Extracellular TDP-43 aggregates target MAPK/MAK/MRK overlapping kinase (MOK) and trigger caspase-3/IL-18 signaling in

María M Leal-Lasarte1, Jaime M Franco1,2, Adahir Labrador-Garrido1,2

  • 1Andalusian Center for Molecular Biology and Regenerative Medicine (CABIMER), University of Seville-Spanish Research Council (CSIC)-University Paplo de Olavide, Seville, Spain; Seville, Spain.

Insights

Pathologic TDP-43 aggregates trigger microglial neuroinflammation, activating caspase-3/IL-18 signaling and disrupting MOK. Exogenous chaperones like Hsp27 and Hsp70 can modulate this activation state, offering new therapeutic insights for ALS.

Area of Science:

  • Neuroscience
  • Immunology
  • Cell Biology

Background:

  • Microglial responses are key in neurodegenerative diseases like ALS and FTLD.
  • Pathologic TDP-43 protein aggregates are implicated in ALS and FTLD.
  • The role of TDP-43 in neuroinflammation and microglial signaling is not well understood.

Purpose of the Study:

  • To investigate the innate immune response of microglia to TDP-43 aggregates.
  • To elucidate the signaling pathways involved in TDP-43-induced neuroinflammation.
  • To explore potential therapeutic targets for modulating microglial activation in ALS.

Main Methods:

  • Exposure of microglia to extracellular TDP-43 aggregates.
  • Analysis of cytokine production (IL-1β, IL-18) and inflammasome activation (NLRP3).
  • Investigation of caspase-3 activation, MOK binding, and chaperone effects (Hsp27, Hsp70).

Main Results:

  • TDP-43 aggregates are internalized by microglia, causing abnormal endogenous TDP-43 mobilization.
  • Microglial exposure to TDP-43 aggregates induces IL-1β and NLRP3-dependent IL-18 processing.
  • TDP-43 aggregates link to neuronal loss via caspase-3 and disrupt MOK phosphorylation.
  • Hsp27 and Hsp70 can alter the TDP-43-induced microglial activation state.

Conclusions:

  • Extracellular TDP-43 aggregates drive microglial neurotoxic activation through caspase-3/IL-18 signaling.
  • TDP-43 aggregates interact with MOK, impacting its phosphorylation status.
  • Modulation of microglial activation by chaperones presents a potential therapeutic strategy for ALS.

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