These are the publications of the Neurogenetics of Vocal Communication Group

Displaying 1 - 7 of 7
  • Alvarez van Tussenbroek, I., Knörnschild, M., Nagy, M., Ten Cate, C. J., & Vernes, S. C. (2024). Morphological diversity in the brains of 12 Neotropical Bat species. Acta Chiropterologica, 25(2), 323-338. doi:10.3161/15081109ACC2023.25.2.011.

    Abstract

    Comparative neurobiology allows us to investigate relationships between phylogeny and the brain and understand the evolution of traits. Bats constitute an attractive group of mammalian species for comparative studies, given their large diversity in behavioural phenotypes, brain morphology, and array of specialised traits. Currently, the order Chiroptera contains over 1,450 species within 21 families and spans ca. 65 million years of evolution. To date, 194 Neotropical bat species (ca. 13% of the total number of species around the world) have been recorded in Central America. This study includes qualitative and quantitative macromorphological descriptions of the brains of 12 species from six families of Neotropical bats. These analyses, which include histological neuronal staining of two species from different families (Phyllostomus hastatus and Saccopteryx bilineata), show substantial diversity in brain macromorphology including brain shape and size, exposure of mesencephalic regions, and cortical and cerebellar fissure depth. Brain macromorphology can in part be explained by phylogeny as species within the same family are more similar to each other. However, macromorphology cannot be explained by evolutionary time alone as brain differences between some phyllostomid bats are larger than between species from the family Emballonuridae despite being of comparable diverging distances in the phylogenetic tree. This suggests that faster evolutionary changes in brain morphology occurred in phyllostomids — although a larger number of species needs to be studied to confirm this. Our results show the rich diversity in brain morphology that bats provide for comparative and evolutionary studies.
  • Alvarez van Tussenbroek, I., Knörnschild, M., Nagy, M., O'Toole, B. P., Formenti, G., Philge, P., Zhang, N., Abueg, L., Brajuka, N., Jarvis, E., Volkert, T. L., Gray, J. L., Pieri, M., Mai, M., Teeling, E. C., Vernes, S. C., The Bat Biology Foundation, & The Bat1K Consortium (2024). The genome sequence of Rhynchonycteris naso, Peters, 1867 (Chiroptera, Emballonuridae, Rhynchonycteris). Wellcome Open Research, 9: 361. doi:10.12688/wellcomeopenres.19959.1.

    Abstract

    We present a reference genome assembly from an individual male Rhynchonycteris naso (Chordata; Mammalia; Chiroptera; Emballonuridae). The genome sequence is 2.46 Gb in span. The majority of the assembly is scaffolded into 22 chromosomal pseudomolecules, with the Y sex chromosome assembled.
  • Alvarez van Tussenbroek, I. (2024). Neotropical bat species: An exploration of brain morphology and genetics. PhD Thesis, Leiden University, Leiden.
  • Anijs, M. (2024). Networks within networks: Probing the neuronal and molecular underpinnings of language-related disorders using human cell models. PhD Thesis, Radboud University Nijmegen, Nijmegen.
  • Sánchez-de la Vega, G., Gasca-Pineda, J., Martínez-Cárdenas, A., Vernes, S. C., Teeling, E. C., Mai, M., Aguirre-Planter, E., Eguiarte, L. E., Phillips, C. D., & Ortega, J. (2024). The genome sequence of the endemic Mexican common mustached Bat, Pteronotus mexicanus. Miller, 1902 [Mormoopidae; Pteronotus]. Gene, 929: 148821. doi:10.1016/j.gene.2024.148821.

    Abstract

    We describe here the first characterization of the genome of the bat Pteronotus mexicanus, an endemic species of Mexico, as part of the Mexican Bat Genome Project which focuses on the characterization and assembly of the genomes of endemic bats in Mexico. The genome was assembled from a liver tissue sample of an adult male from Jalisco, Mexico provided by the Texas Tech University Museum tissue collection. The assembled genome size was 1.9 Gb. The assembly of the genome was fitted in a framework of 110,533 scaffolds and 1,659,535 contigs. The ecological importance of bats such as P. mexicanus, and their diverse ecological roles, underscores the value of having complete genomes in addressing information gaps and facing challenges regarding their function in ecosystems and their conservation.

    Additional information

    supplementary data
  • Fisher, S. E., & Vernes, S. C. (2015). Genetics and the Language Sciences. Annual Review of Linguistics, 1, 289-310. doi:10.1146/annurev-linguist-030514-125024.

    Abstract

    Theories addressing the biological basis of language must be built on
    an appreciation of the ways that molecular and neurobiological substrates
    can contribute to aspects of human cognition. Here, we lay out
    the principles by which a genome could potentially encode the necessary
    information to produce a language-ready brain. We describe
    what genes are; how they are regulated; and how they affect the formation,
    function, and plasticity of neuronal circuits. At each step,
    we give examples of molecules implicated in pathways that are important
    for speech and language. Finally, we discuss technological advances
    in genomics that are revealing considerable genotypic variation in
    the human population, from rare mutations to common polymorphisms,
    with the potential to relate this variation to natural variability
    in speech and language skills. Moving forward, an interdisciplinary
    approach to the language sciences, integrating genetics, neurobiology,
    psychology, and linguistics, will be essential for a complete understanding
    of our unique human capacities.
  • Rodenas-Cuadrado, P., Chen, X. S., Wiegrebe, L., Firzlaff, U., & Vernes, S. C. (2015). A novel approach identifies the first transcriptome networks in bats: A new genetic model for vocal communication. BMC Genomics, 16: 836. doi:10.1186/s12864-015-2068-1.

    Abstract

    Background Bats are able to employ an astonishingly complex vocal repertoire for navigating their environment and conveying social information. A handful of species also show evidence for vocal learning, an extremely rare ability shared only with humans and few other animals. However, despite their potential for the study of vocal communication, bats remain severely understudied at a molecular level. To address this fundamental gap we performed the first transcriptome profiling and genetic interrogation of molecular networks in the brain of a highly vocal bat species, Phyllostomus discolor. Results Gene network analysis typically needs large sample sizes for correct clustering, this can be prohibitive where samples are limited, such as in this study. To overcome this, we developed a novel bioinformatics methodology for identifying robust co-expression gene networks using few samples (N=6). Using this approach, we identified tissue-specific functional gene networks from the bat PAG, a brain region fundamental for mammalian vocalisation. The most highly connected network identified represented a cluster of genes involved in glutamatergic synaptic transmission. Glutamatergic receptors play a significant role in vocalisation from the PAG, suggesting that this gene network may be mechanistically important for vocal-motor control in mammals. Conclusion We have developed an innovative approach to cluster co-expressing gene networks and show that it is highly effective in detecting robust functional gene networks with limited sample sizes. Moreover, this work represents the first gene network analysis performed in a bat brain and establishes bats as a novel, tractable model system for understanding the genetics of vocal mammalian communication.

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