Simon T W, Derby C D
Department of Biology, Georgia State University, Atlanta 30302-4010, USA.
Brain Res. 1995 Apr 24;678(1-2):213-24. doi: 10.1016/0006-8993(95)00186-t.
Whole cell patch clamping was used to investigate mechanisms of mixture suppression for in situ olfactory receptor neurons (ORNs) of the spiny lobster Panulirus argus. We used a set of single compounds and binary mixtures that have been used in previous biochemical studies of receptor-odorant binding, electrophysiological studies of spiking output from ORNs, and behavioral studies. These odorants were adenosine 5'-monophosphate (AMP), betaine (Bet), L-cysteine (Cys), L-glutamate (Glu), taurine (Tau), ammonium chloride, D,L-succinate, binary mixtures of these compounds, as well as a 33-component artificial oyster mixture (AOM). For the 40 ORNs studied, these stimuli more frequently elicited inward than outward currents. AMP, Glu, Tau and Bet evoked the largest and most numerous inward currents; Cys most commonly evoked outward currents. Na+ was an important charge-carrying ion for the Glu-evoked response in one ORN and the Bet-evoked response in another ORN. Mixture suppression, defined conservatively in this study as cases where the response to a binary mixture was less than the response to the more excitatory component of that mixture, was observed in 6 ORNs. In all 6 cases, neither component of the mixture evoked an outward conductance (i.e. neither was inhibitory). Five of these cases of mixture suppression involved a mixture containing two excitatory compounds (i.e. producing inward conductances): four ORNs were excited by both Glu and AMP, and one ORN was excited by both Tau and Glu. One case of mixture suppression occurred for a compound (Tau) tha did not produce a current when presented alone but which when added to Bet suppressed the inward current generated by Bet. Mechanisms for these suppressions are discussed, including inhibition of receptor binding by the components of a binary mixture and effects on second messengers or ion channels.
采用全细胞膜片钳技术研究了多刺龙虾(Panulirus argus)原位嗅觉受体神经元(ORN)的混合物抑制机制。我们使用了一组单一化合物和二元混合物,这些化合物和混合物曾用于先前关于受体-气味剂结合的生化研究、ORN峰电位输出的电生理研究以及行为学研究。这些气味剂包括5'-单磷酸腺苷(AMP)、甜菜碱(Bet)、L-半胱氨酸(Cys)、L-谷氨酸(Glu)、牛磺酸(Tau)、氯化铵、D,L-琥珀酸、这些化合物的二元混合物,以及一种33成分的人工牡蛎混合物(AOM)。对于所研究的40个ORN,这些刺激更频繁地引发内向电流而非外向电流。AMP、Glu、Tau和Bet引发的内向电流最大且数量最多;Cys最常引发外向电流。在一个ORN中,Na⁺是Glu诱发反应的重要载流离子,在另一个ORN中,Na⁺是Bet诱发反应的重要载流离子。在本研究中,混合物抑制被保守地定义为二元混合物的反应小于该混合物中兴奋性更强成分的反应的情况,在6个ORN中观察到了这种情况。在所有6种情况下,混合物的任何一种成分都未引发外向电导(即两者均无抑制作用)。其中5种混合物抑制情况涉及含有两种兴奋性化合物的混合物(即产生内向电导):4个ORN被Glu和AMP共同激发,1个ORN被Tau和Glu共同激发。一种混合物抑制情况发生在一种单独呈现时不产生电流但添加到Bet中会抑制Bet产生的内向电流的化合物(Tau)上。讨论了这些抑制的机制,包括二元混合物成分对受体结合的抑制以及对第二信使或离子通道的影响。