• 제목/요약/키워드: Inwardly rectifying $K^+$ channel

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DAMGO modulates two-pore domain K+ channels in the substantia gelatinosa neurons of rat spinal cord

  • Cho, Pyung Sun;Lee, Han Kyu;Lee, Sang Hoon;Im, Jay Zoon;Jung, Sung Jun
    • The Korean Journal of Physiology and Pharmacology
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    • 제20권5호
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    • pp.525-531
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    • 2016
  • The analgesic mechanism of opioids is known to decrease the excitability of substantia gelatinosa (SG) neurons receiving the synaptic inputs from primary nociceptive afferent fiber by increasing inwardly rectifying $K^+$ current. In this study, we examined whether a ${\mu}$-opioid agonist, [D-Ala2,N-Me-Phe4, Gly5-ol]-enkephalin (DAMGO), affects the two-pore domain $K^+$ channel (K2P) current in rat SG neurons using a slice whole-cell patch clamp technique. Also we confirmed which subtypes of K2P channels were associated with DAMGO-induced currents, measuring the expression of K2P channel in whole spinal cord and SG region. DAMGO caused a robust hyperpolarization and outward current in the SG neurons, which developed almost instantaneously and did not show any time-dependent inactivation. Half of the SG neurons exhibited a linear I~V relationship of the DAMGO-induced current, whereas rest of the neurons displayed inward rectification. In SG neurons with a linear I~V relationship of DAMGO-induced current, the reversal potential was close to the $K^+$ equilibrium potentials. The mRNA expression of TWIK (tandem of pore domains in a weak inwardly rectifying $K^+$ channel) related acid-sensitive $K^+$ channel (TASK) 1 and 3 was found in the SG region and a low pH (6.4) significantly blocked the DAMGO-induced $K^+$ current. Taken together, the DAMGO-induced hyperpolarization at resting membrane potential and subsequent decrease in excitability of SG neurons can be carried by the two-pore domain $K^+$ channel (TASK1 and 3) in addition to inwardly rectifying $K^+$ channel.

Regulation of G-protein Coupled Inwardly Rectifying $K^+$ Channel Expressed in HEK 293 Cell by Phosphorylation

  • Kim, Jae-Hoon;Park, Choon-Ok;Kim, Yeon-Woong;Hong, Seong-Geun
    • 한국생물물리학회:학술대회논문집
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    • 한국생물물리학회 1998년도 학술발표회
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    • pp.40-41
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    • 1998
  • Acetylcholine-activated $K^{+}$ ($K_{ACh}$) channels has been introduced as a typical G protein ( $G_{K}$)-coupled inwardly rectifying $K^{+}$ (GIRK) channel, which constructs with four subunit composed of two types of GIRK isoforms, GIRK1 and GIRK4 (or CIR) for the atrial $K_{ACh}$ channel.(omitted)d)d)d)

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Modulation of Inwardly Rectifying $K^+$ Channel by Intracellular and Extracellular pH in Bovine Aortic Endothelial Cells

  • Park, Kyu-Sang;Kong, In-Deok;Lee, Joong-Woo;Rhim, Hye-Whon;Kim, Young-Chul;So, In-Suk;Kim, Ki-Whan
    • The Korean Journal of Physiology and Pharmacology
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    • 제6권5호
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    • pp.255-260
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    • 2002
  • The effects of intracellular and extracellular pH on the inwardly rectifying $K^+$ (IRK) channel of the bovine aortic endothelial cells (BAECs) were examined using whole-cell patch-clamp technique. The IRK current, efficiently blocked by $Ba^{2+}\;(200{\mu}M),$ is the most prominent membrane current in BAECs, which mainly determines the resting membrane potential. The expression of Kir2.1 was observed in BAECs using reverse transcriptase-polymerase chain reaction (RT-PCR) analysis. Intracellular alkalinization, elicited by the extracellular substitution of NaCl with $NH_4Cl$ (30 mM), significantly augmented the amplitude of IRK current. On the contrary, the amplitude of IRK current was attenuated by the Na-acetate (30 mM)-induced intracellular acidification. The changes in extracellular pH also closely modulated the amplitude of IRK current, which was decreased to $40.2{\pm}1.3%$ of control upon switching the extracellular pH to 4.0 from 7.4. The extracellular pH value for half-maximal inhibition (pK) of IRK current was 5.11. These results demonstrate that the activity of IRK channel in BAECs, probably Kir2.1, was suppressed by proton at both sides of plasma membrane.

