6
views
0
recommends
+1 Recommend
0 collections
    0
    shares
      • Record: found
      • Abstract: found
      • Article: not found

      Active Dentate Granule Cells Encode Experience to Promote the Addition of Adult-Born Hippocampal Neurons

      research-article

      Read this article at

      ScienceOpenPublisherPMC
      Bookmark
          There is no author summary for this article yet. Authors can add summaries to their articles on ScienceOpen to make them more accessible to a non-specialist audience.

          Abstract

          The continuous addition of new dentate granule cells (DGCs), which is regulated exquisitely by brain activity, renders the hippocampus plastic. However, how neural circuits encode experiences to affect the addition of adult-born neurons remains unknown. Here, we used endoscopic Ca 2+ imaging to track the real-time activity of individual DGCs in freely behaving mice. For the first time, we found that active DGCs responded to a novel experience by increasing their Ca 2+ event frequency preferentially. This elevated activity, which we found to be associated with object exploration, returned to baseline by 1 h in the same environment, but could be dishabituated via introduction to a novel environment. To transition seamlessly between environments, we next established a freely controllable virtual reality system for unrestrained mice. We again observed increased firing of active neurons in a virtual enriched environment. Interestingly, multiple novel virtual experiences increased the number of newborn neurons accumulatively compared with a single experience. Finally, optogenetic silencing of existing DGCs during novel environmental exploration perturbed experience-induced neuronal addition. Our study shows that the adult brain conveys novel, enriched experiences to increase the addition of adult-born hippocampal neurons by increasing the firing of active DGCs.

          SIGNIFICANCE STATEMENT Adult brains are constantly reshaping themselves from synapses to circuits as we encounter novel experiences from moment to moment. Importantly, this reshaping includes the addition of newborn hippocampal neurons. However, it remains largely unknown how our circuits encode experience-induced brain activity to govern the addition of new hippocampal neurons. By coupling in vivo Ca 2+ imaging of dentate granule neurons with a novel, unrestrained virtual reality system for rodents, we discovered that a new experience increased firing of active dentate granule neurons rapidly and robustly. Exploration in multiple novel virtual environments, compared with a single environment, promoted dentate activation and enhanced the addition of new hippocampal neurons accumulatively. Finally, silencing this activation optogenetically during novel experiences perturbed experience-induced neuronal addition.

          Related collections

          Author and article information

          Journal
          J Neurosci
          J. Neurosci
          jneuro
          jneurosci
          J. Neurosci
          The Journal of Neuroscience
          Society for Neuroscience
          0270-6474
          1529-2401
          3 May 2017
          3 November 2017
          : 37
          : 18
          : 4661-4678
          Affiliations
          [1] 1Medical Scientist Training Program,
          [2] 2Molecular and Cellular Pharmacology Program,
          [3] 3Genetics Program,
          [4] 4Applied Mathematics and Statistics Program,
          [5] 5Department of Biomedical Engineering,
          [6] 6Department of Neurobiology and Behavior, and
          [7] 7Department of Applied Mathematics and Statistics, State University of New York, Stony Brook, New York 11794
          Author notes
          Correspondence should be addressed to Dr. Shaoyu Ge, Department of Neurobiology and Behavior, Life Sciences Building, Rm. 564, SUNY Stony Brook, Stony Brook, NY 11794. shaoyu.ge@ 123456stonybrook.edu

          Author contributions: G.W.K., J.S., and S.G. designed research; G.W.K., J.S., B.S., and G.M. performed research; B.S. and J.W. contributed unpublished reagents/analytic tools; G.W.K., J.S., M.T., and S.W. analyzed data; G.W.K., J.S., and S.G. wrote the paper.

          *G.W.K. and J.S. contributed equally to this work.

          Author information
          http://orcid.org/0000-0002-1116-4735
          http://orcid.org/0000-0001-7828-3053
          Article
          PMC5426562 PMC5426562 5426562 3417-16
          10.1523/JNEUROSCI.3417-16.2017
          5426562
          28373391
          85692260-fe2e-4682-a98f-d55b423da182
          Copyright © 2017 the authors 0270-6474/17/374661-18$15.00/0
          History
          : 3 November 2016
          : 1 March 2017
          : 5 March 2017
          Categories
          Research Articles
          Systems/Circuits
          Custom metadata
          true
          cellular

          virtual reality,dentate granule cell,enriched environment,hippocampal neurogenesis,novel experience

          Comments

          Comment on this article