Literature DB >> 23340744

NAC transcription factor ORE1 and senescence-induced BIFUNCTIONAL NUCLEASE1 (BFN1) constitute a regulatory cascade in Arabidopsis.

Lilian P Matallana-Ramirez1, Mamoona Rauf, Sarit Farage-Barhom, Hakan Dortay, Gang-Ping Xue, Wolfgang Dröge-Laser, Amnon Lers, Salma Balazadeh, Bernd Mueller-Roeber.   

Abstract

Senescence is a highly regulated process that involves the action of a large number of transcription factors. The NAC transcription factor ORE1 (ANAC092) has recently been shown to play a critical role in positively controlling senescence in Arabidopsis thaliana; however, no direct target gene through which it exerts its molecular function has been identified previously. Here, we report that BIFUNCTIONAL NUCLEASE1 (BFN1), a well-known senescence-enhanced gene, is directly regulated by ORE1. We detected elevated expression of BFN1 already 2 h after induction of ORE1 in estradiol-inducible ORE1 overexpression lines and 6 h after transfection of Arabidopsis mesophyll cell protoplasts with a 35S:ORE1 construct. ORE1 and BFN1 expression patterns largely overlap, as shown by promoter-reporter gene (GUS) fusions, while BFN1 expression in senescent leaves and the abscission zones of maturing flower organs was virtually absent in ore1 mutant background. In vitro binding site assays revealed a bipartite ORE1 binding site, similar to that of ORS1, a paralog of ORE1. A bipartite ORE1 binding site was identified in the BFN1 promoter; mutating the cis-element within the context of the full-length BFN1 promoter drastically reduced ORE1-mediated transactivation capacity in transiently transfected Arabidopsis mesophyll cell protoplasts. Furthermore, chromatin immunoprecipitation (ChIP) demonstrates in vivo binding of ORE1 to the BFN1 promoter. We also demonstrate binding of ORE1 in vivo to the promoters of two other senescence-associated genes, namely SAG29/SWEET15 and SINA1, supporting the central role of ORE1 during senescence.

Entities:  

Keywords:  Arabidopsis thaliana; BFN1; ORE1; promoter; senescence; transcription factor

Mesh:

Substances:

Year:  2013        PMID: 23340744     DOI: 10.1093/mp/sst012

Source DB:  PubMed          Journal:  Mol Plant        ISSN: 1674-2052            Impact factor:   13.164


  45 in total

Review 1.  Stay-green plants: what do they tell us about the molecular mechanism of leaf senescence.

Authors:  Makoto Kusaba; Ayumi Tanaka; Ryouichi Tanaka
Journal:  Photosynth Res       Date:  2013-06-15       Impact factor: 3.573

2.  Strigolactone Regulates Leaf Senescence in Concert with Ethylene in Arabidopsis.

Authors:  Hiroaki Ueda; Makoto Kusaba
Journal:  Plant Physiol       Date:  2015-05-15       Impact factor: 8.340

3.  NAC Transcription Factors ANAC087 and ANAC046 Control Distinct Aspects of Programmed Cell Death in the Arabidopsis Columella and Lateral Root Cap.

Authors:  Marlies Huysmans; Rafael Andrade Buono; Noemi Skorzinski; Marta Cubria Radio; Freya De Winter; Boris Parizot; Jan Mertens; Mansour Karimi; Matyas Fendrych; Moritz K Nowack
Journal:  Plant Cell       Date:  2018-08-10       Impact factor: 11.277

4.  Sequence and functional characterization of MIRNA164 promoters from Brassica shows copy number dependent regulatory diversification among homeologs.

Authors:  Aditi Jain; Saurabh Anand; Neer K Singh; Sandip Das
Journal:  Funct Integr Genomics       Date:  2018-03-12       Impact factor: 3.410

5.  KIRA1 and ORESARA1 terminate flower receptivity by promoting cell death in the stigma of Arabidopsis.

Authors:  Zhen Gao; Anna Daneva; Yuliya Salanenka; Matthias Van Durme; Marlies Huysmans; Zongcheng Lin; Freya De Winter; Steffen Vanneste; Mansour Karimi; Jan Van de Velde; Klaas Vandepoele; Davy Van de Walle; Koen Dewettinck; Bart N Lambrecht; Moritz K Nowack
Journal:  Nat Plants       Date:  2018-05-28       Impact factor: 15.793

6.  Transcriptional switch for programmed cell death in pith parenchyma of sorghum stems.

Authors:  Masaru Fujimoto; Takashi Sazuka; Yoshihisa Oda; Hiroyuki Kawahigashi; Jianzhong Wu; Hideki Takanashi; Takayuki Ohnishi; Jun-Ichi Yoneda; Motoyuki Ishimori; Hiromi Kajiya-Kanegae; Ken-Ichiro Hibara; Fumiko Ishizuna; Kazuo Ebine; Takashi Ueda; Tsuyoshi Tokunaga; Hiroyoshi Iwata; Takashi Matsumoto; Shigemitsu Kasuga; Jun-Ichi Yonemaru; Nobuhiro Tsutsumi
Journal:  Proc Natl Acad Sci U S A       Date:  2018-08-27       Impact factor: 11.205

7.  Transcriptional analyses of natural leaf senescence in maize.

Authors:  Wei Yang Zhang; Yong Chao Xu; Wen Lan Li; Long Yang; Xun Yue; Xian Sheng Zhang; Xiang Yu Zhao
Journal:  PLoS One       Date:  2014-12-22       Impact factor: 3.240

8.  A Genome-Wide Chronological Study of Gene Expression and Two Histone Modifications, H3K4me3 and H3K9ac, during Developmental Leaf Senescence.

Authors:  Judy A Brusslan; Giancarlo Bonora; Ana M Rus-Canterbury; Fayha Tariq; Artur Jaroszewicz; Matteo Pellegrini
Journal:  Plant Physiol       Date:  2015-03-23       Impact factor: 8.340

9.  Ethylene-insensitive3 is a senescence-associated gene that accelerates age-dependent leaf senescence by directly repressing miR164 transcription in Arabidopsis.

Authors:  Zhonghai Li; Jinying Peng; Xing Wen; Hongwei Guo
Journal:  Plant Cell       Date:  2013-09-24       Impact factor: 11.277

10.  Calcium-Dependent Protein Kinase CPK1 Controls Cell Death by In Vivo Phosphorylation of Senescence Master Regulator ORE1.

Authors:  Guido Durian; Mastoureh Sedaghatmehr; Lilian P Matallana-Ramirez; Silke M Schilling; Sieke Schaepe; Tiziana Guerra; Marco Herde; Claus-Peter Witte; Bernd Mueller-Roeber; Waltraud X Schulze; Salma Balazadeh; Tina Romeis
Journal:  Plant Cell       Date:  2020-02-28       Impact factor: 11.277

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.