 |
The Journal of Neuroscience, August 18, 2004, 24(33):7251-7265; doi:10.1523/JNEUROSCI.0947-04.2004
Previous Article | Next Article 
Behavioral/Systems/Cognitive
Synaptic Transformations Underlying Highly Selective Auditory Representations of Learned Birdsong
Melissa J. Coleman and
R. Mooney
Department of Neurobiology, Duke University Medical Center, Durham, North Carolina 27710
Stimulus-specific neuronal responses are a striking characteristic of several sensory systems, although the synaptic mechanisms underlying their generation are not well understood. The songbird nucleus HVC (used here as a proper name) contains projection neurons (PNs) that fire temporally sparse bursts of action potentials to playback of the bird's own song (BOS) but are essentially silent when presented with other acoustical stimuli. To understand how such remarkable stimulus specificity emerges, it is necessary to compare the auditory-evoked responsiveness of the afferents of HVC with synaptic responses in identified HVC neurons. We found that inactivating the interfacial nucleus of the nidopallium (NIf) could eliminate all auditory-evoked subthreshold activity in both HVC PN types, consistent with NIf serving as the major auditory afferent of HVC. Simultaneous multiunit extracellular recordings in NIf and intracellular recordings in HVC revealed that NIf population activity and HVC subthreshold responses were similar in their selectivity for BOS and that NIf spikes preceded depolarizations in all HVC cell types. These results indicate that information about the BOS as well as other auditory stimuli is transmitted synaptically from NIf to HVC. Unlike HVC PNs, however, HVC-projecting NIf neurons fire throughout playback of BOS as well as non-BOS stimuli. Therefore, temporally sparse BOS-evoked firing and enhanced BOS selectivity, manifested as an absence of suprathreshold responsiveness to non-BOS stimuli, emerge in HVC. The transformation to a sparse auditory representation parallels differences in NIf and HVC activity patterns seen during singing, which may point to a common mechanism for encoding sensory and motor representations of song.
Key words: auditory; tuning; songbird; in vivo intracellular; vocal learning; communication; zebra finch; neuronal interaction; temporal sparseness
Received Oct 28, 2003;
revised June 29, 2004;
accepted July 1, 2004.
This article has been cited by other articles:

|
 |

|
 |
 
R. H. R. Hahnloser, C. Z.-H. Wang, A. Nager, and K. Naie
Spikes and Bursts in Two Types of Thalamic Projection Neurons Differentially Shape Sleep Patterns and Auditory Responses in a Songbird
J. Neurosci.,
May 7, 2008;
28(19):
5040 - 5052.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
J. A. Thompson, W. Wu, R. Bertram, and F. Johnson
Auditory-Dependent Vocal Recovery in Adult Male Zebra Finches Is Facilitated by Lesion of a Forebrain Pathway That Includes the Basal Ganglia
J. Neurosci.,
November 7, 2007;
27(45):
12308 - 12320.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
S. S. Shaevitz and F. E. Theunissen
Functional Connectivity Between Auditory Areas Field L and CLM and Song System Nucleus HVC in Anesthetized Zebra Finches
J Neurophysiol,
November 1, 2007;
98(5):
2747 - 2764.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
S. Kojima and A. J. Doupe
Song Selectivity in the Pallial-Basal Ganglia Song Circuit of Zebra Finches Raised Without Tutor Song Exposure
J Neurophysiol,
October 1, 2007;
98(4):
2099 - 2109.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
M. J. Coleman, A. Roy, J. M. Wild, and R. Mooney
Thalamic Gating of Auditory Responses in Telencephalic Song Control Nuclei
J. Neurosci.,
September 12, 2007;
27(37):
10024 - 10036.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
L. Wang, R. Narayan, G. Grana, M. Shamir, and K. Sen
Cortical Discrimination of Complex Natural Stimuli: Can Single Neurons Match Behavior?
J. Neurosci.,
January 17, 2007;
27(3):
582 - 589.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
R. H. R. Hahnloser and M. S. Fee
Sleep-Related Spike Bursts in HVC Are Driven by the Nucleus Interface of the Nidopallium
J Neurophysiol,
January 1, 2007;
97(1):
423 - 435.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
T. J. Gardner and M. O. Magnasco
Sparse time-frequency representations
PNAS,
April 18, 2006;
103(16):
6094 - 6099.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
M. J. Rosen and R. Mooney
Synaptic Interactions Underlying Song-Selectivity in the Avian Nucleus HVC Revealed by Dual Intracellular Recordings
J Neurophysiol,
February 1, 2006;
95(2):
1158 - 1175.
[Abstract]
[Full Text]
[PDF]
|
 |
|

|
 |

|
 |
 
E. Akutagawa and M. Konishi
Connections of thalamic modulatory centers to the vocal control system of the zebra finch
PNAS,
September 27, 2005;
102(39):
14086 - 14091.
[Abstract]
[Full Text]
[PDF]
|
 |
|
|