Block of ATP-Sensitive $K^+$ Channels Expressed in Xenopus Oocytes by Dimethyl Sulfoxide

  • Park, Jin-Bong;Chae, Soo-Wan
    • The Korean Journal of Physiology and Pharmacology
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    • 제5권2호
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    • pp.157-163
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    • 2001
  • The effects of dimethyl sulfoxide (DMSO) were studied in two groups of Xenopus oocytes, one expressing ATP sensitive $K^+\;(K_{ATP})$ channel comprised of sulfonylurea receptor SUR1 and inwardly rectifying $K^+$ channel subunit Kir6.2, and the other expressing renal $K_{ATP}$ channel ROMK2. At concentrations of $0.3{\sim}10%$ (vol/vol) DMSO inhibited whole cell Kir6.2/SUR1 currents elicited by bath application of sodium azide (3 mM) in a concentration-dependent manner. The inhibition constant and Hill coefficient were 2.93% and 1.62, respectively. ROMK2 currents, however, was not affected significantly by DMSO. The results support the idea that DMSO inhibits $K_{ATP}$ channel expressed in Xenopus oocyte through a protein-specific mechanism(s) that remains to be further elucidated.

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Localization of Divalent Cation-Binding Site in the Pore of a Small Conductance $Ca^{2+}$-activated $K^+$ Channel and Its Role in Determining Current-Voltage Relationship

  • Heun Soh;Shin, Na-Rae;Park, Chul-Seung
    • 한국생물물리학회:학술대회논문집
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    • 한국생물물리학회 2002년도 제9회 학술 발표회 프로그램과 논문초록
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    • pp.33-33
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    • 2002
  • In our previous study (Soh and Park, 2001), we proposed that the inwardly rectifying current-voltage (I-V) relationship of small-conductance $Ca^{2+}$-activated $K^{+}$ channels (S $K_{Ca}$ channels) is the result of voltage-dependent blockade of $K^{+}$ currents by intracellular divalent cations. We expressed a cloned S $K_{Ca}$ channel, rSK2, in Xenopus oocytes and further characterized the nature of the divalent cation-binding site by electrophysiological means.(omitted)

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Mitochondrial dysfunction reduces the activity of KIR2.1 K+ channel in myoblasts via impaired oxidative phosphorylation

  • Woo, JooHan;Kim, Hyun Jong;Nam, Yu Ran;Kim, Yung Kyu;Lee, Eun Ju;Choi, Inho;Kim, Sung Joon;Lee, Wan;Nam, Joo Hyun
    • The Korean Journal of Physiology and Pharmacology
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    • 제22권6호
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    • pp.697-703
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    • 2018
  • Myoblast fusion depends on mitochondrial integrity and intracellular $Ca^{2+}$ signaling regulated by various ion channels. In this study, we investigated the ionic currents associated with $[Ca^{2+}]_i$ regulation in normal and mitochondrial DNA-depleted(${\rho}0$) L6 myoblasts. The ${\rho}0$ myoblasts showed impaired myotube formation. The inwardly rectifying $K^+$ current ($I_{Kir}$) was largely decreased with reduced expression of KIR2.1, whereas the voltage-operated $Ca^{2+}$ channel and $Ca^{2+}$-activated $K^+$ channel currents were intact. Sustained inhibition of mitochondrial electron transport by antimycin A treatment (24 h) also decreased the $I_{Kir}$. The ${\rho}0$ myoblasts showed depolarized resting membrane potential and higher basal $[Ca^{2+}]_i$. Our results demonstrated the specific downregulation of $I_{Kir}$ by dysfunctional mitochondria. The resultant depolarization and altered $Ca^{2+}$ signaling might be associated with impaired myoblast fusion in ${\rho}0$ myoblasts.

