一种循环核酸可抑制的导电,在味觉细胞中被转化素激活
S S Kolesnikov1, R F Margolskee
1Roche Institute of Molecular Biology, Roche Research Center, Nutley, New Jersey 07110, USA.
Nature
|July 6, 1995
概括
研究人员在味觉细胞中发现了一种新的途径,涉及转化素和固酶. 这种机制通过调节循环核酸水平和离子通道活性来调节味觉感知,影响我们感知味道的方式.
科学领域:
- 分子生物学分子生物学
- 神经科学是一个神经科学.
- 感官生理学 感官生理学
背景情况:
- 味觉包括四种主要感觉:,酸,甜和苦.
- 甜味和苦味转导利用循环核酸第二信使.
- 棒转化素和化酶存在于哺乳动物的味觉受体细胞中.
研究的目的:
- 为了研究转化素激活的二酶在味道转化中的作用.
- 阐明循环核酸调节味觉细胞导电性的机制.
主要方法:
- 在青的味觉细胞中引入由转化素衍生的.
- 整细胞补丁记录以测量离子电流.
- 应用IBMX,福斯科林和循环核酸来评估路径调制.
- 对内外补丁进行分析,以研究通道活动.
主要成果:
- 转录素衍生诱导了味觉细胞中的向内电流.
- 这些效应被IBMX和福斯科林抑制,证实了转素激活的固酶活性.
- 循环核酸抑制了全细胞电流,并直接抑制了味觉细胞等离子体膜通道.
- IBMX调节了味觉细胞对味觉刺激的反应.
结论:
- 固酶通过调节循环核酸水平,在味道转导中发挥作用.
- 当周期性核酸水平下降时,味觉细胞中的一种新型循环核酸抑制导电性被激活.
- 这种机制涉及转化素和化酶,导致Ca2+的流入和味觉细胞脱极化,导致苦味感知.
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