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Appendix 1 - Developmental interdisciplinary research: four topics for consideration

Published online by Cambridge University Press:  26 October 2017

Brian Hopkins
Affiliation:
Lancaster University
Elena Geangu
Affiliation:
Lancaster University
Sally Linkenauger
Affiliation:
Lancaster University
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Publisher: Cambridge University Press
Print publication year: 2017

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References

Further reading

Bengsston, S.L., Nagy, Z., Skare, S., Forsman, L., Forssberg, H., & Ullénn, F. (2005). Extensive piano practicing has regionally specific effects on white matter development. Nature Neuroscience, 8, 11481150.Google Scholar
Diaz-Heijtz, R., Wang, S., Anuar, F., Qian, Y., Björkholm, B., Samuelsson, A., … & Pettersson, S. (2011). Normal gut microbiota modulates brain development and behavior. Proceedings National Academy of Sciences, 108, 30473052.CrossRefGoogle ScholarPubMed
Hitier, M., Besnard, S., & Smith, P.F. (2014). Vestibular pathways involved in cognition. Frontiers in Integrative Neuroscience, 5, 59.Google Scholar
Karnath, H.-O., Ferber, S., & Dichgans, J. (2000). The neural representation of postural control in humans. Proceedings of National Academy of Sciences, 97, 1393113936.Google Scholar

Acknowledgments

Many thanks to George Michel and Sally Linkenauger for reading and commenting on a previous draft of this entry.

References

Borody, T.J., Parasmsothy, S., & Agrawal, G. (2013). Fecal microbiota transplantation: Indications, methods, evidence, and future directions. Current Gastroenterology Reports, 15, 537.CrossRefGoogle ScholarPubMed
Collen, A. (2016). 10% human: How your body’s microbes hold the key to health and happiness. London, UK: William Collins.Google Scholar
Eichenbaum, H., & Cohen, N.J. (2014). Can we reconcile the declarative memory and spatial navigation views on hippocampal function? Neuron, 83, 764770.CrossRefGoogle ScholarPubMed
Harshaw, C. (2008). Alimentary epigenetics: A developmental psychobiological systems view of the perception of hunger, thirst and satiety. Developmental Review, 28, 541569.CrossRefGoogle ScholarPubMed
Jacobs, J., Kahana, M.J., Ekstrom, A.D., Mollinson, M.V., & Fried, I. (2010). A sense of direction in human entorhinal cortex. Proceedings of the National Academy of Sciences, 107, 64876492.CrossRefGoogle ScholarPubMed
Kettenmann, H., & Verkhratsky, A. (2011) Neuroglia: Living nerve glue. Fortschritte der Neurologie und Psychiatrie, 79, 588597.CrossRefGoogle ScholarPubMed
Kravitz, D.J., Saleem, K.S., Baker, C.I., & Mishkin, M. (2011). A new neural framework for visuospatial processing. Nature Reviews Neuroscience, 12, 217230.Google Scholar
Mittelstaedt, H. (1998). Origin and processing of postural information. Neuroscience & Biobehavioral Reviews, 22, 473478.CrossRefGoogle ScholarPubMed
van der Fits, I.B.M., Klip, A.W.J., van Eykern, L.A., & Hadders-Algra, M. (1999). Postural adjustments during spontaneous and goal-directed arm movements in the first half-year of life. Behavioural Brain Research, 106, 7590.Google Scholar
van Wermeskerken, M., van der Kamp, J., Savelsbergh, G.J.P., & von Hofsten, C. (2013). Getting the closer object? An information-based dissociation between vision for perception and vision for movement in early infancy. Developmental Science, 16, 91100.Google Scholar
Yong, E. (2016). I contain multitudes: The microbes within us and a grander view of life. Oxford, UK: Bodley Head.Google Scholar

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