Network state transitions during cortical development
Abstract
Mammalian cortical networks are active before synaptogenesis begins in earnest, before neuronal migration is complete, and well before an animal opens its eyes and begins to actively explore its surroundings. This early activity undergoes several transformations during development. The most important of these is a transition from episodic synchronous network events, which are necessary for patterning the neocortex into functionally related modules, to desynchronized activity that is computationally more powerful and efficient. Network desynchronization is perhaps the most dramatic and abrupt developmental event in an otherwise slow and gradual process of brain maturation. In this Review, we summarize what is known about the phenomenology of developmental synchronous activity in the rodent neocortex and speculate on the mechanisms that drive its eventual desynchronization. We argue that desynchronization of network activity is a fundamental step through which the cortex transitions from passive, bottom–up detection of sensory stimuli to active sensory processing with top–down modulation.
Copyright and License
© Springer Nature Limited 2024.
Acknowledgement
We are grateful to M. Colonnese, M. Dipoppa and C. Lohmann for feedback on earlier versions of this manuscript. When citing papers, we attempted to be as inclusive as possible in acknowledging the many investigators whose work has helped shape our ideas; however, we recognize that we have probably missed attributing credit in some cases, and we apologize for any inadvertent oversights. This work was supported by the following grants: Department of Defense (DOD, 13196175), R01NS117597 (NIH-NINDS), R01HD108370 and R01HD054453 (NIH-NICHD) awarded to C.P.-C., by a fellowship grant from the FRAXA research foundation to N.K., and by the Training Grant in Neurobehavioral Genetics (T32NS048004; NIH, NINDS) and the UCLA-Caltech Medical Scientist Training Program (T32 GM008042; NIH, NIGMS) to M.W.W.
Contributions
These authors contributed equally: Michelle W. Wu, Nazim Kourdougli.
The authors contributed equally to all aspects of the article.
Conflict of Interest
The authors declare no competing interests.
Additional details
Identifiers
- ISSN
- 1471-0048
- URL
- https://rdcu.be/dJgpI
Funding
- United States Department of Defense
- 13196175
- National Institutes of Health
- R01NS117597
- National Institutes of Health
- R01HD108370
- National Institutes of Health
- R01HD054453
- Fraxa Research Foundation
- National Institutes of Health
- NIH Predoctoral Fellowship T32NS048004
- National Institutes of Health
- NIH Predoctoral Fellowship T32 GM008042