Authors
Lipika Sha, Sushmita Jha
Published in
Advances in immunology. Volume 171. Pages 307-341. Epub Jun 02, 2026.
Abstract
Microglia are the resident myeloid cells of the central nervous system, they play essential roles in neural tissue homeostasis, including synaptic pruning, clearance of debris and protein aggregates, and regulation of neuroinflammatory processes. In neurodegenerative diseases such as Alzheimer's disease, Parkinson's disease, and amyotrophic lateral sclerosis, microglial activation and chronic glial-driven inflammation contribute substantially to neuronal dysfunction and loss. Beyond these well-characterised functions, recent evidence indicates that microglia can release chromatin-based extracellular traps (microglia extracellular traps, or MiETs), similar to the neutrophil extracellular traps (NETs) observed in peripheral immunity. Microglia ETs are induced by stimuli such as dopamine and microbial infection, dependent or independent of NADPH oxidase/ROS pathways and histone citrullination. This chapter provides a detailed examination of MiET formation, triggers, intracellular signalling, and structural components, as well as contribution to neurodegenerative pathology. Potential mechanisms include amplification of neuroinflammation via extracellular histones and proteases, disruption of the blood-brain barrier and extracellular matrix, synaptic damage, and possible facilitation of spread of misfolded protein aggregates. We situate MiET formation within the broader microglial functional repertoire (phagocytosis, cytokine production, synaptic stripping) and focus on how ET-dominant responses may compromise homeostatic or neuroprotective roles. The chapter reviews evidence from disease models, highlights key gaps and discusses translational implications. Targeting MiET formation or promoting the clearance of MiETs represents promising, yet unexplored, therapeutic avenues in neurodegenerative disease. By focusing on MiETs, this work expands the conceptual framework for microglial pathogenicity and invites future mechanistic and translational research.
PMID:
42629129
Bibliographic data and abstract were imported from PubMed on 22 Aug 2026.
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