Parallel Evolution of Auditory Genes for Echolocation in Bats and Toothed Whales
Параллельная эволюция слуховых генов, обеспечивающих эхолокацию у летучих мышей и зубатых китов
2012-06-28
SCID: 54.1/7b5ydhcj
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auditory genescochlear amplificationconvergent evolutionecholocationpositive selection
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Abstract (AI)
The ability of bats and toothed whales to echolocate is a remarkable case of convergent evolution. Previous genetic studies have documented parallel evolution of nucleotide sequences in Prestin and KCNQ4, both of which are associated with voltage motility during the cochlear amplification of signals. Echolocation involves complex mechanisms. The most important factors include cochlear amplification, nerve transmission, and signal re-coding. Herein, we screen three genes that play different roles in this auditory system. Cadherin 23 (Cdh23) and its ligand, protocadherin 15 (Pcdh15), are essential for bundling motility in the sensory hair. Otoferlin (Otof) responds to nerve signal transmission in the auditory inner hair cell. Signals of parallel evolution occur in all three genes in the three groups of echolocators--two groups of bats (Yangochiroptera and Rhinolophoidea) plus the dolphin. Significant signals of positive selection also occur in Cdh23 in the Rhinolophoidea and dolphin, and Pcdh15 in Yangochiroptera. In addition, adult echolocating bats have higher levels of Otof expression in the auditory cortex than do their embryos and non-echolocation bats. Cdh23 and Pcdh15 encode the upper and lower parts of tip-links, and both genes show signals of convergent evolution and positive selection in echolocators, implying that they may co-evolve to optimize cochlear amplification. Convergent evolution and expression patterns of Otof suggest the potential role of nerve and brain in echolocation. Our synthesis of gene sequence and gene expression analyses reveals that positive selection, parallel evolution, and perhaps co-evolution and gene expression affect multiple hearing genes that play different roles in audition, including voltage and bundle motility in cochlear amplification, nerve transmission, and brain function.
Key Findings
1
Adult echolocating bats exhibited higher Otof expression in the auditory cortex than embryos and non-echolocating bats.
2
Cdh23 and Pcdh15, which encode complementary components of auditory hair-cell tip-links, show convergent evolution, suggesting possible co-evolution for optimized cochlear amplification.
3
Parallel evolution was detected in Cdh23, Pcdh15, and Otof across three echolocating groups: Yangochiroptera, Rhinolophoidea, and dolphins.
4
Positive selection was significant in Cdh23 among Rhinolophoidea and dolphins, and in Pcdh15 among Yangochiroptera.
5
The combined sequence and expression evidence indicates that echolocation evolution involves multiple auditory genes affecting cochlear amplification, nerve transmission, and brain function.
Research Object
Auditory genes and their expression in echolocating bats and toothed whales
Research Subject
Parallel and convergent evolution, positive selection, co-evolution, and differential expression of genes involved in cochlear amplification, auditory nerve transmission, and brain function
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2012-06-28
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