• 제목/요약/키워드: hyperpolarization-activated currents

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Contractile and Electrical Responses of Guinea-pig Gastric Smooth Muscle to Bradykinin

  • Kim, Chul-Soo;Jun, Jae-Yeoul;Kim, Sung-Joon;So, In-Suk;Kim, Ki-Whan
    • The Korean Journal of Physiology
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    • 제29권2호
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    • pp.233-241
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    • 1995
  • The nonapeptide bradykinin has been shown to exhibit an array of biological activities including relaxation/contraction of various smooth muscles. In order to investigate the effects of bradykinin on the contractility and the electrical activity of antral circular muscle of guinea-pig stomach, the isometric contraction and membrane potential were recorded. Also, using standard patch clamp technique, the $Ca^{2+}-activated$ K currents were recorded to observe the change in cytosolic $Ca^{2+}$ concentration. $0.4 {\mu}M$ bradykinin induced a triphasic contractile response (transient contraction-transient relaxation-sustained contraction) and this response was unaffected by pretreatment with neural blockers (tetrodotoxin, atropine and guanethidine) or with apamin. Bradykinin induced hyperpolarization of resting membrane potential and enhanced the amplitude of slow waves and spike potentials. The enhancement of spike potentials was blocked by neural blockers. Both the bradykinin-induced contractions and changes in membrane potential were reversed by the selective $B_2$-receptor antagonist $(N{\alpha}-adamantaneacetyl-_{D}-Arg-[Hyp, Thy,_{D}-Phe]-bradykinin)$. In whole-cell patch clamp experiment, we held the membrane potential at -20 mV and spontaneous and transient changes of Ca-activated K currents were recorded. Bradykinin induced a large transient outward current, consistent with a calcium-releasing action of bradykinin front the intracellular calcium pool, because such change was blocked by pretreatment with caffeine. Bradykinin-induced contraction was also blocked by pretreatment with caffeine. From these results, it is suggested that bradykinin induces a calciumrelease and contraction through the $B_{2}$ receptor of guinea-pig gastric smooth muscle. Enhancement of slow wave activity is an indirect action of bradykinin through enteric nerve cells embedded in muscle strip.

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Painful Channels in Sensory Neurons

  • Lee, Yunjong;Lee, Chang-Hun;Oh, Uhtaek
    • Molecules and Cells
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    • 제20권3호
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    • pp.315-324
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    • 2005
  • Pain is an unpleasant sensation experienced when tissues are damaged. Thus, pain sensation in some way protects body from imminent threat or injury. Peripheral sensory nerves innervated to peripheral tissues initially respond to multiple forms of noxious or strong stimuli, such as heat, mechanical and chemical stimuli. In response to these stimuli, electrical signals for conducting the nociceptive neural signals through axons are generated. These action potentials are then conveyed to specific areas in the spinal cord and in the brain. Sensory afferent fibers are heterogeneous in many aspects. For example, sensory nerves are classified as $A{\alpha}$, $-{\beta}$, $-{\delta}$ and C-fibers according to their diameter and degree of myelination. It is widely accepted that small sensory fibers tend to respond to vigorous or noxious stimuli and related to nociception. Thus these fibers are specifically called nociceptors. Most of nociceptors respond to noxious mechanical stimuli and heat. In addition, these sensory fibers also respond to chemical stimuli [Davis et al. (1993)] such as capsaicin. Thus, nociceptors are considered polymodal. Recent advance in research on ion channels in sensory neurons reveals molecular mechanisms underlying how various types of stimuli can be transduced to neural signals transmitted to the brain for pain perception. In particular, electrophysiological studies on ion channels characterize biophysical properties of ion channels in sensory neurons. Furthermore, molecular biology leads to identification of genetic structures as well as molecular properties of ion channels in sensory neurons. These ion channels are expressed in axon terminals as well as in cell soma. When these channels are activated, inward currents or outward currents are generated, which will lead to depolarization or hyperpolarization of the membrane causing increased or decreased excitability of sensory neurons. In order to depolarize the membrane of nerve terminals, either inward currents should be generated or outward currents should be inhibited. So far, many cationic channels that are responsible for the excitation of sensory neurons are introduced recently. Activation of these channels in sensory neurons is evidently critical to the generation of nociceptive signals. The main channels responsible for inward membrane currents in nociceptors are voltage-activated sodium and calcium channels, while outward current is carried mainly by potassium ions. In addition, activation of non-selective cation channels is also responsible for the excitation of sensory neurons. Thus, excitability of neurons can be controlled by regulating expression or by modulating activity of these channels.

