Seasonal changes in the low-temperature behaviour of xylem ray parenchyma cells in red osier dogwood (Cornus sericea L) with respect to extracellular freezing and supercooling

被引:11
作者
Fujikawa, S [1 ]
Kuroda, K [1 ]
Ohtani, J [1 ]
机构
[1] HOKKAIDO UNIV,FAC AGR,SAPPORO,HOKKAIDO 060,JAPAN
关键词
Cornus sericea; freezing tolerance; supercooling; xylem ray parenchyma cell; cryo-scanning electron microscopy; freeze-fracture replica;
D O I
10.1016/0968-4328(96)00031-5
中图分类号
TH742 [显微镜];
学科分类号
摘要
The low temperature behaviour of xylem ray parenchyma cells in red osier dogwood (Cormus sericea L.) was examined by differential thermal analysis (DTA), cryo-scanning electron microscopy, freeze-fracture replica electron microscopy and a survival assay (leakage of electrolytes). DTA provided a profile that is typical of extracellular freezing in xylem ray parenchyma cells in both winter and summer. Observations of xylem ray parenchyma cells by electron microscopy indicated, however, that low-temperature behaviour was different from that predicted by DTA. Electron microscopy revealed that, upon cooling at 0.1%C/min, the ray parenchyma cells in winter exhibited typical extracellular freezing, whereas cells in summer exhibited intracellular freezing below -15 degrees C. Cooling at 1.25 degrees C/day (<0.001 degrees C/min) produced a slight collapse of the cell walls as a result of partial dehydration, but it did not inhibit the intracellular freezing in xylem ray parenchyma cells in summer. It is suggested that failure of DTA to reveal the low temperature exotherm (LTE) upon intracellular freezing was due to an overlap of temperature between the high temperature exotherm (HTE) and the LTE, in addition to a reduction in the LTE bu the partial dehydration of cells. It is concluded that red osier dogwood has xylem ray parenchyma cells whose low-temperature behaviour changes from extracellular freezing in winter to supercooling in summer, possibly as a result of seasonal differences in permeability of the cell walls to water. This type of seasonal change in the low-temperature behaviour may produce a superior mechanism for the adaptation to freezing temperatures of cells of plants growing in cold regions, in which dehydration tolerance also changes seasonally. Copyright (C) 1996 Elsevier Science Ltd.
引用
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页码:181 / 191
页数:11
相关论文
共 38 条
[1]   COLD-ACCLIMATION IN GENETICALLY RELATED (SIBLING) DECIDUOUS AND EVERGREEN PEACH (PRUNUS-PERSICA [L] BATSCH) .1. SEASONAL-CHANGES IN COLD HARDINESS AND POLYPEPTIDES OF BARK AND XYLEM TISSUES [J].
ARORA, R ;
WISNIEWSKI, ME ;
SCORZA, R .
PLANT PHYSIOLOGY, 1992, 99 (04) :1562-1568
[2]   FREEZING BEHAVIOR OF WATER IN SMALL PORES AND THE POSSIBLE ROLE IN THE FREEZING OF PLANT-TISSUES [J].
ASHWORTH, EN ;
ABELES, FB .
PLANT PHYSIOLOGY, 1984, 76 (01) :201-204
[3]  
ASHWORTH EN, 1983, J AM SOC HORTIC SCI, V108, P299
[4]  
BECWAR MR, 1982, PLANT COLD HARDINESS, P307
[5]   FREEZING AND INJURY IN PLANTS [J].
BURKE, MJ ;
GUSTA, LV ;
QUAMME, HA ;
WEISER, CJ ;
LI, PH .
ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1976, 27 :507-528
[6]   A FREEZE-FRACTURE STUDY DESIGNED TO CLARIFY THE MECHANISMS OF FREEZING-INJURY DUE TO THE FREEZING-INDUCED CLOSE APPOSITION OF MEMBRANES IN CORTICAL PARENCHYMA CELLS OF MULBERRY [J].
FUJIKAWA, S .
CRYOBIOLOGY, 1995, 32 (05) :444-454
[7]   ULTRASTRUCTURAL-STUDY OF DEEP SUPERCOOLING OF XYLEM RAY PARENCHYMA CELLS FROM STYRAX-OBASSIA [J].
FUJIKAWA, S ;
KURODA, K ;
FUKAZAWA, K .
MICRON, 1994, 25 (03) :241-252
[8]   Formation of multiplex lamellae by equilibrium slow freezing of cortical parenchyma cells of mulberry and its possible relationship to freezing tolerance [J].
Fujikawa, S ;
Takabe, K .
PROTOPLASMA, 1996, 190 (3-4) :189-203
[9]   PLASMA-MEMBRANE ULTRASTRUCTURAL-CHANGES CAUSED BY MECHANICAL-STRESS IN THE FORMATION OF EXTRACELLULAR ICE AS A PRIMARY CAUSE OF SLOW FREEZING-INJURY IN FRUIT-BODIES OF BASIDIOMYCETES (LYOPHYLLUM-ULMARIUM (FR) KUHNER) [J].
FUJIKAWA, S ;
MIURA, K .
CRYOBIOLOGY, 1986, 23 (04) :371-382
[10]  
FUJIKAWA S, 1994, TREES-STRUCT FUNCT, V8, P288, DOI 10.1007/BF00202673