Non-topographical contrast enhancement in the olfactory bulb

被引:127
作者
Cleland, TA [1 ]
Sethupathy, P [1 ]
机构
[1] Cornell Univ, Dept Neurobiol & Behav, Ithaca, NY 14853 USA
关键词
D O I
10.1186/1471-2202-7-7
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Background: Contrast enhancement within primary stimulus representations is a common feature of sensory systems that regulates the discrimination of similar stimuli. Whereas most sensory stimulus features can be mapped onto one or two dimensions of quality or location ( e. g., frequency or retinotopy), the analogous similarities among odor stimuli are distributed high-dimensionally, necessarily yielding a chemotopically fragmented map upon the surface of the olfactory bulb. While olfactory contrast enhancement has been attributed to decremental lateral inhibitory processes among olfactory bulb projection neurons modeled after those in the retina, the two-dimensional topology of this mechanism is intrinsically incapable of mediating effective contrast enhancement on such fragmented maps. Consequently, current theories are unable to explain the existence of olfactory contrast enhancement. Results: We describe a novel neural circuit mechanism, non-topographical contrast enhancement (NTCE), which enables contrast enhancement among high-dimensional odor representations exhibiting unpredictable patterns of similarity. The NTCE algorithm relies solely on local intraglomerular computations and broad feedback inhibition, and is consistent with known properties of the olfactory bulb input layer. Unlike mechanisms based upon lateral projections, NTCE does not require a built-in foreknowledge of the similarities in molecular receptive ranges expressed by different olfactory bulb glomeruli, and is independent of the physical location of glomeruli within the olfactory bulb. Conclusion: Non-topographical contrast enhancement demonstrates how intrinsically high-dimensional sensory data can be represented and processed within a physically two-dimensional neural cortex while retaining the capacity to represent stimulus similarity. In a biophysically constrained computational model of the olfactory bulb, NTCE successfully mediates contrast enhancement among odorant representations in the natural, high-dimensional similarity space defined by the olfactory receptor complement and underlies the concentration-independence of odor quality representations.
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页数:18
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共 127 条
[1]   A computational system for simulating and analyzing arrays of biological and artificial chemical sensors [J].
Alkasab, TK ;
White, J ;
Kauer, JS .
CHEMICAL SENSES, 2002, 27 (03) :261-275
[2]   SIMULATED DENDRITIC SPINES INFLUENCE RECIPROCAL SYNAPTIC STRENGTHS AND LATERAL INHIBITION IN THE OLFACTORY-BULB [J].
ANTON, PS ;
GRANGER, R ;
LYNCH, G .
BRAIN RESEARCH, 1993, 628 (1-2) :157-165
[3]   Dendrodendritic recurrent excitation in mitral cells of the rat olfactory bulb [J].
Aroniadou-Anderjaska, V ;
Ennis, M ;
Shipley, MT .
JOURNAL OF NEUROPHYSIOLOGY, 1999, 82 (01) :489-494
[4]   Centre-surround inhibition among olfactory bulb glomeruli [J].
Aungst, JL ;
Heyward, PM ;
Puche, AC ;
Karnup, SV ;
Hayar, A ;
Szabo, G ;
Shipley, MT .
NATURE, 2003, 426 (6967) :623-629
[5]   Symmetry, stereotypy, and topography of odorant representations in mouse olfactory bulbs [J].
Belluscio, L ;
Katz, LC .
JOURNAL OF NEUROSCIENCE, 2001, 21 (06) :2113-2122
[6]   Cellular and subcellular localization of γ-aminobutyric acidB receptors in the rat olfactory bulb [J].
Bonino, M ;
Cantino, D ;
Sassoè-Pognetto, M .
NEUROSCIENCE LETTERS, 1999, 274 (03) :195-198
[7]   In vivo imaging of neuronal activity - Neurotechnique by targeted expression of a genetically encoded probe in the mouse [J].
Bozza, T ;
McGann, JP ;
Mombaerts, P ;
Wachowiak, M .
NEURON, 2004, 42 (01) :9-21
[8]   RESPONSE SIMILARITY TO ODORS IN OLFACTORY-BULB OUTPUT CELLS PRESUMED TO BE CONNECTED TO THE SAME GLOMERULUS - ELECTROPHYSIOLOGICAL STUDY USING SIMULTANEOUS SINGLE-UNIT RECORDINGS [J].
BUONVISO, N ;
CHAPUT, MA .
JOURNAL OF NEUROPHYSIOLOGY, 1990, 63 (03) :447-454
[9]   Hyperpolarisation-activated current in glomerular cells of the rat olfactory bulb [J].
Cadetti, L ;
Belluzzi, O .
NEUROREPORT, 2001, 12 (14) :3117-3120
[10]  
Cang JH, 2003, J NEUROSCI, V23, P4108