Crystal Structure of the SPOC Domain of the Arabidopsis Flowering Regulator FPA.

The Arabidopsis protein FPA controls flowering time by regulating the alternative 3'-end processing of the FLOWERING LOCUS (FLC) antisense RNA. FPA belongs to the split ends (SPEN) family of proteins, which contain N-terminal RNA recognition motifs (RRMs) and a SPEN paralog and ortholog C-termi...

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Main Authors: Yinglu Zhang, Katarzyna Rataj, Gordon G Simpson, Liang Tong
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2016-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4981400?pdf=render
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spelling doaj-8cb0180b630c49d5914f6de8c0145a382020-11-25T02:10:30ZengPublic Library of Science (PLoS)PLoS ONE1932-62032016-01-01118e016069410.1371/journal.pone.0160694Crystal Structure of the SPOC Domain of the Arabidopsis Flowering Regulator FPA.Yinglu ZhangKatarzyna RatajGordon G SimpsonLiang TongThe Arabidopsis protein FPA controls flowering time by regulating the alternative 3'-end processing of the FLOWERING LOCUS (FLC) antisense RNA. FPA belongs to the split ends (SPEN) family of proteins, which contain N-terminal RNA recognition motifs (RRMs) and a SPEN paralog and ortholog C-terminal (SPOC) domain. The SPOC domain is highly conserved among FPA homologs in plants, but the conservation with the domain in other SPEN proteins is much lower. We have determined the crystal structure of Arabidopsis thaliana FPA SPOC domain at 2.7 Å resolution. The overall structure is similar to that of the SPOC domain in human SMRT/HDAC1 Associated Repressor Protein (SHARP), although there are also substantial conformational differences between them. Structural and sequence analyses identify a surface patch that is conserved among plant FPA homologs. Mutations of two residues in this surface patch did not disrupt FPA functions, suggesting that either the SPOC domain is not required for the role of FPA in regulating RNA 3'-end formation or the functions of the FPA SPOC domain cannot be disrupted by the combination of mutations, in contrast to observations with the SHARP SPOC domain.http://europepmc.org/articles/PMC4981400?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Yinglu Zhang
Katarzyna Rataj
Gordon G Simpson
Liang Tong
spellingShingle Yinglu Zhang
Katarzyna Rataj
Gordon G Simpson
Liang Tong
Crystal Structure of the SPOC Domain of the Arabidopsis Flowering Regulator FPA.
PLoS ONE
author_facet Yinglu Zhang
Katarzyna Rataj
Gordon G Simpson
Liang Tong
author_sort Yinglu Zhang
title Crystal Structure of the SPOC Domain of the Arabidopsis Flowering Regulator FPA.
title_short Crystal Structure of the SPOC Domain of the Arabidopsis Flowering Regulator FPA.
title_full Crystal Structure of the SPOC Domain of the Arabidopsis Flowering Regulator FPA.
title_fullStr Crystal Structure of the SPOC Domain of the Arabidopsis Flowering Regulator FPA.
title_full_unstemmed Crystal Structure of the SPOC Domain of the Arabidopsis Flowering Regulator FPA.
title_sort crystal structure of the spoc domain of the arabidopsis flowering regulator fpa.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2016-01-01
description The Arabidopsis protein FPA controls flowering time by regulating the alternative 3'-end processing of the FLOWERING LOCUS (FLC) antisense RNA. FPA belongs to the split ends (SPEN) family of proteins, which contain N-terminal RNA recognition motifs (RRMs) and a SPEN paralog and ortholog C-terminal (SPOC) domain. The SPOC domain is highly conserved among FPA homologs in plants, but the conservation with the domain in other SPEN proteins is much lower. We have determined the crystal structure of Arabidopsis thaliana FPA SPOC domain at 2.7 Å resolution. The overall structure is similar to that of the SPOC domain in human SMRT/HDAC1 Associated Repressor Protein (SHARP), although there are also substantial conformational differences between them. Structural and sequence analyses identify a surface patch that is conserved among plant FPA homologs. Mutations of two residues in this surface patch did not disrupt FPA functions, suggesting that either the SPOC domain is not required for the role of FPA in regulating RNA 3'-end formation or the functions of the FPA SPOC domain cannot be disrupted by the combination of mutations, in contrast to observations with the SHARP SPOC domain.
url http://europepmc.org/articles/PMC4981400?pdf=render
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AT katarzynarataj crystalstructureofthespocdomainofthearabidopsisfloweringregulatorfpa
AT gordongsimpson crystalstructureofthespocdomainofthearabidopsisfloweringregulatorfpa
AT liangtong crystalstructureofthespocdomainofthearabidopsisfloweringregulatorfpa
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