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Mesenchymal stromal cell-derived extracellular vesicles attenuate inflammation-associated cognitive impairment and hippocampal microglial-synaptic remodeling

nature.com 01.10.2026 02:00 12 views

Microglia are central regulators of synaptic structure and cognitive function, yet under chronic inflammatory conditions, they can adopt stress-associated states associated with neuronal and synaptic vulnerability. Although inflammation-driven cognitive decline is often attributed to synapse loss, increasing evidence suggests that synaptic remodeling may precede or occur independently of overt synapse elimination. In this study, we combined behavioral testing, immunofluorescence, microglial morphometric analysis, and quantitative transmission electron microscopy to define structural correlates of inflammation-induced cognitive dysfunction and to evaluate the therapeutic potential of mesenchymal stromal cell-derived extracellular vesicles (MSC-EVs).

Chronic systemic inflammation was induced in mice by repeated lipopolysaccharide (LPS) administration, followed by intravenous MSC-EV treatment during the inflammatory phase. LPS exposure impaired working memory, object recognition, and spatial recognition memory without affecting locomotor activity. Immunofluorescence revealed increased CD68 immunoreactivity detected with the ED1 antibody clone within IBA1-positive cells, together with increased microglial soma area, reduced arborization area, and an elevated morphological index, consistent with microglial inflammatory remodeling and enhanced endolysosomal/phagolysosomal engagement.

Ultrastructural analysis further demonstrated increased phagolysosomal inclusion burden, increased blood vessel-associated microglial profiles, elevated dark microglia-like profiles, reduced neuronal soma profile area, decreased SYN- and PSD95-positive structures, and coordinated pre- and postsynaptic alterations. Total excitatory synapse density showed only a non-significant numerical reduction, indicating synaptic vulnerability characterized primarily by structural remodeling rather than definitive synapse loss. MSC-EV treatment was associated with attenuated microglial inflammatory and morphometric alterations, reduced phagolysosomal and dark microglia-like ultrastructural features, partially restored synaptic marker-positive structures and synaptic ultrastructure, and improved hippocampus-dependent cognition, particularly spatial recognition memory.

Together, these findings suggest that MSC-EVs are associated with partial normalization of inflammation-induced microglial, neuronal, and synaptic alterations. This research received no external funding. Laboratory of Electron Microscopy of the Scientific Research Center, Department of Cytology, Embryology and Histology, Azerbaijan Medical University, Baku, Azerbaijan Gunel Ayyubova, Eldar Gasimov, Fuad Rzayev, Gulshen Mehraliyeva, Ilaha Sadigi & Nigar Guliyeva Genetic Resources Institute of the Azerbaijan National Academy of Sciences, Baku, Azerbaijan Sana Kliniken Düsseldorf GmbH, Düsseldorf, Germany The authors declare no competing interests.

Informed consent was obtained from all donors for the collection and research use of human umbilical cord tissue. Human umbilical cord–derived mesenchymal stromal cells were isolated and expanded at the Stem Cell Laboratory of the Genetic Resources Institute of the Azerbaijan National Academy of Sciences from hospital-provided samples and were used for the generation of extracellular vesicles supplied to the authors in anonymized form for experimental use. Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations.

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