Organotypic Hippocampal Slice Cultures from Adult Tauopathy Mice and Theragnostic Evaluation of Nanomaterial Phospho-TAU Antibody-Conjugates

Cells. 2023 May 18;12(10):1422. doi: 10.3390/cells12101422.

Abstract

Organotypic slice culture models surpass conventional in vitro methods in many aspects. They retain all tissue-resident cell types and tissue hierarchy. For studying multifactorial neurodegenerative diseases such as tauopathies, it is crucial to maintain cellular crosstalk in an accessible model system. Organotypic slice cultures from postnatal tissue are an established research tool, but adult tissue-originating systems are missing, yet necessary, as young tissue-originating systems cannot fully model adult or senescent brains. To establish an adult-originating slice culture system for tauopathy studies, we made hippocampal slice cultures from transgenic 5-month-old hTau.P301S mice. In addition to the comprehensive characterization, we set out to test a novel antibody for hyperphosphorylated TAU (pTAU, B6), with and without a nanomaterial conjugate. Adult hippocampal slices retained intact hippocampal layers, astrocytes, and functional microglia during culturing. The P301S-slice neurons expressed pTAU throughout the granular cell layer and secreted pTAU to the culture medium, whereas the wildtype slices did not. Additionally, cytotoxicity and inflammation-related determinants were increased in the P301S slices. Using fluorescence microscopy, we showed target engagement of the B6 antibody to pTAU-expressing neurons and a subtle but consistent decrease in intracellular pTAU with the B6 treatment. Collectively, this tauopathy slice culture model enables measuring the extracellular and intracellular effects of different mechanistic or therapeutic manipulations on TAU pathology in adult tissue without the hindrance of the blood-brain barrier.

Keywords: P301S mice; adult tissue; ex vivo; hyperphosphorylated TAU; immunotherapy; organotypic slice culture; theragnostic nanomaterials.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Animals
  • Brain / metabolism
  • Hippocampus / metabolism
  • Mice
  • Mice, Transgenic
  • Neurons / metabolism
  • Tauopathies* / metabolism

Grants and funding

This research was funded by the European Union, Horizon 2020 project PANA, grant number 686009, Academy of Finland (grant numbers 338182, 307866, 315459, and 330178, 339767); the Sigrid Jusélius Foundation (SJ-2022) and the Strategic Neuroscience Funding of the University of Eastern Finland (NEURO-RC-2019). A.Z. was funded by Fundacion Seneca (grant number 20236/PD/17).