Mechanisms and function of flower and inflorescence reversion

被引:120
作者
Tooke, F
Ordidge, M
Chiurugwi, T
Battey, N [1 ]
机构
[1] Univ Reading, Sch Biol Sci, Reading RG6 6AS, Berks, England
[2] Univ Cambridge, Dept Plant Sci, Cambridge CB2 3EA, England
基金
英国生物技术与生命科学研究理事会;
关键词
floral development; floral induction; floral maintenance; floral reversion; meristem; perenniality; pseudovivipary;
D O I
10.1093/jxb/eri254
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Flower and inflorescence reversion involve a switch from floral development back to vegetative development, thus rendering flowering a phase in an ongoing growth pattern rather than a terminal act of the meristem. Although it can be considered an unusual event, reversion raises questions about the nature and function of flowering. It is linked to environmental conditions and is most often a response to conditions opposite to those that induce flowering. Research on molecular genetic mechanisms underlying plant development over the last 15 years has pinpointed some of the key genes involved in the transition to flowering and flower development. Such investigations have also uncovered mutations which reduce floral maintenance or alter the balance between vegetative and floral features of the plant. How this information contributes to an understanding of floral reversion is assessed here. One issue that arises is whether floral commitment (defined as the ability to continue flowering when inductive conditions no longer exist) is a developmental switch affecting the whole plant or is a mechanism which assigns autonomy to individual meristems. A related question is whether floral or vegetative development is the underlying default pathway of the plant. This review begins by considering how studies of flowering in Arabidopsis thaliana have aided understanding of mechanisms of floral maintenance. Arabidopsis has not been found to revert to leaf production in any of the conditions or genetic backgrounds analysed to date. A clear-cut reversion to leaf production has, however, been described in Impatiens balsamina. It is proposed that a single gene controls whether Impatiens reverts or can maintain flowering when inductive conditions are removed, and it is inferred that this gene functions to control the synthesis or transport of a leaf-generated signal. But it is also argued that the susceptibility of Impatiens to reversion is a consequence of the meristem-based mechanisms controlling development of the flower in this species. Thus, in Impatiens, a leaf-derived signal is critical for completion of flowering and can be considered to be the basis of a plant-wide floral commitment that is achieved without accompanying meristem autonomy. The evidence, derived from in vitro and other studies, that similar mechanisms operate in other species is assessed. It is concluded that most species (including Arabidopsis) are less prone to reversion because signals from the leaf are less ephemeral, and the pathways driving flower development have a high level of redundancy that generates meristem autonomy even when leaf-derived signals are weak. This gives stability to the flowering process, even where its initiation is dependent on environmental cues. On this interpretation, Impatiens reversion appears as an anomaly resulting from an unusual combination of leaf signalling and meristem regulation. Nevertheless, it is shown that the ability to revert can serve a function in the life history strategy (perenniality) or reproductive habit (pseudovivipary) of many plants. In these instances reversion has been assimilated into regular plant development and plays a crucial role there.
引用
收藏
页码:2587 / 2599
页数:13
相关论文
共 83 条
[51]   SINGLE FLOWER TRUSS regulates the transition and maintenance of flowering in tomato [J].
Molinero-Rosales, N ;
Latorre, A ;
Jamilena, M ;
Lozano, R .
PLANTA, 2004, 218 (03) :427-434
[52]   EFFECT OF LOW-TEMPERATURE ON FLORAL INDUCTION OF EUCALYPTUS-LANSDOWNEANA MUELL,F. AND BROWN,J. SUBSP LANSDOWNEANA [J].
MONCUR, MW .
AUSTRALIAN JOURNAL OF BOTANY, 1992, 40 (02) :157-167
[53]  
MOORE D. M., 1976, BRIT ANTARCTIC SURVE, V43, P103
[54]   FLOWERING IN PISUM - RECIPROCAL GRAFTS BETWEEN KNOWN GENOTYPES [J].
MURFET, IC .
AUSTRALIAN JOURNAL OF BIOLOGICAL SCIENCES, 1971, 24 (06) :1089-&
[55]  
Murfet IC, 1985, HDB FLOWERING, P97, DOI DOI 10.1201/9781351072564
[56]   Activation of the arabidopsis B class homeotic genes by APETALA1 [J].
Ng, M ;
Yanofsky, MF .
PLANT CELL, 2001, 13 (04) :739-753
[57]   Correlative controls of senescence and plant death in Arabidopsis thaliana (Brassicaceae) [J].
Noodén, LD ;
Penney, JP .
JOURNAL OF EXPERIMENTAL BOTANY, 2001, 52 (364) :2151-2159
[58]   Flowers into shoots: Photo and hormonal control of a meristem identity switch in Arabidopsis [J].
Okamuro, JK ;
denBoer, BGW ;
LotysPrass, C ;
Szeto, W ;
Jofuku, KD .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1996, 93 (24) :13831-13836
[59]   A genetic framework for floral patterning [J].
Parcy, F ;
Nilsson, O ;
Busch, MA ;
Lee, I ;
Weigel, D .
NATURE, 1998, 395 (6702) :561-566
[60]  
Parcy F, 2002, DEVELOPMENT, V129, P2519