Statements in which the resource exists as a subject.
PredicateObject
rdf:type
lifeskim:mentions
pubmed:issue
Pt 10
pubmed:dateCreated
2009-5-7
pubmed:abstractText
A link exists between endoplasmic reticulum (ER) biogenesis and the unfolded protein response (UPR), a complex set of signaling mechanisms triggered by increased demands on the protein folding capacity of the ER. The UPR transcriptional activator X-box binding protein 1 (XBP1) regulates the expression of proteins that function throughout the secretory pathway and is necessary for development of an expansive ER network. We previously demonstrated that overexpression of XBP1(S), the active form of XBP1 generated by UPR-mediated splicing of Xbp1 mRNA, augments the activity of the cytidine diphosphocholine (CDP-choline) pathway for biosynthesis of phosphatidylcholine (PtdCho) and induces ER biogenesis. Another UPR transcriptional activator, activating transcription factor 6alpha (ATF6alpha), primarily regulates expression of ER resident proteins involved in the maturation and degradation of ER client proteins. Here, we demonstrate that enforced expression of a constitutively active form of ATF6alpha drives ER expansion and can do so in the absence of XBP1(S). Overexpression of active ATF6alpha induces PtdCho biosynthesis and modulates the CDP-choline pathway differently than does enforced expression of XBP1(S). These data indicate that ATF6alpha and XBP1(S) have the ability to regulate lipid biosynthesis and ER expansion by mechanisms that are at least partially distinct. These studies reveal further complexity in the potential relationships between UPR pathways, lipid production and ER biogenesis.
pubmed:grant
http://linkedlifedata.com/resource/pubmed/grant/CA21765, http://linkedlifedata.com/resource/pubmed/grant/DK042394, http://linkedlifedata.com/resource/pubmed/grant/GM45737, http://linkedlifedata.com/resource/pubmed/grant/GM61970, http://linkedlifedata.com/resource/pubmed/grant/HL052173, http://linkedlifedata.com/resource/pubmed/grant/HL057346, http://linkedlifedata.com/resource/pubmed/grant/P01 HL057346-11A18575, http://linkedlifedata.com/resource/pubmed/grant/R01 GM045737-16, http://linkedlifedata.com/resource/pubmed/grant/R01 GM062896-04, http://linkedlifedata.com/resource/pubmed/grant/R01 GM062896-05A1, http://linkedlifedata.com/resource/pubmed/grant/R01 GM062896-06, http://linkedlifedata.com/resource/pubmed/grant/R01 HL052173-11, http://linkedlifedata.com/resource/pubmed/grant/R01 HL052173-12, http://linkedlifedata.com/resource/pubmed/grant/R37 DK042394-10, http://linkedlifedata.com/resource/pubmed/grant/R37 DK042394-11, http://linkedlifedata.com/resource/pubmed/grant/R37 DK042394-13, http://linkedlifedata.com/resource/pubmed/grant/T32AI007508
pubmed:commentsCorrections
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pubmed:language
eng
pubmed:journal
pubmed:citationSubset
IM
pubmed:chemical
pubmed:status
MEDLINE
pubmed:month
May
pubmed:issn
0021-9533
pubmed:author
pubmed:issnType
Print
pubmed:day
15
pubmed:volume
122
pubmed:owner
NLM
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