<it>Drosophila </it>selenophosphate synthetase 1 regulates vitamin B6 metabolism: prediction and confirmation
<p>Abstract</p> <p>Background</p> <p>There are two selenophosphate synthetases (SPSs) in higher eukaryotes, SPS1 and SPS2. Of these two isotypes, only SPS2 catalyzes selenophosphate synthesis. Although SPS1 does not contain selenophosphate synthesis activity, it was fou...
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doaj-da674356288649f197b8bf6fdfacc3c82020-11-25T00:04:55ZengBMCBMC Genomics1471-21642011-08-0112142610.1186/1471-2164-12-426<it>Drosophila </it>selenophosphate synthetase 1 regulates vitamin B6 metabolism: prediction and confirmationPark JinXu Xue-MingCarlson Bradley ALee EunjiJung HeeKim JinShim MyoungLee KwangHatfield Dolph LPark TaesungLee Byeong<p>Abstract</p> <p>Background</p> <p>There are two selenophosphate synthetases (SPSs) in higher eukaryotes, SPS1 and SPS2. Of these two isotypes, only SPS2 catalyzes selenophosphate synthesis. Although SPS1 does not contain selenophosphate synthesis activity, it was found to be essential for cell growth and embryogenesis in <it>Drosophila</it>. The function of SPS1, however, has not been elucidated.</p> <p>Results</p> <p>Differentially expressed genes in <it>Drosophila </it>SL2 cells were identified using two-way analysis of variance methods and clustered according to their temporal expression pattern. Gene ontology analysis was performed against differentially expressed genes and gene ontology terms related to vitamin B6 biosynthesis were found to be significantly affected at the early stage at which megamitochondria were not formed (day 3) after <it>SPS1 </it>knockdown. Interestingly, genes related to defense and amino acid metabolism were affected at a later stage (day 5) following knockdown. Levels of pyridoxal phosphate, an active form of vitamin B6, were decreased by <it>SPS1 </it>knockdown. Treatment of SL2 cells with an inhibitor of pyridoxal phosphate synthesis resulted in both a similar pattern of expression as that found by <it>SPS1 </it>knockdown and the formation of megamitochondria, the major phenotypic change observed by <it>SPS1 </it>knockdown.</p> <p>Conclusions</p> <p>These results indicate that SPS1 regulates vitamin B6 synthesis, which in turn impacts various cellular systems such as amino acid metabolism, defense and other important metabolic activities.</p> http://www.biomedcentral.com/1471-2164/12/426 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Park Jin Xu Xue-Ming Carlson Bradley A Lee Eunji Jung Hee Kim Jin Shim Myoung Lee Kwang Hatfield Dolph L Park Taesung Lee Byeong |
spellingShingle |
Park Jin Xu Xue-Ming Carlson Bradley A Lee Eunji Jung Hee Kim Jin Shim Myoung Lee Kwang Hatfield Dolph L Park Taesung Lee Byeong <it>Drosophila </it>selenophosphate synthetase 1 regulates vitamin B6 metabolism: prediction and confirmation BMC Genomics |
author_facet |
Park Jin Xu Xue-Ming Carlson Bradley A Lee Eunji Jung Hee Kim Jin Shim Myoung Lee Kwang Hatfield Dolph L Park Taesung Lee Byeong |
author_sort |
Park Jin |
title |
<it>Drosophila </it>selenophosphate synthetase 1 regulates vitamin B6 metabolism: prediction and confirmation |
title_short |
<it>Drosophila </it>selenophosphate synthetase 1 regulates vitamin B6 metabolism: prediction and confirmation |
title_full |
<it>Drosophila </it>selenophosphate synthetase 1 regulates vitamin B6 metabolism: prediction and confirmation |
title_fullStr |
<it>Drosophila </it>selenophosphate synthetase 1 regulates vitamin B6 metabolism: prediction and confirmation |
title_full_unstemmed |
<it>Drosophila </it>selenophosphate synthetase 1 regulates vitamin B6 metabolism: prediction and confirmation |
title_sort |
<it>drosophila </it>selenophosphate synthetase 1 regulates vitamin b6 metabolism: prediction and confirmation |
publisher |
BMC |
series |
BMC Genomics |
issn |
1471-2164 |
publishDate |
2011-08-01 |
description |
<p>Abstract</p> <p>Background</p> <p>There are two selenophosphate synthetases (SPSs) in higher eukaryotes, SPS1 and SPS2. Of these two isotypes, only SPS2 catalyzes selenophosphate synthesis. Although SPS1 does not contain selenophosphate synthesis activity, it was found to be essential for cell growth and embryogenesis in <it>Drosophila</it>. The function of SPS1, however, has not been elucidated.</p> <p>Results</p> <p>Differentially expressed genes in <it>Drosophila </it>SL2 cells were identified using two-way analysis of variance methods and clustered according to their temporal expression pattern. Gene ontology analysis was performed against differentially expressed genes and gene ontology terms related to vitamin B6 biosynthesis were found to be significantly affected at the early stage at which megamitochondria were not formed (day 3) after <it>SPS1 </it>knockdown. Interestingly, genes related to defense and amino acid metabolism were affected at a later stage (day 5) following knockdown. Levels of pyridoxal phosphate, an active form of vitamin B6, were decreased by <it>SPS1 </it>knockdown. Treatment of SL2 cells with an inhibitor of pyridoxal phosphate synthesis resulted in both a similar pattern of expression as that found by <it>SPS1 </it>knockdown and the formation of megamitochondria, the major phenotypic change observed by <it>SPS1 </it>knockdown.</p> <p>Conclusions</p> <p>These results indicate that SPS1 regulates vitamin B6 synthesis, which in turn impacts various cellular systems such as amino acid metabolism, defense and other important metabolic activities.</p> |
url |
http://www.biomedcentral.com/1471-2164/12/426 |
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