Effects of ambient temperature on metabolic rate, respiratory quotient, and torpor in an arctic hibernator

被引:219
作者
Buck, CL
Barnes, BM [1 ]
机构
[1] Univ Alaska, Inst Arctic Biol, Fairbanks, AK 99775 USA
[2] Univ Alaska, Dept Biol & Wildlife, Fairbanks, AK 99775 USA
关键词
hibernation; metabolism; arctic ground squirrel; metabolic fuel;
D O I
10.1152/ajpregu.2000.279.1.R255
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Arctic ground squirrels (Spermophilus parryii) overwinter in hibernaculum conditions that are substantially below freezing. During torpor, captive arctic ground squirrels displayed ambient temperature (T-a)-dependent patterns of core body temperature (T-b), metabolic rate (TMR), and metabolic fuel use, as determined by respiratory quotient (RQ). At T-a 0 to -16 degrees C. T-b remained relatively constant, and TMR rose proportionally with the expanding gradient between T-b and T-a, increasing > 15-fold from a minimum of 0.0115 +/- 0.0012 ml O-2 . g(-1) . h(-1). At T-a 0-20 degrees C, T-b increased with T-a; however, TMR did not change significantly from T-b 0 to 12 degrees C, indicating temperature-independent inhibition of metabolic rate. The overall change in TMR from T-b 4 to 20 degrees equates to a Q(10) of 2.4, but within this range of T-b, Q(10) changed from 1.0 to 14.1. During steady-state torpor at T-a 4 and 8 degrees C, RQ averaged 0.70 +/- 0.013, indicating exclusive lipid catabolism. At T-a -16 and 20 degrees C, RQ increased significantly to >0.85, consistent with recruitment of nonlipid fuels. RQ was negatively correlated with maximum torpor bout length. For T-a values >0 degrees C, this relationship supports the hypothesis that availability of nonlipid metabolic fuels limits torpor duration in hibernating mammals; for T-a values >0 degrees C, hypotheses linked to body temperature are supported. Because anterior body temperatures differ from core, overall, the duration torpor can be extended in hibernating mammals may be dependent on brain temperature.
引用
收藏
页码:R255 / R262
页数:8
相关论文
共 67 条
[1]  
[Anonymous], 1971, HIBERNATION HYPOTHAL
[2]   AMBIENT-TEMPERATURES IN HIBERNACULA AND THEIR ENERGETIC CONSEQUENCES FOR ALPINE MARMOTS (MARMOTA-MARMOTA) [J].
ARNOLD, W ;
HELDMAIER, G ;
ORTMANN, S ;
POHL, H ;
RUF, T ;
STEINLECHNER, S .
JOURNAL OF THERMAL BIOLOGY, 1991, 16 (04) :223-226
[3]  
Barnes B.M., 1986, P245
[4]  
BARNES BM, 1989, SCIENCE, V244, P1521
[5]  
BARNES BM, 1993, LIFE COLD ECOLOGICAL, P556
[6]  
BARNES BM, 1993, LIFE COLD ECOLOGICAL, P120
[7]   Molecular and metabolic aspects of mammalian hibernation - Expression of the hibernation phenotype results from the coordinated regulation of multiple physiological and molecular events during preparation for and entry into torpor [J].
Boyer, BB ;
Barnes, BM .
BIOSCIENCE, 1999, 49 (09) :713-724
[8]  
Boyer Bert B., 1993, P483
[9]   Temperatures of hibernacula and changes in body composition of arctic ground squirrels over winter [J].
Buck, CL ;
Barnes, BM .
JOURNAL OF MAMMALOGY, 1999, 80 (04) :1264-1276
[10]   Annual cycle of body composition and hibernation in free-living arctic ground squirrels [J].
Buck, CL ;
Barnes, BM .
JOURNAL OF MAMMALOGY, 1999, 80 (02) :430-442