Abstract
Mature dentate granule cells in the hippocampus receive input from the entorhinal cortex via the perforant path in precisely arranged lamina, with medial entorhinal axons innervating the middle molecular layer and lateral entorhinal cortex axons innervating the outer molecular layer. Although vastly outnumbered by mature granule cells, adult-generated newborn granule cells play a unique role in hippocampal function, which has largely been attributed to their enhanced excitability and plasticity (Schmidt-Hieber et al., 2004; Ge et al., 2007). Inputs from the medial and lateral entorhinal cortex carry different informational content. Thus, the distribution of inputs onto newly integrated granule cells will affect their function in the circuit. Using retroviral labeling in combination with selective optogenetic activation of medial or lateral entorhinal inputs, we examined the functional innervation and synaptic maturation of newly generated dentate granule cells in the mouse hippocampus. Our results indicate that lateral entorhinal inputs provide the majority of functional innervation of newly integrated granule cells at 21 d postmitosis. Despite preferential functional targeting, the dendritic spine density of immature granule cells was similar in the outer and middle molecular layers, which we speculate could reflect an unequal distribution of shaft synapses. However, chronicblockadeof neurotransmitterreleaseof medial entorhinal axons with tetanus toxin disrupted normal synapse development of both medial and lateral entorhinal inputs. Our results support a role for preferential lateral perforant path input onto newly generated neurons in mediating pattern separation, but also indicate that medial perforant path input is necessary for normal synaptic development.
| Original language | English (US) |
|---|---|
| Pages (from-to) | 5843-5853 |
| Number of pages | 11 |
| Journal | Journal of Neuroscience |
| Volume | 38 |
| Issue number | 26 |
| DOIs | |
| State | Published - Jun 27 2018 |
Funding
Received June 21, 2017; revised April 26, 2018; accepted May 17, 2018. Author contributions: N.I.W. and G.L.W. designed research; N.I.W., C.E.V., C.C., J.D.A., M.F.C., J.V.P., and K.R.T. performed research; N.I.W., C.E.V., C.C., J.D.A., M.F.C., J.V.P., and K.R.T. analyzed data; N.I.W., C.E.V., and G.L.W. wrote the paper. This work was supported by National Institutes of Health Grants R01 NS080979 and P30 NS061800 and by the EllisonMedicalFoundation(G.L.W.). WethankStefanieKaechPetrieforhelpwithimaging,EricSchnellforguidance with electrophysiology, and Sue Aicher for assistance with electron microscopy. *N.I.W and C.E.V. contributed equally to this work. The authors declare no competing financial interests. Correspondence should be addressed to Gary L. Westbrook, Vollum Institute, L474, Oregon Health and Science University, 3181 SW Sam Jackson Park Road, Portland OR, 97008. E-mail: [email protected]. N.I. Woods’ present address: Medical Scientist Training Program, University of California San Francisco, San Francisco, CA 94143. DOI:10.1523/JNEUROSCI.1737-17.2018 Copyright © 2018 the authors 0270-6474/18/385843-11$15.00/0
| Funders | Funder number |
|---|---|
| EllisonMedicalFoundation | |
| Author National Institutes of Health National Institutes of Health National Institutes of Health National Institutes of Health The Bev Hartig Huntington's Disease Foundation National Institutes of Health | P30 NS061800 |
| National Institute of Neurological Disorders and Stroke | R01NS080979 |
Keywords
- Dentate gyrus
- Neurogenesis
- Pattern separation
- Retroviral labeling
- Synapse formation
- Tetanus toxin
ASJC Scopus subject areas
- General Neuroscience
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