생쥐 초기 배 발달 동안 변화되는 칼슘과 포타슘 이온 ([ $Ca^{2+}\;and\;K^+$ ] Concentrations Change during Early Embryonic Development in Mouse)

  • 강다원;허창기;최창록;박재용;홍성근;한재희
    • 한국수정란이식학회지
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    • 제21권1호
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    • pp.35-43
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    • 2006
  • 이온 통로 및 이온 농도의 변화는 수정 현상을 포함한 다양한 세포 기능에 중요한 역할을 한다. 그러나 이러한 이온의 변화가 포유동물 배의 발달과정에 어떻게 관여하는지에 대해서는 알려진 바가 적다. 본 연구에서는 생쥐난자가 수정 이후 배 발달 과정을 거치는 동안 나타나는 칼슘과 포타슘 이온의 변화를 전기생리학적 실험 기법과 공초점 현미경을 이용하여 조사하였다. 수정 시에 나타나는 일시적인 세포내 칼슘 농도 변화는 활성 전류(수정 전류)와 함께 동반되었다. 그러나 수정과 같은 극적인 현상이나 자극이 없는 시기에는 세포내 칼슘 농도가 배 발달 시기와 상관없이 일정한 수준으로 유지되었다. 이것은 세포내외의 칼슘 농도의 보상현상으로도 설명할 수 있을 것이다. 배 발달이 진행됨에 따라 난관액의 포타슘 농도는 계속 증가하여 8세포기 배에서는 난자보다 26% 증가하였다. 상실배, 포배기에서는 포타슘 농도가 감소하였다. 배 발달이 진행됨에 따라 주로 포타슘 이온에 의해 조절되는 막 전압은 탈분극되고, 칼슘 이온의 세포 안으로의 유입은 점점 감소하였다. 생쥐 난자에 5 mM의 칼슘을 처리하였을 때 막 전압은 일시적인 과분극 현상을 보이다가 회복되었다. 칼슘 유입에 따른 막 전압 변화에 관여하는 포타슘 통로를 확인하기 위하여 포타슘 통로 차단제를 전 처리한 후 칼슘을 처리한 결과, 칼슘만을 단독으로 처리한 결과와 유의한 차이를 보이지 않았다. 막 전압의 과분극 현상은 잘 알려진 포타슘 통로 차단제인 TEA에 억제되지 않았다. 그리고 small conductance $Ca^{2+}$-activated 포타슘 통로 차단제 인 apamin에 의해서도 억제되지 않았다. 따라서 생쥐 난자에서 과분극을 유발시키는 포타슘 통로는 TEA와 apamin에 억제되지 않는 다른 포타슘 통로로 생각된다. 이상의 결과로부터 배 발달 동안 변화되는 칼슘과 포타슘 이온은 수정 및 초기 배 발달에 중요한 인자로써 작용할 것으로 생각되며, two-pore domain 포타슘 통로가 난자의 막 전압 조절에 관여할 가능성을 제시한다.

Decreased inward rectifier and voltage-gated K+ currents of the right septal coronary artery smooth muscle cells in pulmonary arterial hypertensive rats

  • Kim, Sung Eun;Yin, Ming Zhe;Kim, Hae Jin;Vorn, Rany;Yoo, Hae Young;Kim, Sung Joon
    • The Korean Journal of Physiology and Pharmacology
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    • 제24권1호
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    • pp.111-119
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    • 2020
  • In vascular smooth muscle, K+ channels, such as voltage-gated K+ channels (Kv), inward-rectifier K+ channels (Kir), and big-conductance Ca2+-activated K+ channels (BKCa), establish a hyperpolarized membrane potential and counterbalance the depolarizing vasoactive stimuli. Additionally, Kir mediates endothelium-dependent hyperpolarization and the active hyperemia response in various vessels, including the coronary artery. Pulmonary arterial hypertension (PAH) induces right ventricular hypertrophy (RVH), thereby elevating the risk of ischemia and right heart failure. Here, using the whole-cell patch-clamp technique, we compared Kv and Kir current densities (IKv and IKir) in the left (LCSMCs), right (RCSMCs), and septal branches of coronary smooth muscle cells (SCSMCs) from control and monocrotaline (MCT)-induced PAH rats exhibiting RVH. In control rats, (1) IKv was larger in RCSMCs than that in SCSMCs and LCSMCs, (2) IKv inactivation occurred at more negative voltages in SCSMCs than those in RCSMCs and LCSMCs, (3) IKir was smaller in SCSMCs than that in RCSMCs and LCSMCs, and (4) IBKCa did not differ between branches. Moreover, in PAH rats, IKir and IKv decreased in SCSMCs, but not in RCSMCs or LCSMCs, and IBKCa did not change in any of the branches. These results demonstrated that SCSMC-specific decreases in IKv and IKir occur in an MCT-induced PAH model, thereby offering insights into the potential pathophysiological implications of coronary blood flow regulation in right heart disease. Furthermore, the relatively smaller IKir in SCSMCs suggested a less effective vasodilatory response in the septal region to the moderate increase in extracellular K+ concentration under increased activity of the myocardium.