Literature DB >> 18834879

A common microRNA signature in mouse models of retinal degeneration.

Carol J Loscher1, Karsten Hokamp, John H Wilson, Tiansen Li, Peter Humphries, G Jane Farrar, Arpad Palfi.   

Abstract

Perturbed microRNA (miR) expression is a feature of, and may play a fundamental role in, certain disease states such as different forms of cancer. Retinitis pigmentosa (RP) a group of inherited retinal degenerations is characterised by a progressive loss of photoreceptor cells and consequent visual handicap. We have previously reported an altered pan-retinal expression of miR-96, -183, -1 and -133 in a P347S-Rhodopsin transgenic mouse model of RP. As many different mutations in Rhodopsin and other genes such as RDS/Peripherin can lead to RP, it was of interest to explore whether the characterized retinal miR expression signature was observed in three other mouse models of RP linked to rhodopsin and rds/peripherin. Therefore, pan-retinal expression of miR-96, -182, -183, -1, -133 and -142 was analysed using quantitative real-time RT-PCR. A common signature of altered miR expression was found; expression of miR-96, -182 and -183 decreased by 14.1-53.2%, while expression of miR-1, -133 and -142 was up-regulated by 186.1-538.5%. Significantly, the detected pan-retinal miR signature was mirrored by similar miR expression profiles in FACS-isolated rod photoreceptors from these mice. In an attempt to understand the function of these miRs, corresponding target genes were predicted using computational means. Many 'enriched' targets (with binding sites for at least two of the above miRs) were found to be regulatory molecules and members of intracellular signalling circuits. However, further studies are required to highlight which of the large number of in silico predicted targets are actually controlled by these miRs.

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Year:  2008        PMID: 18834879      PMCID: PMC4030402          DOI: 10.1016/j.exer.2008.08.016

Source DB:  PubMed          Journal:  Exp Eye Res        ISSN: 0014-4835            Impact factor:   3.467


  20 in total

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Journal:  Nat Genet       Date:  2005-04-03       Impact factor: 38.330

2.  RNAi-based suppression and replacement of rds-peripherin in retinal organotypic culture.

Authors:  Arpad Palfi; Marius Ader; Anna-Sophia Kiang; Sophia Millington-Ward; Gerry Clark; Mary O'Reilly; Helena P McMahon; Paul F Kenna; Peter Humphries; G Jane Farrar
Journal:  Hum Mutat       Date:  2006-03       Impact factor: 4.878

3.  Microarray analysis shows that some microRNAs downregulate large numbers of target mRNAs.

Authors:  Lee P Lim; Nelson C Lau; Philip Garrett-Engele; Andrew Grimson; Janell M Schelter; John Castle; David P Bartel; Peter S Linsley; Jason M Johnson
Journal:  Nature       Date:  2005-01-30       Impact factor: 49.962

4.  Retinopathy induced in mice by targeted disruption of the rhodopsin gene.

Authors:  M M Humphries; D Rancourt; G J Farrar; P Kenna; M Hazel; R A Bush; P A Sieving; D M Sheils; N McNally; P Creighton; A Erven; A Boros; K Gulya; M R Capecchi; P Humphries
Journal:  Nat Genet       Date:  1997-02       Impact factor: 38.330

5.  Transgenic mice carrying the dominant rhodopsin mutation P347S: evidence for defective vectorial transport of rhodopsin to the outer segments.

Authors:  T Li; W K Snyder; J E Olsson; T P Dryja
Journal:  Proc Natl Acad Sci U S A       Date:  1996-11-26       Impact factor: 11.205

6.  Murine model of autosomal dominant retinitis pigmentosa generated by targeted deletion at codon 307 of the rds-peripherin gene.

