首页> 美国卫生研究院文献>The Journal of Physiology >Comparison of neurotransmission with nerve trunk and transmural field stimulation in guinea-pig mesenteric artery.
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Comparison of neurotransmission with nerve trunk and transmural field stimulation in guinea-pig mesenteric artery.

机译:豚鼠肠系膜动脉神经传递与神经干和经壁刺激的比较。

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摘要

1. Intracellular electrical and contractile responses to sympathetic nerve trunk stimulation (NTS) and transmural electrical field stimulation (TMS) were compared in the guinea-pig mesenteric artery in vitro. 2. Step increases in voltage with NTS gave rise to excitatory junctional potentials (EJPs) which reached a plateau amplitude of 5-10 mV, whereas with TMS larger amplitude EJPs and sometimes action potentials were obtained. 3. EJPs of equal amplitude (1-7 mV) elicited with TMS and NTS had the same rise time, duration and decay half-time. 4. Slow depolarization obtained with repetitive stimulation was significantly greater in amplitude with TMS than with NTS. 5. Equal amplitude EJPs were obtained throughout the preparation with NTS. With TMS, the amplitude of responses declined substantially with distance from the stimulating electrodes. 6. Tetrodotoxin (TTX) completely blocked EJPs, slow depolarization and contraction with NTS; however, with TMS a TTX-resistant component was observed. The TTX-resistant response to TMS was abolished in the presence of a low-Ca2+ superfusion solution but was not affected by endothelium removal. 7. Phentolamine or prazosin abolished slow depolarization but not EJPs with NTS or TMS. Prazosin abolished contraction with NTS and reduced but did not abolish contraction with TMS. 8. alpha, beta-Methylene ATP abolished EJPs with NTS, whereas with TMS only EJPs obtained with low stimulus intensities were abolished. alpha, beta-Methylene ATP did not block contraction with either NTS or TMS. 9. Combined TTX, prazosin and alpha, beta-methylene ATP abolished EJPs initiated with TMS at all but the highest stimulus intensities (12-20 V, 0.3 ms duration). 10. It is concluded that responses obtained with NTS can be reliably attributed to the release of transmitter by the conduction of action potentials in paravascular nerves, whereas activation by TMS is a more complex phenomenon dependent upon stimulus strength and probably involving multiple forms of activation.
机译:1.比较了豚鼠肠系膜动脉对交感神经干刺激(NTS)和跨壁电场刺激(TMS)的细胞内电和收缩反应。 2.随着NTS电压的逐步升高,产生的兴奋性连接电位(EJPs)达到了5-10 mV的平稳幅度,而使用TMS时,振幅更大的EJPs有时获得了动作电位。 3.用TMS和NTS引起的等幅(1-7 mV)EJP具有相同的上升时间,持续时间和衰减半衰期。 4.重复刺激获得的缓慢去极化在TMS上的幅度明显大于在NTS上。 5.在整个NTS制备过程中均获得了等振幅的EJP。使用TMS,响应的幅度随着距刺激电极的距离而大大降低。 6.河豚毒素(TTX)完全阻断EJPs,减缓去极化和NTS收缩;但是,在TMS中观察到了耐TTX的成分。在低Ca2 +超融合溶液的存在下,对TMS的TTX耐药性消失了,但不受内皮去除的影响。 7.酚妥拉明或哌唑嗪消除了缓慢的去极化,但没有消除NTS或TMS引起的EJP。哌唑嗪取消了与NTS的收缩,但减少了但未取消与TMS的收缩。 8.α,β-亚甲基ATP废除了NTS的EJP,而TMS仅废除了刺激强度低的EJP。 α,β-亚甲基ATP不会阻止NTS或TMS的收缩。 9.除了最高刺激强度(12-20 V,0.3 ms持续时间)外,所有联合使用TTX,哌唑嗪和α,β-亚甲基ATP废除的TJP均由TMS引发。 10.结论是,通过NTS获得的应答可以可靠地归因于血管旁神经中动作电位的传导,从而释放了递质,而TMS的激活是一种更复杂的现象,取决于刺激强度,可能涉及多种激活形式。

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