Structure and Activity of Strigolactones: New Plant Hormones with a Rich Future

被引:164
作者
Zwanenburg, Binne [1 ,2 ]
Pospisil, Tomas [2 ]
机构
[1] Radboud Univ Nijmegen, Inst Mol & Mat, NL-6525 AJ Nijmegen, Netherlands
[2] Palacky Univ, Fac Sci, Ctr Reg Hana Biotechnol & Agr Res, Dept Growth Regulators, CZ-78371 Olomouc, Czech Republic
关键词
germination stimulant; hyphal branching AM fungi; inhibition shoot branching; plant hormones; strigolactones; structure-activity relationship; PARASITIC WEEDS STRIGA; ARBUSCULAR MYCORRHIZAL FUNGI; A-RING ANALOGS; GERMINATION STIMULANT; SEED-GERMINATION; BIOLOGICAL EVALUATION; SYNTHETIC DISPROOF; ASYMMETRIC-SYNTHESIS; BROOMRAPE OROBANCHE; MOLECULAR-MECHANISM;
D O I
10.1093/mp/sss141
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Strigolactones are new plant hormones that induce germination of parasitic weed seeds, inhibit shoot branching, and are branching factors for AM fungi. Structureactivity relationships provide insight into their mode of action and give a model substrate for designing new active analogs.Strigolactones (SLs) constitute a new class of plant hormones which are active as germination stimulants for seeds of parasitic weeds of Striga, Orobanche, and Pelipanchi spp, in hyphal branching of arbuscular mycorrhizal (AM) fungi and as inhibitors of shoot branching. In this review, the focus is on molecular features of these SLs. The occurrence of SLs in root exudates of host plants is described. The naming protocol for SL according to the International Union of Pure and Applied Chemistry (IUPAC) rules and the oat a glance' method is explained. The total synthesis of some natural SLs is described with details for all eight stereoisomers of strigol. The problems encountered with assigning the correct structure of natural SLs are analyzed for orobanchol, alectrol, and solanacol. The structureactivity relationship of SLs as germination stimulants leads to the identification of the bioactiphore of SLs. Together with a tentative mechanism for the mode of action, a model has been derived that can be used to design and prepare active SL analogs. This working model has been used for the preparation of a series of new SL analogs such as Nijmegen-1, and analogs derived from simple ketones, keto enols, and saccharine. The serendipitous finding of SL mimics which are derived from the D-ring in SLs (appropriately substituted butenolides) is reported. For SL mimics, a mode of action is proposed as well. Recent new results support this proposal. The stability of SLs and SL analogs towards hydrolysis is described and some details of the mechanism of hydrolysis are discussed as well. The attempted isolation of the protein receptor for germination and the current status concerning the biosynthesis of natural SLs are briefly discussed. Some non-SLs as germinating agents are mentioned. The structureactivity relationship for SLs in hyphal branching of AM fungi and in repression of shoot branching is also analyzed. For each of the principle functions, a working model for the design of new active SL analogs is described and its applicability and implications are discussed. It is shown that the three principal functions use a distinct perception system. The importance of stereochemistry for bioactivity has been described for the various functions.
引用
收藏
页码:38 / 62
页数:25
相关论文
共 129 条
[1]   Plant sesquiterpenes induce hyphal branching in arbuscular mycorrhizal fungi [J].
Akiyama, K ;
Matsuzaki, K ;
Hayashi, H .
NATURE, 2005, 435 (7043) :824-827
[2]   Strigolactones: Chemical signals for fungal symbionts and parasitic weeds in plant roots [J].
Akiyama, Kohki ;
Hayashi, Hideo .
ANNALS OF BOTANY, 2006, 97 (06) :925-931
[3]   Structural Requirements of Strigolactones for Hyphal Branching in AM Fungi [J].
Akiyama, Kohki ;
Ogasawara, Shin ;
Ito, Seisuke ;
Hayashi, Hideo .
PLANT AND CELL PHYSIOLOGY, 2010, 51 (07) :1104-1117
[4]   The Path from β-Carotene to Carlactone, a Strigolactone-Like Plant Hormone [J].
Alder, Adrian ;
Jamil, Muhammad ;
Marzorati, Mattia ;
Bruno, Mark ;
Vermathen, Martina ;
Bigler, Peter ;
Ghisla, Sandro ;
Bouwmeester, Harro ;
Beyer, Peter ;
Al-Babili, Salim .
SCIENCE, 2012, 335 (6074) :1348-1351
[5]  
[Anonymous], 1993, Parasitic weeds of the world: biology and control
[6]   Strigolactone Positively Controls Crown Root Elongation in Rice [J].
Arite, Tomotsugu ;
Kameoka, Hiromu ;
Kyozuka, Junko .
JOURNAL OF PLANT GROWTH REGULATION, 2012, 31 (02) :165-172
[7]   d14, a Strigolactone-Insensitive Mutant of Rice, Shows an Accelerated Outgrowth of Tillers [J].
Arite, Tomotsugu ;
Umehara, Mikihisa ;
Ishikawa, Shinji ;
Hanada, Atsushi ;
Maekawa, Masahiko ;
Yamaguchi, Shinjiro ;
Kyozuka, Junko .
PLANT AND CELL PHYSIOLOGY, 2009, 50 (08) :1416-1424
[8]   Characterization of strigolactones, germination stimulants for the root parasitic plants Striga and Orobanche, produced by maize, millet and sorghum [J].
Awad, AA ;
Sato, D ;
Kusumoto, D ;
Kamioka, H ;
Takeuchi, Y ;
Yoneyama, K .
PLANT GROWTH REGULATION, 2006, 48 (03) :221-227
[9]   FACTORS AFFECTING THE ACTIVITY OF GR7 IN STIMULATING GERMINATION OF STRIGA-HERMONTHICA (DEL) BENTH [J].
BABIKER, AGT ;
HAMDOUN, AM .
WEED RESEARCH, 1982, 22 (02) :111-115
[10]   PERSISTENCE OF GR7 AND STRIGA GERMINATION STIMULANT(S) FROM EUPHORBIA-AEGYPTIACA BOISS IN SOILS AND IN SOLUTIONS [J].
BABIKER, AGT ;
IBRAHIM, NE ;
EDWARDS, WG .
WEED RESEARCH, 1988, 28 (01) :1-6