Genetic screen identifies a requirement for SMN in mRNA localisation within the Drosophila oocyte
Abstract Objective Spinal muscular atrophy (SMA) results from insufficient levels of the survival motor neuron (SMN) protein. Drosophila is conducive to large-scale genetic-modifier screens which can reveal novel pathways underpinning the disease mechanism. We tested the ability of a large collectio...
Main Authors: | , |
---|---|
Format: | Article |
Language: | English |
Published: |
BMC
2018-06-01
|
Series: | BMC Research Notes |
Subjects: | |
Online Access: | http://link.springer.com/article/10.1186/s13104-018-3496-1 |
id |
doaj-7d92fdcef04a4be89833a2deec6ca5e0 |
---|---|
record_format |
Article |
spelling |
doaj-7d92fdcef04a4be89833a2deec6ca5e02020-11-25T01:17:00ZengBMCBMC Research Notes1756-05002018-06-011111610.1186/s13104-018-3496-1Genetic screen identifies a requirement for SMN in mRNA localisation within the Drosophila oocyteBeppe Aquilina0Ruben J. Cauchi1Department of Physiology and Biochemistry, Faculty of Medicine and Surgery, University of MaltaDepartment of Physiology and Biochemistry, Faculty of Medicine and Surgery, University of MaltaAbstract Objective Spinal muscular atrophy (SMA) results from insufficient levels of the survival motor neuron (SMN) protein. Drosophila is conducive to large-scale genetic-modifier screens which can reveal novel pathways underpinning the disease mechanism. We tested the ability of a large collection of genomic deletions to enhance SMN-dependent lethality. To test our design, we asked whether our study can identify loci containing genes identified in previous genetic screens. Our objective was to find a common link between genes flagged in independent screens, which would allow us to expose novel functions for SMN in vivo. Results Out of 128 chromosome deficiency lines, 12 (9.4%) were found to consistently depress adult viability when crossed to SMN loss-of-function heterozygotes. In their majority, the enhancing deletions harboured genes that were previously identified as genetic modifiers, hence, validating the design of the screen. Importantly, gene overlap allowed us to flag genes with a role in post-transcriptional regulation of mRNAs that are crucial for determining the axes of the oocyte and future embryo. We find that SMN is also required for the correct localisation of gurken and oskar mRNAs in oocytes. These findings extend the role of SMN in oogenesis by identifying a key requirement for mRNA trafficking.http://link.springer.com/article/10.1186/s13104-018-3496-1Survival motor neuronSMNGenetic screenSpinal muscular atrophymRNA localisationGurken |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Beppe Aquilina Ruben J. Cauchi |
spellingShingle |
Beppe Aquilina Ruben J. Cauchi Genetic screen identifies a requirement for SMN in mRNA localisation within the Drosophila oocyte BMC Research Notes Survival motor neuron SMN Genetic screen Spinal muscular atrophy mRNA localisation Gurken |
author_facet |
Beppe Aquilina Ruben J. Cauchi |
author_sort |
Beppe Aquilina |
title |
Genetic screen identifies a requirement for SMN in mRNA localisation within the Drosophila oocyte |
title_short |
Genetic screen identifies a requirement for SMN in mRNA localisation within the Drosophila oocyte |
title_full |
Genetic screen identifies a requirement for SMN in mRNA localisation within the Drosophila oocyte |
title_fullStr |
Genetic screen identifies a requirement for SMN in mRNA localisation within the Drosophila oocyte |
title_full_unstemmed |
Genetic screen identifies a requirement for SMN in mRNA localisation within the Drosophila oocyte |
title_sort |
genetic screen identifies a requirement for smn in mrna localisation within the drosophila oocyte |
publisher |
BMC |
series |
BMC Research Notes |
issn |
1756-0500 |
publishDate |
2018-06-01 |
description |
Abstract Objective Spinal muscular atrophy (SMA) results from insufficient levels of the survival motor neuron (SMN) protein. Drosophila is conducive to large-scale genetic-modifier screens which can reveal novel pathways underpinning the disease mechanism. We tested the ability of a large collection of genomic deletions to enhance SMN-dependent lethality. To test our design, we asked whether our study can identify loci containing genes identified in previous genetic screens. Our objective was to find a common link between genes flagged in independent screens, which would allow us to expose novel functions for SMN in vivo. Results Out of 128 chromosome deficiency lines, 12 (9.4%) were found to consistently depress adult viability when crossed to SMN loss-of-function heterozygotes. In their majority, the enhancing deletions harboured genes that were previously identified as genetic modifiers, hence, validating the design of the screen. Importantly, gene overlap allowed us to flag genes with a role in post-transcriptional regulation of mRNAs that are crucial for determining the axes of the oocyte and future embryo. We find that SMN is also required for the correct localisation of gurken and oskar mRNAs in oocytes. These findings extend the role of SMN in oogenesis by identifying a key requirement for mRNA trafficking. |
topic |
Survival motor neuron SMN Genetic screen Spinal muscular atrophy mRNA localisation Gurken |
url |
http://link.springer.com/article/10.1186/s13104-018-3496-1 |
work_keys_str_mv |
AT beppeaquilina geneticscreenidentifiesarequirementforsmninmrnalocalisationwithinthedrosophilaoocyte AT rubenjcauchi geneticscreenidentifiesarequirementforsmninmrnalocalisationwithinthedrosophilaoocyte |
_version_ |
1725148864032276480 |