Authors:  Niamh McNally; Paul F Kenna; Derrick Rancourt; Tanweer Ahmed; Alan Stitt; William H Colledge; David G Lloyd; Arpad Palfi; Brian O'Neill; Marian M Humphries; Peter Humphries; G Jane Farrar
Journal:  Hum Mol Genet       Date:  2002-05-01       Impact factor: 6.150

7.  Development and degeneration of retina in rds mutant mice: light microscopy.

Authors:  S Sanyal; A De Ruiter; R K Hawkins
Journal:  J Comp Neurol       Date:  1980-11-01       Impact factor: 3.215

8.  Knock-in human rhodopsin-GFP fusions as mouse models for human disease and targets for gene therapy.

Authors:  Fung Chan; Allan Bradley; Theodore G Wensel; John H Wilson
Journal:  Proc Natl Acad Sci U S A       Date:  2004-06-07       Impact factor: 11.205

9.  Altered retinal microRNA expression profile in a mouse model of retinitis pigmentosa.

Authors:  Carol J Loscher; Karsten Hokamp; Paul F Kenna; Alasdair C Ivens; Peter Humphries; Arpad Palfi; G Jane Farrar
Journal:  Genome Biol       Date:  2007       Impact factor: 13.583

10.  Human MicroRNA targets.

Authors:  Bino John; Anton J Enright; Alexei Aravin; Thomas Tuschl; Chris Sander; Debora S Marks
Journal:  PLoS Biol       Date:  2004-10-05       Impact factor: 8.029

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  36 in total

1.  MicroRNA dysregulation following spinal cord contusion: implications for neural plasticity and repair.

Authors:  E R Strickland; M A Hook; S Balaraman; J R Huie; J W Grau; R C Miranda
Journal:  Neuroscience       Date:  2011-04-07       Impact factor: 3.590

Review 2.  The impact of microRNA gene regulation on the survival and function of mature cell types in the eye.

Authors:  Thomas R Sundermeier; Krzysztof Palczewski
Journal:  FASEB J       Date:  2015-09-23       Impact factor: 5.191

Review 3.  Vision from next generation sequencing: multi-dimensional genome-wide analysis for producing gene regulatory networks underlying retinal development, aging and disease.

Authors:  Hyun-Jin Yang; Rinki Ratnapriya; Tiziana Cogliati; Jung-Woong Kim; Anand Swaroop
Journal:  Prog Retin Eye Res       Date:  2015-02-07       Impact factor: 21.198

4.  Integrative genomic analysis of medulloblastoma identifies a molecular subgroup that drives poor clinical outcome.

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Journal:  J Clin Oncol       Date:  2010-11-22       Impact factor: 44.544

Review 5.  Non-coding RNAs in the development of sensory organs and related diseases.

Authors:  Ivan Conte; Sandro Banfi; Paola Bovolenta
Journal:  Cell Mol Life Sci       Date:  2013-04-16       Impact factor: 9.261

6.  miRNA analysis in vitreous humor to determine the time of death: a proof-of-concept pilot study.

Authors:  Adrián Odriozola; José A Riancho; Rosa de la Vega; Gloria Agudo; Ana García-Blanco; Elena de Cos; Fidel Fernández; Carolina Sañudo; María T Zarrabeitia
Journal:  Int J Legal Med       Date:  2012-12-20       Impact factor: 2.686

7.  Perturbations of microRNA function in mouse dicer mutants produce retinal defects and lead to aberrant axon pathfinding at the optic chiasm.

Authors:  Rita Pinter; Robert Hindges
Journal:  PLoS One       Date:  2010-04-01       Impact factor: 3.240

8.  Coordinate regulation of FOXO1 by miR-27a, miR-96, and miR-182 in breast cancer cells.

Authors:  Irene K Guttilla; Bruce A White
Journal:  J Biol Chem       Date:  2009-07-01       Impact factor: 5.157

9.  Disruption of microRNA expression in human airway cells by diesel exhaust particles is linked to tumorigenesis-associated pathways.

Authors:  Melanie J Jardim; Rebecca C Fry; Ilona Jaspers; Lisa Dailey; David Diaz-Sanchez
Journal:  Environ Health Perspect       Date:  2009-06-18       Impact factor: 9.031

10.  Prediction of microRNAs affecting mRNA expression during retinal development.

Authors:  Amit Arora; Jasenka Guduric-Fuchs; Laura Harwood; Margaret Dellett; Tiziana Cogliati; David A Simpson
Journal:  BMC Dev Biol       Date:  2010-01-06       Impact factor: 1.978

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