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Updated: May 12, 2026

A Chronic Immobilization Stress Protocol for Inducing Depression-Like Behavior in Mice
Published on: May 15, 2019
Exosomes from joints mediate depressive-like behaviors in MIA arthritis mice
Zonghao Li1, Yiming Gao2, Hongpeng Ma3
1International Science and Technology Cooperation Base of Spinal Cord Injury, Tianjin Key Laboratory of Spine and Spinal Cord Injury, Department of Orthopaedics, Tianjin Medical University General Hospital, Tianjin, China; Department of Orthopaedics & Rehabilitation, Yale University School of Medicine, New Haven, CT, USA.
Abstract:
Arthritis-related mood disturbances suggest pathogenic communication between inflamed joints and the brain, yet the causal mediators remain unclear. Here we show that exosomes released from mono-iodoacetate (MIA)-injured knees transmit surface-displayed high mobility group box 1 (HMGB1) to the brain, where they activate neuronal NF-κB and senescence programs that culminate in depressive-like behavior. In mice with MIA arthritis, depressive-like behaviours (reduced sucrose/saccharin preference) coincided with increased neuronal pp65 and senescence markers. Pharmacologic exosomes inhibition (GW4869) prevented both molecular and behavioral phenotypes, while intravenous transfer of purified joint-derived exosomes from MIA donors recapitulated them in naïve recipients. A proteinase-K protection assay localized HMGB1 to the exosomes exterior, and neutralizing HMGB1 with 2G7 abrogated exosome-induced neuronal pp65/senescence and restored behavioral performance without altering joint histopathology. In vitro, joint-derived exosomes triggered HMGB1-dependent NF-κB activation and senescence signatures in primary neurons, supporting neuron-intrinsic responsiveness to vesicular DAMP signaling. These data identify a joint-to-brain exosome/HMGB1 axis as both necessary and sufficient to drive affective dysfunction after MIA. Our findings propose a tractable therapeutic framework-intercepting exosomes biogenesis/trafficking or neutralizing circulating HMGB1-to mitigate mood symptoms associated with arthritis. More broadly, the work illustrates how tissue-restricted inflammation can remodel distant neural circuits via vesicle-borne danger signals, offering biomarker and intervention opportunities for inflammatory disorders complicated by affective disturbances.

