A cellular timetable of autumn senescence

被引:317
作者
Keskitalo, J [1 ]
Bergquist, G [1 ]
Gardeström, P [1 ]
Jansson, S [1 ]
机构
[1] Umea Univ, Dept Plant Physiol, Umea Plant Sci Ctr, S-90187 Umea, Sweden
关键词
D O I
10.1104/pp.105.066845
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
We have studied autumn leaf senescence in a free-growing aspen (Populus tremula) by following changes in pigment, metabolite and nutrient content, photosynthesis, and cell and organelle integrity. The senescence process started on September 11, 2003, apparently initiated solely by the photoperiod, and progressed steadily without any obvious influence of other environmental signals. For example, after this date, senescing leaves accumulated anthocyanins in response to conditions inducing photooxidative stress, but at the beginning of September the leaves did not. Degradation of leaf constituents took place over an 18-d period, and, although the cells in each leaf did not all senesce in parallel, senescence in the tree as a whole was synchronous. Lutein and beta-carotene were degraded in parallel with chlorophyll, whereas neoxanthin and the xanthophyll cycle pigments were retained longer. Chloroplasts in each cell were rapidly converted to gerontoplasts and many, although not all, cells died. From September 19, when chlorophyll levels had dropped by 50%, mitochondrial respiration provided the energy for nutrient remobilization. Remobilization seemed to stop on September 29, probably due to the cessation of phloem transport, but, up to abscission of the last leaves (over 1 week later), some cells were metabolically active and had chlorophyll-containing gerontoplasts. About 80% of the nitrogen and phosphorus was remobilized, and on September 29 a sudden change occurred in the delta(15)(N) of the cellular content, indicating that volatile compounds may have been released.
引用
收藏
页码:1635 / 1648
页数:14
相关论文
共 45 条
[1]   A transcriptional timetable of autumn senescence -: art. no. R24 [J].
Andersson, A ;
Keskitalo, J ;
Sjödin, A ;
Bhalerao, R ;
Sterky, F ;
Wissel, K ;
Tandre, K ;
Aspeborg, H ;
Moyle, R ;
Ohmiya, Y ;
Bhalerao, R ;
Brunner, A ;
Gustafsson, P ;
Karlsson, J ;
Lundeberg, J ;
Nilsson, O ;
Sandberg, G ;
Strauss, S ;
Sundberg, B ;
Uhlen, M ;
Jansson, S ;
Nilsson, P .
GENOME BIOLOGY, 2004, 5 (04)
[2]   The origin of autumn colours by coevolution [J].
Archetti, M .
JOURNAL OF THEORETICAL BIOLOGY, 2000, 205 (04) :625-630
[3]   Gene expression in autumn leaves [J].
Bhalerao, R ;
Keskitalo, J ;
Sterky, F ;
Erlandsson, R ;
Björkbacka, H ;
Birve, SJ ;
Karlsson, J ;
Gardeström, P ;
Gustafsson, P ;
Lundeberg, J ;
Jansson, S .
PLANT PHYSIOLOGY, 2003, 131 (02) :430-442
[4]   The molecular analysis of leaf senescence - a genomics approach [J].
Buchanan-Wollaston, V ;
Earl, S ;
Harrison, E ;
Mathas, E ;
Navabpour, S ;
Page, T ;
Pink, D .
PLANT BIOTECHNOLOGY JOURNAL, 2003, 1 (01) :3-22
[5]   The molecular biology of leaf senescence [J].
BuchananWollaston, V .
JOURNAL OF EXPERIMENTAL BOTANY, 1997, 48 (307) :181-199
[6]   Interaction between photorespiration and respiration in transgenic potato plants with antisense reduction in glycine decarboxylase [J].
Bykova, NV ;
Keerberg, O ;
Pärnik, T ;
Bauwe, H ;
Gardeström, P .
PLANTA, 2005, 222 (01) :130-140
[7]  
CHAPMAN G, 2000, MONTY PHYTONS FLYING, P1
[8]  
Chen THH, 2002, WEED SCI, V50, P232, DOI 10.1614/0043-1745(2002)050[0232:MGAODR]2.0.CO
[9]  
2
[10]   CAROTENOIDS AND PHOTOPROTECTION IN PLANTS - A ROLE FOR THE XANTHOPHYLL ZEAXANTHIN [J].
DEMMIGADAMS, B .
BIOCHIMICA ET BIOPHYSICA ACTA, 1990, 1020 (01) :1-24