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首页> 外文期刊>Journal of Neurophysiology >Blocking adenylyl cyclase inhibits olfactory generator currents induced by 'IP(3)-odors'.
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Blocking adenylyl cyclase inhibits olfactory generator currents induced by 'IP(3)-odors'.

机译:阻断腺苷酸环化酶抑制由“ IP(3)-气味”诱导的嗅觉发生器电流。

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摘要

Vertebrate olfactory receptor neurons (ORNs) transduce odor stimuli into electrical signals by means of an adenylyl cyclase/cAMP second messenger cascade, but it remains widely debated whether this cAMP cascade mediates transduction for all odorants or only certain odor classes. To address this problem, we have analyzed the generator currents induced by odors that failed to produce cAMP in previous biochemical assays but instead produced IP(3) ("IP(3)-odors"). We show that in single salamander ORNs, sensory responses to "cAMP-odors" and IP(3)-odors are not mutually exclusive but coexist in the same cells. The currents induced by IP(3)-odors exhibit identical biophysical properties as those induced by cAMP odors or direct activation of the cAMP cascade. By disrupting adenylyl cyclase to block cAMP formation using two potent antagonists of adenylyl cyclase, SQ22536 and MDL12330A, we show that this molecular step is necessary for the transduction of both odor classes. To assess whether these results are also applicable to mammals, we examine the electrophysiological responses to IP(3)-odors in intact mouse main olfactory epithelium (MOE) by recording field potentials. The results show that inhibition of adenylyl cyclase prevents EOG responses to both odor classes in mouse MOE, even when "hot spots" with heightened sensitivity to IP(3)-odors are examined.
机译:脊椎动物的嗅觉受体神经元(ORNs)通过腺苷酸环化酶/ cAMP第二信使级联将气味刺激转换为电信号,但是,该cAMP级联是否介导所有气味物质或仅特定气味类别的转导仍存在广泛争议。为了解决这个问题,我们分析了由气味引起的发电机电流,这些气味在先前的生化分析中未能产生cAMP,而是产生了IP(3)(“ IP(3)-气味”)。我们显示在单个sal ORNs,“ cAMP气味”和IP(3)气味的感官反应不是互相排斥的,而是在同一单元格中共存。 IP(3)气味诱导的电流表现出与cAMP气味或cAMP级联直接激活所诱导的电流相同的生物物理特性。通过使用两个强大的腺苷酸环化酶拮抗剂SQ22536和MDL12330A破坏腺苷酸环化酶来阻断cAMP的形成,我们证明了这一分子步骤对于两种气味类型的转导都是必需的。若要评估这些结果是否也适用于哺乳动物,我们通过记录场电势来检查对完整小鼠主要嗅觉上皮(MOE)中IP(3)气味的电生理响应。结果表明,即使检测到对IP(3)气味具有更高敏感性的“热点”,抑制腺苷酸环化酶也可以阻止EOG对两种MOE气味的响应。

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