Physiology and molecular biology of petal senescence

被引:334
作者
van Doorn, Wouter G. [1 ]
Woltering, Ernst J. [1 ]
机构
[1] Univ Wageningen & Res Ctr, NL-6700 AA Wageningen, Netherlands
关键词
Autophagy; cell death; cell wall; gene expression; hormones; lipids; nucleic acids; pathogens; proteins; reactive oxygen species; regulation; remobilization; senescence; transcriptions factors; ultrastucture;
D O I
10.1093/jxb/erm356
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Petal senescence is reviewed, with the main emphasis on gene expression in relation to physiological functions. Autophagy seems to be the major mechanism for large-scale degradation of macromolecules, but it is still unclear if it contributes to cell death. Depending on the species, petal senescence is controlled by ethylene or is independent of this hormone. EIN3-like (EIL) transcription factors are crucial in ethylene-regulated senescence. The presence of adequate sugar levels in the cell delays senescence and prevents an increase in the levels of EIL mRNA and the subsequent up-regulation of numerous senescence-associated genes. A range of other transcription factors and regulators are differentially expressed in ethylene-sensitive and ethylene-insensitive petal senescence. Ethylene-independent senescence is often delayed by cytokinins, but it is still unknown whether these are natural regulators. A role for caspase-like enzymes or metacaspases has as yet not been established in petal senescence, and a role for proteins released by organelles such as the mitochondrion has not been shown. The synthesis of sugars, amino acids, and fatty acids, and the degradation of nucleic acids, proteins, lipids, fatty acids, and cell wall components are discussed. It is claimed that there is not enough experimental support for the widely held view that a gradual increase in cell leakiness, resulting from gradual plasma membrane degradation, is an important event in petal senescence. Rather, rupture of the vacuolar membrane and subsequent rapid, complete degradation of the plasma membrane seems to occur. This review recommends that more detailed analysis be carried out at the level of cells and organelles rather than at that of whole petals.
引用
收藏
页码:453 / 480
页数:28
相关论文
共 199 条
[11]   Oxidants and antioxidants during aging of chrysanthemum petals [J].
Bartoli, CG ;
Simontacchi, M ;
Montaldi, ER ;
Puntarulo, S .
PLANT SCIENCE, 1997, 129 (02) :157-165
[12]   PHYSIOLOGICAL-CHANGES ACCOMPANYING SENESCENCE IN THE EPHEMERAL DAYLILY FLOWER [J].
BIELESKI, RL ;
REID, MS .
PLANT PHYSIOLOGY, 1992, 98 (03) :1042-1049
[13]   ONSET OF PHLOEM EXPORT FROM SENESCENT PETALS OF DAYLILY [J].
BIELESKI, RL .
PLANT PHYSIOLOGY, 1995, 109 (02) :557-565
[14]   Signs of change:: hormone receptors that regulate plant development [J].
Bishopp, A ;
Mähönen, AP ;
Helariutta, Y .
DEVELOPMENT, 2006, 133 (10) :1857-1869
[15]  
Borochov A., 1989, Horticultural Reviews, V11, P15, DOI 10.1002/9781118060841.ch2
[16]  
BOROCHOV A, 1994, PHYSIOL PLANTARUM, V90, P279, DOI 10.1111/j.1399-3054.1994.tb00388.x
[17]   Heterologous expression of the Arabidopsis etr1-1 allele inhibits the senescence of carnation flowers [J].
Bovy, AG ;
Angenent, GC ;
Dons, HJM ;
van Altvorst, AC .
MOLECULAR BREEDING, 1999, 5 (04) :301-308
[18]   VEIDase is a principal caspase-like activity involved in plant programmed cell death and essential for embryonic pattern formation [J].
Bozhkov, PV ;
Filonova, LH ;
Suarez, MF ;
Helmersson, A ;
Smertenko, AP ;
Zhivotovsky, B ;
von Arnold, S .
CELL DEATH AND DIFFERENTIATION, 2004, 11 (02) :175-182
[19]   Gene expression patterns to define stages of post-harvest senescence in Alstroemeria petals [J].
Breeze, E ;
Wagstaff, C ;
Harrison, E ;
Bramke, I ;
Rogers, H ;
Stead, A ;
Thomas, B ;
Buchanan-Wollaston, V .
PLANT BIOTECHNOLOGY JOURNAL, 2004, 2 (02) :155-168
[20]   INFLUENCE OF ACYL CHAIN COMPOSITION ON THE DEGRADATION OF PHOSPHATIDYLCHOLINE BY PHOSPHOLIPASE-D IN CARNATION MICROSOMAL-MEMBRANES [J].
BROWN, JH ;
PALIYATH, G ;
THOMPSON, JE .
JOURNAL OF EXPERIMENTAL BOTANY, 1990, 41 (229) :979-986