由KCNQ1和KCNE3形成的构成性开放通道
B C Schroeder1, S Waldegger, S Fehr
1Zentrum für Molekulare Neurobiologie Hamburg, Hamburg University, Germany.
Nature
|January 26, 2000
概括
新型β子单元KCNE3改变KCNQ1通道,产生快速电流. 这种KCNQ1/KCNE3通道可能对肠道化物分泌至关重要,影响诸如囊性纤维化等疾病.
科学领域:
- 分子生物学分子生物学
- 离子通道生理学 离子通道生理学
- 人类遗传学 人类遗传学
背景情况:
- KCNQ通道与人类疾病有关.
- KCNQ1和KCNE1形成了I (Ks) 电流,对心脏功能至关重要.
- KCNQ通道的功能障碍导致各种病理.
研究的目的:
- 研究新型β子单元KCNE3对KCNQ1通道的功能影响.
- 探索KCNQ1/KCNE3通道在肠道生理学和疾病中的作用.
主要方法:
- 对KCNQ1/KCNE3电流的电生理记录.
- 在肠道组织中进行信使RNA局部化研究.
- 药理学和电压依赖性对通道活性进行表征.
主要成果:
- KCNE3显著修改了KCNQ1的通道特性,从而产生了快速的,电压独立的电流.
- 此外,KCNE3还抑制了KCNQ4和HERG的通道活性.
- KCNQ1和KCNE3在肠道密室细胞中同定位,这表明它们之间存在功能相互作用.
结论:
- KCNQ1/KCNE3复合体形成了一个独特的通道,具有独特的特性.
- 这条通道可能参与循环AMP刺激的肠道化物分泌.
- KCNQ1/KCNE3通道是分泌性腹和囊性纤维化疾病的潜在治疗标.
相关概念视频
Ion Channels
The movement of ions like sodium, potassium, and calcium into and out of the cell is essential to maintain the electrochemical gradient in living cells. The ion channels—a class of membrane transport proteins—help maintain this ionic gradient for the smooth functioning of physiological activities such as maintaining cell size and volume, conducting nerve impulses, and gas and nutrient exchange.
Ion channels are specialized integral membrane proteins on the plasma membrane that allow specific...
Ion channels are specialized integral membrane proteins on the plasma membrane that allow specific...
Gap Junctions
Multicellular organisms employ a variety of ways for cells to communicate with each other. Gap junctions are specialized proteins that form pores between neighboring cells in animals, connecting the cytoplasm between the two, and allowing for the exchange of molecules and ions. They are found in a wide range of invertebrate and vertebrate species, mediate numerous functions including cell differentiation and development, and are associated with numerous human diseases, including cardiac and...
Non-gated Ion Channels
Ion channels are specialized proteins on the plasma membrane that allow charged ions to pass down their electrochemical gradient. Their main function is to maintain the membrane potential which is critical for cell viability. These channels are either gated or non-gated and can transport more than a thousand ions within milliseconds for the cellular event to occur.
Compared to the gated ion channels, the non-gated channels, also known as leakage or passive channels, have no gating mechanism.
Compared to the gated ion channels, the non-gated channels, also known as leakage or passive channels, have no gating mechanism.
Voltage-gated Ion Channels
Voltage-gated ion channels are transmembrane proteins that open and close in response to changes in the membrane potential. They are present on the membranes of all electrically excitable cells such as neurons, heart, and muscle cells.
Generally, all voltage-gated ion channels have a 'voltage-sensing domain' that spans the lipid bilayer. The charged residues in the sensor move in response to the membrane potential changes that open the channel allowing ions movement. There are several types of...
Generally, all voltage-gated ion channels have a 'voltage-sensing domain' that spans the lipid bilayer. The charged residues in the sensor move in response to the membrane potential changes that open the channel allowing ions movement. There are several types of...
Non-gated Ion Channels
Ion channels are specialized proteins on the plasma membrane that allow charged ions to pass down their electrochemical gradient. Their main function is to maintain the membrane potential which is critical for cell viability. These channels are either gated or non-gated and can transport more than a thousand ions within milliseconds for the cellular event to occur.
Compared to the gated ion channels, the non-gated channels, also known as leakage or passive channels, have no gating mechanism.
Compared to the gated ion channels, the non-gated channels, also known as leakage or passive channels, have no gating mechanism.
Voltage-gated Ion Channels
Voltage-gated ion channels are transmembrane proteins that open and close in response to changes in the membrane potential. They are present on the membranes of all electrically excitable cells such as neurons, heart, and muscle cells.
Generally, all voltage-gated ion channels have a 'voltage-sensing domain' that spans the lipid bilayer. The charged residues in the sensor move in response to the membrane potential changes that open the channel allowing ions movement. There are several types of...
Generally, all voltage-gated ion channels have a 'voltage-sensing domain' that spans the lipid bilayer. The charged residues in the sensor move in response to the membrane potential changes that open the channel allowing ions movement. There are several types of...


