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1)  image of Purkinje Sanson
浦肯野-桑松像
2)  Purkinje cell
浦肯野细胞
1.
C-fos protein expression in the cerebellar dentate nuclei and Purkinje cells of the amygdala-kindled rats;
杏仁核点燃癫癎鼠小脑齿状核和浦肯野细胞fos蛋白的表达
2.
Objective To comparatively observe the ultrastructural changes of Purkinje cells(PCs)in the cerebellar cortex of young adult cats(1-3 years)and old cats(12-13 years),and to explore the possible physiological impacts of these age-related changes.
目的比较观察青年猫(1-3岁)和老年猫(12-13岁)小脑皮质浦肯野细胞(Purkinje cell,PC)的超微结构,探讨其年龄相关变化的生理意义。
3.
Purkinje cells(PCs) in the cerebellar cortex are displayed through routine Nissl stain and Golgi method.
用常规Nissl染色和成年动物Golgi染色方法分别标记小脑浦肯野细胞(Purkinje cell,PC),比较其染色效果,结果显示,常规Nissl染色只能观察到PC胞体,胞体内的胞核及核仁也清晰可见,但树突和轴突不着色;成年动物Golgi染色能清晰地显示PC树突、轴突及树突棘的形态结构,但胞体结构不清楚。
3)  purkinje fibers
浦肯野纤维
1.
Effects of chromium on the pacemaker current If of sheep cardial Purkinje fibers;
铬对绵羊浦肯野纤维起搏离子流(I_f)的影响
4)  Purkinje potential
浦肯野电位
1.
The role of Purkinje potential and diastolic potential in radiofrequency catheter ablation of idiopathic left ventricular tachycardia;
标测浦肯野电位和舒张期电位在特发性左心室室性心动过速消融中的作用
5)  Purkinje cells
浦肯野细胞
1.
Objective To find out a better culture medium for cultivating mouse cerebellar Purkinje cells.
目的 研究小鼠小脑浦肯野细胞的体外培养条件。
2.
Objective:To study the changes of the intrinsic electrophysiological characteristics of cerebellar Purkinje cells during the stage of the elevation of intracellular Ca2+ through micro-injected of IP3 receptor excitomotor of Purkinje cells in cerebellar vermis.
目的:通过向细胞内微量注射IP3受体激动剂诱发细胞内高钙,探讨细胞内高钙对小鼠小脑浦肯野细胞内在电生理特性变化的影响。
3.
Objective:To study the changes of the intrinsic electrophysiological characteristics of cerebellar Purkinje cells and the possible mechanisms during the early stage of simulated ischemia by reducing the perfusion to the sagittal slices of cerebellar vermis in rat.
目的:通过减慢小脑蚓部矢状切片灌流速度来模拟缺血,探讨缺血早期小脑浦肯野细胞内在电生理特性的变化及其可能机制。
6)  Purkinje phenomenon
浦肯野现象
补充资料:浦肯野纤维


浦肯野纤维
Purkinje fibers

系心脏传导系统的组成部分,浦肯野纤维是左右束支分布的最后细小分支,这些纤维密布于两个心室的心内膜下层,与普通心肌纤维相连接。浦肯野纤维具有很强的传导能力。
说明:补充资料仅用于学习参考,请勿用于其它任何用途。
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