REGULATION OF THE HEAT-SHOCK RESPONSE IN SOYBEAN SEEDLINGS

被引:44
作者
KIMPEL, JA [1 ]
NAGAO, RT [1 ]
GOEKJIAN, V [1 ]
KEY, JL [1 ]
机构
[1] UNIV GEORGIA,DEPT BOT,ATHENS,GA 30602
关键词
D O I
10.1104/pp.94.3.988
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
The transcriptional response of soybean (Glycine max) seedlings during heat shock (HS) was investigated under two different treatment regimes. During prolonged heat treatment at 40°C, active transcription of the HS genes (as measured by "runoff" transcription assays) occurs only during the first few hours. Nonetheless, mRNAs for these genes are present at relatively high abundance even after 9 hours of exposure to 40°C. Because HS mRNAs have a fairly short half-life (less than 3 hours) at 28°C, these results indicate that HS mRNAs are inherently more stable at 40°C. During a second type of heat treatment regime - short pulses of high (45°C) heat followed by 1 to 2 hours at 28°C-transcription of HS genes is comparable to that achieved at 40°C for the first few hours, even though the tissue is maintained at non-HS temperatures. The transcriptional responses to these two different heat treatments indicate that regulatory controls for the transcription of the HS genes must involve more than a simple sensing of ambient temperature, since transcription of these genes can be turned off at 40°C (in the case of prolonged exposure) and can continue at 28°C (following a short, severe heat treatment). Additional results demonstrate that the response of soybean seedlings to a particular HS depends on their prior exposure to heat; seedlings given a preheat treatment (that is known to induce thermotolerance) respond more moderately to a short heat pulse at 45°C. Overall, this research indicates that plants have mechanisms for both monitoring the severity of changes in temperature and for measuring the magnitude and duration of the stress. Such information is then used to regulate the plant's response to heat both transcriptionally and posttranscriptionally.
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页码:988 / 995
页数:8
相关论文
共 28 条
[11]  
KEY JL, 1987, UCLA S MOL CELL BIOL, V62, P87
[12]  
KEY JL, 1985, HEAT SHOCK RESPONS S, P161
[13]   HEAT-SHOCK IN PLANTS [J].
KIMPEL, JA ;
KEY, JL .
TRENDS IN BIOCHEMICAL SCIENCES, 1985, 10 (09) :353-357
[14]   PRESENCE OF HEAT-SHOCK MESSENGER-RNAS IN FIELD-GROWN SOYBEANS [J].
KIMPEL, JA ;
KEY, JL .
PLANT PHYSIOLOGY, 1985, 79 (03) :672-678
[15]   ACQUISITION OF THERMOTOLERANCE IN SOYBEAN SEEDLINGS - SYNTHESIS AND ACCUMULATION OF HEAT-SHOCK PROTEINS AND THEIR CELLULAR-LOCALIZATION [J].
LIN, CY ;
ROBERTS, JK ;
KEY, JL .
PLANT PHYSIOLOGY, 1984, 74 (01) :152-160
[16]   THE EFFECTS OF LETHAL HEAT-SHOCK ON NONADAPTED AND THERMOTOLERANT ROOT-CELLS OF GLYCINE-MAX [J].
MANSFIELD, MA ;
LINGLE, WL ;
KEY, JL .
JOURNAL OF ULTRASTRUCTURE AND MOLECULAR STRUCTURE RESEARCH, 1988, 99 (01) :96-105
[17]   NONSPECIFIC STABILIZATION OF STRESS-SUSCEPTIBLE PROTEINS BY STRESS-RESISTANT PROTEINS - A MODEL FOR THE BIOLOGICAL ROLE OF HEAT-SHOCK PROTEINS [J].
MINTON, KW ;
KARMIN, P ;
HAHN, GM ;
MINTON, AP .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA-BIOLOGICAL SCIENCES, 1982, 79 (23) :7107-7111
[18]  
Nagao R. T., 1986, Oxford Surveys of Plant Molecular and Cell Biology, V3, P384
[19]   GENES FOR LOW-MOLECULAR-WEIGHT HEAT-SHOCK PROTEINS OF SOYBEANS - SEQUENCE-ANALYSIS OF A MULTIGENE FAMILY [J].
NAGAO, RT ;
CZARNECKA, E ;
GURLEY, WB ;
SCHOFFL, F ;
KEY, JL .
MOLECULAR AND CELLULAR BIOLOGY, 1985, 5 (12) :3417-3428
[20]  
NAGAO RT, 1989, CELL CULTURE SOMATIC, V6, P297