The ultrastructure of chilling stress

被引:379
作者
Kratsch, HA [1 ]
Wise, RR [1 ]
机构
[1] Univ Wisconsin, Dept Biol, Oshkosh, WI 54901 USA
关键词
chilling stress; chloroplast ultrastructure; photosynthesis; programmed cell death; stress response;
D O I
10.1046/j.1365-3040.2000.00560.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Chilling injury to crop plants was first described 70 years ago and has been systematically investigated with electron microscopy since the late 1960s. Chloroplasts are the first and most severely impacted organelle. Thylakoids swell and distort, starch granules disappear, and a peripheral reticulum (vesicles arising from inner membrane of chloroplast envelope) appears. Chloroplast disintegration follows prolonged chilling. Mitochondria, nuclei and other organelles are less susceptible to chilling injury. Organellar development and ontogeny may also be disrupted. The inherent chilling sensitivity of a plant, as well as the ability of some species to acclimate to chilling, influence the timing and appearance of ultrastructural injury with the resulting outcome being mild, moderate, or severe. Other environmental factors that exacerbate injury are irradiance, chilling duration, and water status. The physiological basis for chloroplast swelling may be linked to chilling-stable starch-degrading enzymes that produce soluble sugars thus lowering stromal water potential at a time when chloroplast photosynthate export is reduced. Thylakoid dilation appears to be related to photo-oxidative conditions produced during chilling in the light. The peripheral reticulum is proposed to increase surface area of the transport-limiting membrane (chloroplast inner membrane) in response to the chilling-induced reduction in metabolite transport. Many of the ultrastructural symptoms appearing during moderate stress resemble those seen in programmed cell death. Future research directions are discussed.
引用
收藏
页码:337 / 350
页数:14
相关论文
共 91 条
  • [1] PROTEIN-PHOSPHORYLATION IN REGULATION OF PHOTOSYNTHESIS
    ALLEN, JF
    [J]. BIOCHIMICA ET BIOPHYSICA ACTA, 1992, 1098 (03) : 275 - 335
  • [2] [Anonymous], LOW TEMPERATURE STRE
  • [3] ASHTON FLOYD M., 1963, BOT GAZ, V124, P336, DOI 10.1086/336215
  • [4] 2 SWEETCLOVER (MELILOTUS-ALBA DESR) MUTANTS TEMPERATURE-SENSITIVE FOR CHLOROPHYLL EXPRESSION
    BEVINS, MA
    MADHAVAN, S
    MARKWELL, J
    [J]. PLANT PHYSIOLOGY, 1993, 103 (04) : 1123 - 1131
  • [5] Last exit: Senescence, abscission, and meristem arrest in Arabidopsis
    Bleecker, AB
    Patterson, SE
    [J]. PLANT CELL, 1997, 9 (07) : 1169 - 1179
  • [6] GLYCEROLIPID SYNTHESIS - BIOCHEMISTRY AND REGULATION
    BROWSE, J
    SOMERVILLE, C
    [J]. ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1991, 42 : 467 - 506
  • [7] LONG-TERM CHILLING OF YOUNG TOMATO PLANTS UNDER LOW LIGHT AND SUBSEQUENT RECOVERY .2. CHLOROPHYLL FLUORESCENCE, CARBON METABOLISM AND ACTIVITY OF RIBULOSE-1,5-BISPHOSPHATE CARBOXYLASE OXYGENASE
    BRUGGEMANN, W
    VANDERKOOIJ, TAW
    VANHASSELT, PR
    [J]. PLANTA, 1992, 186 (02) : 179 - 187
  • [8] The molecular biology of leaf senescence
    BuchananWollaston, V
    [J]. JOURNAL OF EXPERIMENTAL BOTANY, 1997, 48 (307) : 181 - 199
  • [9] Cell-death mechanisms in maize
    Buckner, B
    Janick-Buckner, D
    Gray, J
    Johal, GS
    [J]. TRENDS IN PLANT SCIENCE, 1998, 3 (06) : 218 - 223
  • [10] MUTANTS OF ARABIDOPSIS WITH ALTERED REGULATION OF STARCH DEGRADATION
    CASPAR, T
    LIN, TP
    KAKEFUDA, G
    BENBOW, L
    PREISS, J
    SOMERVILLE, C
    [J]. PLANT PHYSIOLOGY, 1991, 95 (04) : 1181 - 1188