Wounding of Arabidopsis leaves induces indole-3-carbinol-dependent autophagy in roots of Arabidopsis thaliana

被引:22
作者
Katz, Ella [1 ]
Chamovitz, Daniel A. [1 ]
机构
[1] Tel Aviv Univ, Sch Plant Sci & Food Secur, IL-69978 Ramat Aviv, Israel
关键词
indole-3-carbinol; autophagy; auxin; wounding Arabidopsis thaliana; glucosinolates; TIR1/AFBs; SELECTIVE AUTOPHAGY; GLUCOSINOLATE BREAKDOWN; PLANT AUTOPHAGY; CELLS; BIOSYNTHESIS; P62/SQSTM1; PROFILES; PROTEINS; GROWTH; YEAST;
D O I
10.1111/tpj.13610
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
In cruciferous plants insect attack or physical damage induce the synthesis of the glucosinolate breakdown product indole-3-carbinol, which plays a key role in the defense against attackers. Indole-3-carbinol also affects plant growth and development, acting as an auxin antagonist by binding to the TIR1 auxin receptor. Other potential functions of indole-3-carbinol and the underlying mechanisms in plant biology are unknown. Here we show that an indole-3-carbinol-dependent signal induces specific autophagy in root cells. Leaf treatment with exogenous indole-3-carbinol or leaf-wounding induced autophagy and inhibited auxin response in the root. This induction is lost in glucosinolate-defective mutants, indicating that the effect of indole-3-carbinol is transported in the plants. Thus, indole-3-carbinol is not only a defensive metabolite that repels insects, but is also involved in long-distance communication regulating growth and development in plants.
引用
收藏
页码:779 / 787
页数:9
相关论文
共 32 条
[1]   Indole glucosinolate breakdown and its biological effects [J].
Agerbirk, Niels ;
De Vos, Martin ;
Kim, Jae Hak ;
Jander, Georg .
PHYTOCHEMISTRY REVIEWS, 2009, 8 (01) :101-120
[2]   Integration of Biosynthesis and Long-Distance Transport Establish Organ-Specific Glucosinolate Profiles in Vegetative Arabidopsis [J].
Andersen, Tonni Grube ;
Nour-Eldin, Hussam Hassan ;
Fuller, Victoria Louise ;
Olsen, Carl Erik ;
Burow, Meike ;
Halkier, Barbara Ann .
PLANT CELL, 2013, 25 (08) :3133-3145
[3]   Variations on a theme: plant autophagy in comparison to yeast and mammals [J].
Avin-Wittenberg, Tamar ;
Honig, Arik ;
Galili, Gad .
PROTOPLASMA, 2012, 249 (02) :285-299
[4]   Autophagy in development and stress responses of plants [J].
Bassham, DC ;
Laporte, M ;
Marty, F ;
Moriyasu, Y ;
Ohsumi, Y ;
Olsen, LJ ;
Yoshimoto, K .
AUTOPHAGY, 2006, 2 (01) :2-11
[5]   Plant autophagy-more than a starvation response [J].
Bassham, Diane C. .
CURRENT OPINION IN PLANT BIOLOGY, 2007, 10 (06) :587-593
[6]   A novel sensor to map auxin response and distribution at high spatio-temporal resolution [J].
Brunoud, Geraldine ;
Wells, Darren M. ;
Oliva, Marina ;
Larrieu, Antoine ;
Mirabet, Vincent ;
Burrow, Amy H. ;
Beeckman, Tom ;
Kepinski, Stefan ;
Traas, Jan ;
Bennett, Malcolm J. ;
Vernoux, Teva .
NATURE, 2012, 482 (7383) :103-U132
[7]   Glucosinolate Metabolites Required for an Arabidopsis Innate Immune Response [J].
Clay, Nicole K. ;
Adio, Adewale M. ;
Denoux, Carine ;
Jander, Georg ;
Ausubel, Frederick M. .
SCIENCE, 2009, 323 (5910) :95-101
[8]   The chemical diversity and distribution of glucosinolates and isothiocyanates among plants [J].
Fahey, JW ;
Zalcmann, AT ;
Talalay, P .
PHYTOCHEMISTRY, 2001, 56 (01) :5-51
[9]   What to Eat: Evidence for Selective Autophagy in Plants [J].
Floyd, Brice E. ;
Morriss, Stephanie C. ;
MacIntosh, Gustavo C. ;
Bassham, Diane C. .
JOURNAL OF INTEGRATIVE PLANT BIOLOGY, 2012, 54 (11) :907-920
[10]   Induction of Endoplasmic Reticulum Stress Response by the Indole-3-Carbinol Cyclic Tetrameric Derivative CTet in Human Breast Cancer Cell Lines [J].
Galluzzi, Luca ;
De Santi, Mauro ;
Crinelli, Rita ;
De Marco, Cinzia ;
Zaffaroni, Nadia ;
Duranti, Andrea ;
Brandi, Giorgio ;
Magnani, Mauro .
PLOS ONE, 2012, 7 (08)