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Andoko, B. A.

Publications and source records attributed to Andoko, B. A..

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Leptin Drives Osteoarthritis Pain Through Sensory Neuron Reprogramming Independent of Cartilage Signaling

ObjectivePain in osteoarthritis (OA) is often discordant with structural joint damage, particularly in obesity-associated OA, where adipose-derived signals may drive nociception independently of cartilage pathology. Leptin has been demonstrated to be necessary, but not sufficient, to drive obesity-associated OA. Here, we tested the hypothesis that leptin mediates OA-associated pain through sensory neuron reprogramming rather than chondrocyte-intrinsic signaling, suggesting a fat-sensory nerve axis. DesignMale and female constitutive leptin-deficient (Ob/Ob), heterozygous (Ob/+), and wild-type (WT) mice, as well as chondrocyte-specific leptin receptor knockout mice (Aggrecan-CreERT2;LepRfl/fl), were challenged with destabilization of the medial meniscus (DMM) surgery to induce OA. Pain-related behaviors, joint pathology, serum cytokines, and lumbar dorsal root ganglia (DRG) transcriptomes were assessed. Human DRG cultures treated with leptin underwent transcriptomic profiling. Secondary analyses of human infrapatellar fat pad and synovium single-cell datasets evaluated leptin and leptin receptor expression patterns. ResultsChondrocyte-specific deletion of the leptin receptor did not mitigate OA pathology or pain. Global leptin-deficient (Ob/Ob) mice exhibited worse structural joint outcomes than WT and Ob/+ animals following DMM yet were robustly protected from OA-associated hyperalgesia - directly dissociating pain from structural pathology and demonstrating that leptin is involved in nociceptive sensitization. Serum cytokine profiles were sex-dependent and did not align with pain outcomes, separating systemic inflammation from nociceptive differences. Transcriptomic analysis of DRGs revealed that leptin drives enrichment of lipid metabolism, eicosanoid, and inflammatory programs, whereas leptin deficiency shifts sensory neurons toward a cytoskeletal remodeling state that does not sustain pain signaling. In human DRG cultures, leptin treatment produced a transcriptomic shift to enrich for neuronal excitability while vehicle treated cells were enriched for inflammatory signaling. Human infrapatellar fat pad and synovium transcriptomic data demonstrated adipocyte-enriched leptin expression and broad distribution of the leptin receptor across stromal, vascular, immune, and adipocyte populations. ConclusionsLeptin contributes to OA pain through neuro-immune crosstalk between adipose tissue and sensory neurons rather than through direct cartilage signaling. These findings identify leptin-associated neuronal programs linked to nociceptor sensitization and support targeting leptin-modulated neuro-immune pathways as a strategy to alleviate OA pain independently of structural disease progression.

physiology↗

Complement factor D (adipsin) mediates pressure-pain hypersensitivity post destabilization of medial meniscus injury

BACKGROUNDAlthough osteoarthritis (OA) is the leading cause of pain and disability worldwide, there is a lack of models to probe the separable mechanism of OA structural damage and knee pain. We previously identified that deletion of complement factor D (FD) results in increased pressure-pain hyperalgesia despite cartilage protection after destabilization of the medial meniscus (DMM) surgery. However, how these discordant OA phenotypes manifest is not understood. We employed a novel targeted lipidomics approach to elucidate the role of eicosanoids in FD-mediated pain. We hypothesize that the absence of Cfd (FD-/-) will protect cartilage but cause increased pressure-pain hyperalgesia and eicosanoid dysregulation that persists throughout OA development. METHODSMale and female FD-/- and wild-type (WT) mice were challenged with DMM or remained naive (n=5-11/group) at 16 weeks old. Pressure-pain hyperalgesia was measured bi-weekly for 8 weeks post-DMM. A second cohort was evaluated at 2 weeks post-DMM (n=6-10/group) to investigate DMM injury response. Structural damage was scored using the Modified Mankin system. To determine changes in eicosanoid profiles, serum and synovial fluid samples were analyzed via liquid chromatography-mass spectrometry (LC-MS). Statistical analysis was performed with unpaired t-test, two-way, or three-way ANOVA with Sidaks posthoc test. Statistical significance is defined as p<0.05. RESULTSIn contrast to WT mice, FD-/- showed no significant differences in Modified Mankin scores 8 weeks post-DMM. As expected, FD-/- hyperalgesia levels persisted until 8 weeks post DMM, similar to WT. Changes in eicosanoid profiles of pain-associated factors in FD-/-when compared to WT were found in the synovial fluid at 2 weeks and the serum at 8 weeks post-DMM. CONCLUSIONThe absence of Cfd drives knee hyperalgesia in male and female mice at 2 weeks-post DMM and persists through an 8-week observation period despite observing cartilage protection. Changes of eicosanoid profiles at both time points suggest that FD drives pain acutely, and the hyperalgesia phenotype emerges early in response to DMM injury, elucidating the role of the alternative complement in mediating OA pain and structural damage.

physiology↗