Mechanisms of Long-Interval Selectivity in Midbrain Auditory Neurons: Roles of Excitation, Inhibition, and Plasticity

被引:31
作者
Edwards, Christofer J. [1 ]
Leary, Christopher J. [1 ]
Rose, Gary J. [1 ]
机构
[1] Univ Utah, Dept Biol, Salt Lake City, UT 84112 USA
基金
美国国家卫生研究院;
关键词
D O I
10.1152/jn.90921.2008
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Edwards CJ, Leary CJ, Rose GJ. Mechanisms of long-interval selectivity in midbrain auditory neurons: roles of excitation, inhibition, and plasticity. J Neurophysiol 100: 3407-3416, 2008. First published October 22, 2008; doi: 10.1152/jn.90921.2008. Stereotyped intervals between successive sound pulses characterize the acoustic signals of anurans and other organisms and provide critical information to receivers. One class of midbrain neuron responds selectively when pulses are repeated at slow rates ( long intervals). To examine the mechanisms that underlie long- interval selectivity, we made whole cell recordings, in vivo, from neurons in the anuran inferior colliculus ( anuran IC). In most cases, long- pass interval selectivity appeared to arise from interplay between excitation and inhibition; in similar to 25% of these cases, the delayed inhibition to a pulse overlapped with the excitation to the following pulse at fast pulse repetition rates (PRRs), resulting in a phasic "onset" response. In the remaining cases, inhibition appeared to precede excitation. These neurons did not respond to fast PRRs apparently because delayed excitation to a pulse overlapped with the inhibition to the following pulse. These results suggest that the relative timing of inhibition and excitation govern differences in the response properties of these two cell types. Loading cells with cesium increased their responses to fast AM rates, supporting a role for inhibition in long- interval selectivity. Three cells showed little or no evidence of inhibition and exhibited strong depression of excitation. These findings are discussed in the context of current models for long- pass interval selectivity.
引用
收藏
页码:3407 / 3416
页数:10
相关论文
共 38 条
[1]   Integration and recovery processes contribute to the temporal selectivity of neurons in the midbrain of the northern leopard frog, Rana pipiens [J].
Alder, TB ;
Rose, GJ .
JOURNAL OF COMPARATIVE PHYSIOLOGY A-NEUROETHOLOGY SENSORY NEURAL AND BEHAVIORAL PHYSIOLOGY, 2000, 186 (10) :923-937
[2]   LOW-PASS FILTERING OF SOUND SIGNALS BY A HIGH-FREQUENCY BRAIN NEURON AND ITS INPUT IN THE CRICKET ACHETA-DOMESTICA L [J].
ATKINS, G ;
CHIBA, A ;
ATKINS, S ;
STOUT, JF .
JOURNAL OF COMPARATIVE PHYSIOLOGY A-SENSORY NEURAL AND BEHAVIORAL PHYSIOLOGY, 1988, 164 (02) :269-276
[3]   Visual input evokes transient and strong shunting inhibition in visual cortical neurons [J].
Borg-Graham, LJ ;
Monier, C ;
Frégnac, Y .
NATURE, 1998, 393 (6683) :369-373
[4]   Analysis of the role of inhibition in shaping responses to sinusoidally amplitude-modulated signals in the inferior colliculus [J].
Burger, RM ;
Pollak, GD .
JOURNAL OF NEUROPHYSIOLOGY, 1998, 80 (04) :1686-1701
[5]   SELECTIVITY OF PERIPHERAL AUDITORY-SYSTEM OF SPADEFOOT TOADS (SCAPHIOPUS-COUCHI) FOR SOUNDS OF BIOLOGICAL SIGNIFICANCE [J].
CAPRANICA, RR ;
MOFFAT, AJM .
JOURNAL OF COMPARATIVE PHYSIOLOGY, 1975, 100 (03) :231-249
[6]   NEURAL TUNING FOR SOUND DURATION - ROLE OF INHIBITORY MECHANISMS IN THE INFERIOR COLLICULUS [J].
CASSEDAY, JH ;
EHRLICH, D ;
COVEY, E .
SCIENCE, 1994, 264 (5160) :847-850
[7]  
Casseday JH, 2002, SPR HDB AUD, V15, P238
[8]  
CONDON CJ, 1991, J COMP PHYSIOL A, V168, P709
[9]  
Cooper Grosvenor W., 1963, The rhythmic structure of music
[10]  
Diehl Randy L., 2004, VVolume 18, P101