FREEZING STRESS RESPONSE IN WOODY TISSUES OBSERVED USING LOW-TEMPERATURE SCANNING ELECTRON-MICROSCOPY AND FREEZE SUBSTITUTION TECHNIQUES

被引:55
作者
MALONE, SR [1 ]
ASHWORTH, EN [1 ]
机构
[1] PURDUE UNIV,DEPT HORT,CTR PLANT ENVIRONM STRESS PHYSIOL,W LAFAYETTE,IN 47907
关键词
D O I
10.1104/pp.95.3.871
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The objective of the current research was to examine the response of woody plant tissues to freezing stress by using scanning electron microscopy (SEM). Nonsupercooling species red osier dogwood (Cornus stolonifera Michx.), weeping willow (Salix babylonica L.), and corkscrew willow (Salix matsudana Koidz. f. tortuosa Rehd.) survived freezing stress as low as -60-degrees-C. Cell collapse of ray parenchyma cells of these species was expected but did not occur. It was concluded that ray parenchyma cells of these species do not fit into either the supercooling or extracellular freezing classifications. Tissues from flowering dogwood (Cornus florida L.), apple (Malus domestica Borkh. cv "Starking III"), red oak (Quercus rubra L.), scarlet oak (Quercus coccinea Muench.), and red ash (Fraxinus pennsylvanica Marsh) were confirmed as supercooling species, and did not survive exposures below -40-degrees-C. Ray parenchyma cells of these species did not colapse in response to freezing stress, as was expected. Cell collapse along the margins of voids were observed in bark of all seven species. Voids were the result of extracellular ice crystals formed in the bark during exposure to freezing stress. Tissues prepared by freeze substitution techniques were found to be adequately preserved when compared to those prepared by conventional fixation and low temperature SEM techniques. A freezing protocol for imposing freezing stress at temperatures lower than experienced naturally in the area where the study was conducted was developed that produced responses comparable natural freezing events.
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页码:871 / 881
页数:11
相关论文
共 25 条
[1]   ICE FORMATION AND TISSUE-RESPONSE IN APPLE TWIGS [J].
ASHWORTH, EN ;
ECHLIN, P ;
PEARCE, RS ;
HAYES, TL .
PLANT CELL AND ENVIRONMENT, 1988, 11 (08) :703-710
[2]  
ASHWORTH EN, 1983, J AM SOC HORTIC SCI, V108, P299
[3]   THE FORMATION AND DISTRIBUTION OF ICE WITHIN DORMANT AND DEACCLIMATED PEACH FLOWER BUDS [J].
ASHWORTH, EN ;
DAVIS, GA ;
WISNIEWSKI, ME .
PLANT CELL AND ENVIRONMENT, 1989, 12 (05) :521-528
[4]   DEEP UNDERCOOLING OF TISSUE WATER AND WINTER HARDINESS LIMITATIONS IN TIMBERLINE FLORA [J].
BECWAR, MR ;
RAJASHEKAR, C ;
BRISTOW, KJH ;
BURKE, MJ .
PLANT PHYSIOLOGY, 1981, 68 (01) :111-114
[5]  
BERLYN GP, 1976, BOTANICAL MICROTECHN, P33
[6]   NUCLEAR MAGNETIC-RESONANCE OF WATER IN COLD ACCLIMATING RED OSIER DOGWOOD STEM [J].
BURKE, MJ ;
BRYANT, RG ;
WEISER, CJ .
PLANT PHYSIOLOGY, 1974, 54 (03) :392-398
[7]   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
[8]  
BURKE MJ, 1979, STRESS PHYSL CROP PL, P199
[9]  
GEORGE M F, 1974, Hortscience, V9, P519
[10]   COLD HARDINESS AND DEEP SUPERCOOLING IN XYLEM OF SHAGBARK HICKORY [J].
GEORGE, MF ;
BURKE, MJ .
PLANT PHYSIOLOGY, 1977, 59 (02) :319-325