Alexander G M, Carden W B, Mu J, Kurukulasuriya N C, McCool B A, Nordskog B K, Friedman D P, Daunais J B, Grant K A, Godwin D W
The Neuroscience Program, Wake Forest University School of Medicine, Medical Center Boulevard, Winston-Salem, NC 27157, USA.
Neuroscience. 2006 Aug 11;141(1):453-61. doi: 10.1016/j.neuroscience.2006.03.042. Epub 2006 May 11.
The generation of thalamic bursts depends upon calcium currents that flow through transiently open (T)-type calcium channels. In this study, we characterized the native T-type calcium current underlying thalamic burst responses in the macaque monkey. Current clamp recordings from lateral geniculate nucleus (LGN) slices showed characteristic burst responses when relay cells were depolarized from relatively hyperpolarized membrane potentials. These bursts could also be elicited by stimulation of excitatory synaptic inputs to LGN cells. Under voltage clamp conditions, the inactivation kinetics of native currents recorded from primate LGN neurons showed consistency with T-type currents recorded in other mammals and in expression systems. Real-time reverse transcriptase PCR performed on RNA isolated from the LGN (including tissues isolated from magnocellular and parvocellular laminae) detected voltage-dependent calcium channel (Ca(v)) 3.1, Ca(v) 3.2, and Ca(v) 3.3 channel transcripts. Ca(v) 3.1 occurred at relatively higher expression than other isoforms, consistent with in situ hybridization studies in rats, indicating that the molecular basis for burst firing in thalamocortical systems is an important conserved property of primate physiology. Since thalamic bursts have been observed during visual processing as well as in a number of CNS disorders, studies of the expression and modulation of these currents at multiple levels are critical for understanding their role in vision and for the discovery of new treatments for disruptions of thalamic rhythms.
丘脑爆发的产生取决于流经瞬时开放(T)型钙通道的钙电流。在本研究中,我们对猕猴丘脑爆发反应背后的天然T型钙电流进行了特征描述。外侧膝状体核(LGN)切片的电流钳记录显示,当中继细胞从相对超极化的膜电位去极化时,会出现特征性的爆发反应。这些爆发也可由对LGN细胞的兴奋性突触输入刺激引发。在电压钳条件下,从灵长类LGN神经元记录的天然电流的失活动力学与在其他哺乳动物和表达系统中记录的T型电流一致。对从LGN分离的RNA(包括从大细胞层和小细胞层分离的组织)进行实时逆转录PCR,检测到电压依赖性钙通道(Ca(v))3.1、Ca(v) 3.2和Ca(v) 3.3通道转录本。Ca(v) 3.1的表达相对高于其他亚型,这与大鼠的原位杂交研究一致,表明丘脑皮质系统中爆发发放的分子基础是灵长类生理学的一个重要保守特性。由于在视觉处理过程以及多种中枢神经系统疾病中都观察到了丘脑爆发,因此在多个层面研究这些电流的表达和调节对于理解它们在视觉中的作用以及发现治疗丘脑节律紊乱的新方法至关重要。