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J Physiol. 1982 Jan;322:127-37. doi: 10.1113/jphysiol.1982.sp014027.
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本文引用的文献

1
Brain stem sites mediating specific and non-specific temperature effects on thermoregulation in the pekin duck.介导北京鸭体温调节中特异性和非特异性温度效应的脑干位点。
J Physiol. 1981 May;314:161-74. doi: 10.1113/jphysiol.1981.sp013698.
2
Serum arginine-vasotocin (AVT) and afferent and central control of osmoregulation in conscious Pekin ducks.血清精氨酸血管加压催产素(AVT)与清醒北京鸭渗透压调节的传入和中枢控制
Pflugers Arch. 1980 Sep;387(2):99-106. doi: 10.1007/BF00584259.
3
Opposing effects of hypothalamic cooling on threshold and sensitivity of metabolic response to body cooling in rabbits.下丘脑冷却对家兔身体冷却代谢反应阈值和敏感性的相反作用。
J Physiol. 1982 Jan;322:139-50. doi: 10.1113/jphysiol.1982.sp014028.
4
Effect of calcium removal on thermosensitivity of preoptic neurons in hypothalamic slices.去除钙对下丘脑切片视前区神经元热敏感性的影响。
Neurosci Lett. 1980 Nov;20(2):171-5. doi: 10.1016/0304-3940(80)90141-x.
5
Thermoregulation during fever: change of set-point or change of gain.发热时的体温调节:调定点变化还是增益变化。
Pflugers Arch. 1970;321(4):293-302. doi: 10.1007/BF00588644.
6
Biogenic amines and body temperature in the hen Gallus domesticus.
Am J Physiol. 1974 Dec;227(6):1399-405. doi: 10.1152/ajplegacy.1974.227.6.1399.
7
Sensory transmission of spinal heat and cold sensitivity in ascending spinal neurons.
Pflugers Arch. 1971;328(2):103-20. doi: 10.1007/BF00592439.
8
Effects of altering rostral brain stem temperature on temperature regulation in the Adelie penguin, Pygoscelis adeliae.改变阿德利企鹅(Pygoscelis adeliae)延髓脑干温度对体温调节的影响。
Pflugers Arch. 1976 Mar 11;362(1):7-13. doi: 10.1007/BF00588675.
9
Hypothalamic thermosensitivity in conscious Pekin ducks.清醒北京鸭的下丘脑温度敏感性
Am J Physiol. 1978 Sep;235(3):R130-40. doi: 10.1152/ajpregu.1978.235.3.R130.
10
Thermosensitivity of single units in the hypothalamus of the conscious Pekin duck.
J Neurobiol. 1977 Nov;8(6):523-35. doi: 10.1002/neu.480080603.

清醒鸭下丘脑内对核心温度变化有反应的高Q10单位的特性。

Properties of high Q10 units in the conscious duck's hypothalamus responsive to changes of core temperature.

作者信息

Lin M T, Simon E

出版信息

J Physiol. 1982 Jan;322:127-37. doi: 10.1113/jphysiol.1982.sp014027.

DOI:10.1113/jphysiol.1982.sp014027
PMID:7069610
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1249660/
Abstract
  1. Five Pekin ducks were chronically implanted with a device allowing thermal stimulation of the hypothalamus and simultaneous recording of hypothalamic single unit activity on the conscious animals in repeated experiments. In addition, the core temperature of the animals could be lowered by means of a thermode tube which was placed in the colon and was perfused by a cold solution. Hypothalamic temperature was measured in the centre of the hypothalamic thermode array; core temperature was measured in the axillary pit.2. Each unit was tested in two periods of hypothalamic ramp cooling, one was performed at normal core temperature, and the other at a lowered core temperature during sustained intestinal cooling.3. Among forty-six neurones exhibiting a local Q(10) > 2 of their discharge rate, intestinal cooling was found to activate 26% (fall feed-back units), to inhibit 44% (rise feed-back units), and not to affect 30% (non-reactive units). The local Q(10) values of the fall feed-back units were, on average, significantly higher than those of the rise feed-back units.4. By multiple linear regression analysis the thermal coefficients (impulses/sec. degrees C) relating unit discharge to hypothalamic (local) and to core (remote) temperature changes were evaluated. The fall feed-back units exhibited average local temperature coefficients of 0.79+/-0.11 and remote coefficients of -2.75+/-0.56 (means+/-s.e. of mean); the corresponding coefficients of the rise feed-back units were determined as 0.44+/-0.08 and +2.33+/-0.41.5. The results of this study support the hypothesis that the activity of hypothalamic neurones conveying extrahypothalamic cold signals is depressed more by hypothalamic cooling than that of the neurons conveying extrahypothalamic warm signals. This would explain the paradoxical effects of hypothalamic cooling on thermoregulatory effector activity in birds.
摘要
  1. 五只北京鸭被长期植入一种装置,该装置能对下丘脑进行热刺激,并在重复实验中对清醒动物的下丘脑单单位活动进行同步记录。此外,可通过置于结肠内并用冷溶液灌注的热电极管来降低动物的核心体温。下丘脑温度在下丘脑热电极阵列中心测量;核心体温在腋窝测量。

  2. 每个单位在下丘脑斜坡冷却的两个阶段进行测试,一个在正常核心体温下进行,另一个在持续肠道冷却期间在降低的核心体温下进行。

  3. 在46个放电率局部Q(10)>2的神经元中,发现肠道冷却激活了26%(下降反馈单位),抑制了44%(上升反馈单位),且不影响30%(无反应单位)。下降反馈单位的局部Q(10)值平均显著高于上升反馈单位。

  4. 通过多元线性回归分析,评估了将单位放电与下丘脑(局部)和核心(远程)温度变化相关的热系数(脉冲/秒·摄氏度)。下降反馈单位的平均局部温度系数为0.79±0.11,远程系数为-2.75±0.56(平均值±平均标准误差);上升反馈单位的相应系数确定为0.44±0.08和+2.33±0.41。

  5. 本研究结果支持以下假设:与传递下丘脑外温暖信号的神经元相比,传递下丘脑外寒冷信号的下丘脑神经元的活动受下丘脑冷却的抑制更大。这将解释下丘脑冷却对鸟类体温调节效应器活动的矛盾影响。