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Integrating Brain, Behavior, and Phylogeny to Understand the Evolution of Sensory Systems in Birds

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Journal Front Neurosci
Date 2015 Sep 1
PMID 26321905
Citations 19
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Abstract

The comparative anatomy of sensory systems has played a major role in developing theories and principles central to evolutionary neuroscience. This includes the central tenet of many comparative studies, the principle of proper mass, which states that the size of a neural structure reflects its processing capacity. The size of structures within the sensory system is not, however, the only salient variable in sensory evolution. Further, the evolution of the brain and behavior are intimately tied to phylogenetic history, requiring studies to integrate neuroanatomy with behavior and phylogeny to gain a more holistic view of brain evolution. Birds have proven to be a useful group for these studies because of widespread interest in their phylogenetic relationships and a wealth of information on the functional organization of most of their sensory pathways. In this review, we examine the principle of proper mass in relation differences in the sensory capabilities among birds. We discuss how neuroanatomy, behavior, and phylogeny can be integrated to understand the evolution of sensory systems in birds providing evidence from visual, auditory, and somatosensory systems. We also consider the concept of a "trade-off," whereby one sensory system (or subpathway within a sensory system), may be expanded in size, at the expense of others, which are reduced in size.

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References
1.
Wilson M, Lindstrom S . What the bird's brain tells the bird's eye: the function of descending input to the avian retina. Vis Neurosci. 2011; 28(4):337-50. PMC: 3297772. DOI: 10.1017/S0952523811000022. View

2.
Carr C, Konishi M . A circuit for detection of interaural time differences in the brain stem of the barn owl. J Neurosci. 1990; 10(10):3227-46. PMC: 6570189. View

3.
Winterson B, Brauth S . Direction-selective single units in the nucleus lentiformis mesencephali of the pigeon (Columba livia). Exp Brain Res. 1985; 60(2):215-26. DOI: 10.1007/BF00235916. View

4.
Tramontin A, Hartman V, Brenowitz E . Breeding conditions induce rapid and sequential growth in adult avian song control circuits: a model of seasonal plasticity in the brain. J Neurosci. 2000; 20(2):854-61. PMC: 6772392. View

5.
Marin G, Duran E, Morales C, Gonzalez-Cabrera C, Sentis E, Mpodozis J . Attentional capture? Synchronized feedback signals from the isthmi boost retinal signals to higher visual areas. J Neurosci. 2012; 32(3):1110-22. PMC: 6621166. DOI: 10.1523/JNEUROSCI.4151-11.2012. View