The injured sciatic nerve atlas (iSNAT), insights into the cellular and molecular basis of neural tissue degeneration and regeneration

Author:

Zhao Xiao-Feng1ORCID,Huffman Lucas D12ORCID,Hafner Hannah1,Athaiya Mitre12,Finneran Matthew C12,Kalinski Ashley L1ORCID,Kohen Rafi12,Flynn Corey1ORCID,Passino Ryan1,Johnson Craig N1ORCID,Kohrman David3,Kawaguchi Riki4,Yang Lynda JS5,Twiss Jeffery L6ORCID,Geschwind Daniel H789ORCID,Corfas Gabriel2310ORCID,Giger Roman J1210ORCID

Affiliation:

1. Department of Cell and Developmental Biology, University of Michigan-Ann Arbor

2. Neuroscience Graduate Program, University of Michigan–Ann Arbor

3. Kresge Hearing Institute, University of Michigan–Ann Arbor

4. Departments of Psychiatry and Neurology, University of California, Los Angeles

5. Department of Neurosurgery, University of Michigan-Ann Arbor

6. Department of Biological Sciences, University of South Carolina

7. Department of Neurology, Program in Neurogenetics, David Geffen School of Medicine, University of California, Los Angeles

8. Department of Human Genetics,David Geffen School of Medicine, University of California, Los Angeles

9. Institute of Precision Health, University of California, Los Angeles

10. Department of Neurology, University of Michigan–Ann Arbor

Abstract

Upon trauma, the adult murine peripheral nervous system (PNS) displays a remarkable degree of spontaneous anatomical and functional regeneration. To explore extrinsic mechanisms of neural repair, we carried out single-cell analysis of naïve mouse sciatic nerve, peripheral blood mononuclear cells, and crushed sciatic nerves at 1 day, 3 days, and 7 days following injury. During the first week, monocytes and macrophages (Mo/Mac) rapidly accumulate in the injured nerve and undergo extensive metabolic reprogramming. Proinflammatory Mo/Mac with a high glycolytic flux dominate the early injury response and rapidly give way to inflammation resolving Mac, programmed toward oxidative phosphorylation. Nerve crush injury causes partial leakiness of the blood–nerve barrier, proliferation of endoneurial and perineurial stromal cells, and entry of opsonizing serum proteins. Micro-dissection of the nerve injury site and distal nerve, followed by single-cell RNA-sequencing, identified distinct immune compartments, triggered by mechanical nerve wounding and Wallerian degeneration, respectively. This finding was independently confirmed with Sarm1-/- mice, in which Wallerian degeneration is greatly delayed. Experiments with chimeric mice showed that wildtype immune cells readily enter the injury site in Sarm1-/- mice, but are sparse in the distal nerve, except for Mo. We used CellChat to explore intercellular communications in the naïve and injured PNS and report on hundreds of ligand–receptor interactions. Our longitudinal analysis represents a new resource for neural tissue regeneration, reveals location- specific immune microenvironments, and reports on large intercellular communication networks. To facilitate mining of scRNAseq datasets, we generated the injured sciatic nerve atlas (iSNAT): https://cdb-rshiny.med.umich.edu/Giger_iSNAT/.

Funder

NIH Blueprint for Neuroscience Research

National Institutes of Health

Dr Miriam and Sheldon G Adelson Medical Research Foundation

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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