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Brain microstructural changes in mice persist in adulthood and are modulated by the palmitoyl acyltransferase ZDHHC7

Journal

EUROPEAN JOURNAL OF NEUROSCIENCE
Volume 54, Issue 6, Pages 5951-5967

Publisher

WILEY
DOI: 10.1111/ejn.15415

Keywords

adolescence; functional connectivity; hippocampus; prefrontal cortex; small animal imaging; Zdhhc7-deficiency

Categories

Funding

  1. Interdisciplinary Centre for Clinical Research (IZKF) of the University of Munster Medical School [Zha3-005-14]
  2. Deutsche Forschungsgemeinschaft (DFG) [ZH 34/3-1, PO732]
  3. Otto Creutzfeldt Center for Cognitive and Behavioral Neuroscience of the University of Munster

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Recent research suggests that developmental brain changes in mice can last up to 6 months, with adolescence coinciding with significant alterations in neuronal structure and function affecting connectivity between brain regions. The study demonstrates that ZDHHC7 plays a role in modulating hippocampal and mPFC microstructure development, as deficiency of this enzyme impairs fiber development and leads to increased hippocampal volume.
For a long time, mice have been classified as adults with completely mature brains at 8 weeks of age, but recent research suggests that developmental brain changes occur for up to 6 months. In particular, adolescence coincides with dramatic changes of neuronal structure and function in the brain that influence the connectivity between areas like hippocampus and medial prefrontal cortex (mPFC). Neuronal development and plasticity are regulated in part by the palmitoyl acyltransferase ZDHHC7, which modulates structural connectivity between hippocampus and mPFC. The aim of the current study was to investigate whether developmental changes take place in hippocampus and mPFC microstructure even after 8 weeks of age and whether deficiency of ZDHHC7 impacts such age-dependent alterations. Altogether, 46 mice at 11, 14 or 17 weeks of age with a genetic Zdhhc7 knockout (KO) or wild type (WT) were analysed with neuroimaging and diffusion tensor-based fibre tractography. The hippocampus and mPFC regions were compared regarding fibre metrics, supplemented by volumetric and immunohistological analyses of the hippocampus. In WT animals, we identified age-dependent changes in hippocampal fibre lengths that followed a U-shaped pattern, whereas in mPFC, changes were linear. In Zdhhc7-deficient animals, the fibre statistics were reduced in both regions, whereas the hippocampus volume and the intensities of myelin and neurofilament were higher in 11-week-old KO mice compared to WTs. Our results confirmed ongoing changes of microstructure in mice up to 17 weeks old and demonstrate that deleting the Zdhhc7 gene impairs fibre development, suggesting that palmitoylation is important in this process.

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