KIP2) (CDKN1C) is a maternally expressed gene located on chromosome 11p15.5 which encodes a cyclin-dependent kinase inhibitor that may also act as a tumor suppressor gene. Mutations in ZAC and p57(KIP2) have been implicated in transient neonatal diabetes mellitus (TNDB) and Beckwith–Wiedemann syndrome, respectively. Patients with these diseases share many characteristics. Here we show that mouse Zac1 and p57(Kip2) have a strikingly similar expression pattern. ZAC, a sequence-specific DNA-binding protein, binds within the CpG island of LIT1 (KCNQ1OT1), a paternally expressed, anti-sense RNA thought to negatively regulate p57(KIP2) in cis. ZAC induces LIT1 transcription in a methylation-dependent manner. Our data suggest that ZAC may regulate p57(KIP2) through LIT1, forming part of a novel signaling pathway regulating cell growth. Mutations in ZAC may, therefore, contribute to Beckwith–Wiedemann syndrome. Furthermore, we find changes in DNA methylation at the LIT1 putative imprinting control region in two patients with TNDB. Oxford University Press 2005 2005-05-11 /pmc/articles/PMC1097765/ /pubmed/15888726 http://dx.doi.org/10.1093/nar/gki555 Text en © The Author 2005. Published by Oxford University Press. All rights reserved |
spellingShingle | Article Arima, Takahiro Kamikihara, Tetsuya Hayashida, Toshirou Kato, Kiyoko Inoue, Toshiaki Shirayoshi, Yasuaki Oshimura, Mitsuo Soejima, Hidenobu Mukai, Tunehiro Wake, Norio ZAC, LIT1 (KCNQ1OT1) and p57(KIP2) (CDKN1C) are in an imprinted gene network that may play a role in Beckwith–Wiedemann syndrome |
title | ZAC, LIT1 (KCNQ1OT1) and p57(KIP2) (CDKN1C) are in an imprinted gene network that may play a role in Beckwith–Wiedemann syndrome |
title_full | ZAC, LIT1 (KCNQ1OT1) and p57(KIP2) (CDKN1C) are in an imprinted gene network that may play a role in Beckwith–Wiedemann syndrome |
title_fullStr | ZAC, LIT1 (KCNQ1OT1) and p57(KIP2) (CDKN1C) are in an imprinted gene network that may play a role in Beckwith–Wiedemann syndrome |
title_full_unstemmed | ZAC, LIT1 (KCNQ1OT1) and p57(KIP2) (CDKN1C) are in an imprinted gene network that may play a role in Beckwith–Wiedemann syndrome |
title_short | ZAC, LIT1 (KCNQ1OT1) and p57(KIP2) (CDKN1C) are in an imprinted gene network that may play a role in Beckwith–Wiedemann syndrome |
title_sort | zac, lit1 (kcnq1ot1) and p57(kip2) (cdkn1c) are in an imprinted gene network that may play a role in beckwith–wiedemann syndrome |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1097765/ https://www.ncbi.nlm.nih.gov/pubmed/15888726 http://dx.doi.org/10.1093/nar/gki555 |
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