[$Ca^{2+}$ Signalling in Endothelial Cells: Role of Ion Channels

  • Nilius, Bernd;Viana, Felix;Kamouchi, Masahiro;Fasolato, Cristina;Eggermont, Jan;Droogmans, Guy
    • The Korean Journal of Physiology and Pharmacology
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    • 제2권2호
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    • pp.133-145
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    • 1998
  • $Ca^{2+}-signals$ in endothelial cells are determined by release from intracellular stores and entry through the plasma membrane. In this review, the nature of $Ca^{2+}$ entry and mechanisms of its control are reviewed. The following ion channels play a pivotal role in regulation of the driving force for $Ca^{2+}$ entry: an inwardly rectifying $K^+$ channel, identified as Kir2.1, a big-conductance, $Ca^{2+}-activated$ $K^+$ channel (hslo) and at least two $Cl^-$ channels (a volume regulated $Cl^-$ channel, VRAC, and a $Ca^{2+}$ activated $Cl^-$ channel, CaCC). At least two different types of $Ca^{2+}$-entry channels exist: 1. A typical CRAC-like, highly selective $Ca^{2+}$ channel is described. Current density for this $Ca^{2+}$ entry is approximately 0.1pA/pF at 0 mV and thus 10 times smaller than in Jurkat or mast cells. 2. Another entry pathway for $Ca^{2+}$ entry is a more non-selective channel, which might be regulated by intracellular $Ca^{2+}$. Although detected in endothelial cells, the functional role of trp1,3,4 as possible channel proteins is unclear. Expression of trp3 in macrovascular endothelial cells from bovine pulmonary artery induced non-selective cation channels which are probably not store operated or failed to induce any current. Several features as well as a characterisation of $Ca^{2+}$-oscillations in endothelial cells is also presented.

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간극결합채널의 아미노말단이 채널개폐에 미치는 영향 (Effect of Amino Terminus of Gap Junction Hemichannel on Its Channel Gating)

  • 임재길;천미색;정진;오승훈
    • 생명과학회지
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    • 제16권1호
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    • pp.37-43
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    • 2006
  • 간극결합은 이웃하는 두 세포 사이에 형성된 이온채널이며 또한 단일세포막에서도 작용한다. 간극결합채널을 형성하는 아미노 말단의 10번째 아미노산 잔기 부위까지가 개폐극성(gating polarity)과 전류-전압관계에 영향을 미친다. 정상적인 Cx32 채널은 음성의 개폐극성과 내향적인 정류현상을 보이는 반면, 음성전하를 띠는 aspartate로 치환된 T8D 채널은 반대의 개폐극성과 직선의 정류현상을 보인다. 이러한 개폐극성과 정류현상의 변화가 전하 자체에 의한 것인지 아니면 아미노 말단의 구조적인 변화에 의한 것인지는 아직 불명확하다. 이러한 문제점을 규명하기 위하여 아미노 말단의 8번째 아미노산 잔기를 cysteine기로 치환시킨 T8C 채널을 만들어 substituted-cysteine accessibility method (SCAM) 방법으로 이 채널의 생물리학적 특성을 조사하고자 하였다. T8C 채널은 정상적인 Cx32 채널처럼 음성의 개폐극성과 내향적인 정류현상을 보였으며, cysteine기로 치환이 정상적인 Cx32 채널의 원래 구조를 변화시키지 않았다는 것을 의미한다. 본 연구에서는 이런 전하효과를 규명하기 위하여 음성 전하를 갖는 MTSES-와 양성전하를 갖는 MTSET+를 사용하였다. MTSES-를 처리하면 T8C 채널은 T8D 채널의 특성처럼 양성의 개폐극성과 직선의 정류현상을 보였다. 그러나 양성전하를 갖는 MTSET+를 처리한 경우에는 T8C 채널은 본래의 특성을 그대로 유지하였다. 작은 분자의 MTS에 의해서 부여된 전하가 아미노 말단의 구조적인 변화를 초래하지는 않을 것으로 생각된다. 따라서 반대의 전하를 띠는 MTSES-와 MTSET+가 서로 상반대는 영향을 미치는 것으로 보아 본 연구에서 관찰된 개폐극성과 전류-전압의 변화는 아미노말단의 구조적인 변화라기보다는 MTS에 의해서 부여된 전하 자체에 기인한다고 할 수 있다. 또한 MTS가 아미노말단의 8번째 부위에 접근하여 반응을 일으킬 수 있다는 결과는 간극결합채널의 아미노말단이 채널의 통로(pore)를 형성한다는 가설을 뒷받침한다.