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Acyloxyacyl hydrolase regulates microglia-mediated pelvic pain
Afrida Rahman-Enyart1,2, Ryan E Yaggie1, Justin L Bollinger3
1Department of Urology, Feinberg School of Medicine, Northwestern University, Chicago, Illinois, United States of America.
Abstract:
Chronic pelvic pain conditions such as interstitial cystitis/bladder pain syndrome (IC/BPS) remain clinical and mechanistic enigmas. Microglia are resident immune cells of the central nervous system (CNS) that respond to changes in the gut microbiome, and studies have linked microglial activation to acute and chronic pain in a variety of models, including pelvic pain. We have previously reported that mice deficient for the lipase acyloxyacyl hydrolase (AOAH) develop pelvic allodynia and exhibit symptoms, comorbidities, and gut dysbiosis mimicking IC/BPS. Here, we assessed the role of AOAH in microglial activation and pelvic pain. RNAseq analyses using the ARCHS4 database and confocal microscopy revealed that AOAH is highly expressed in wild type microglia but at low levels in astrocytes, suggesting a functional role for AOAH in microglia. Pharmacologic ablation of CNS microglia with PLX5622 resulted in decreased pelvic allodynia in AOAH-deficient mice and resurgence of pelvic pain upon drug washout. Skeletal analyses revealed that AOAH-deficient mice have an activated microglia morphology in the medial prefrontal cortex and paraventricular nucleus, brain regions associated with pain modulation. Because microglia express Toll-like receptors and respond to microbial components, we also examine the potential role of dysbiosis in microglial activation. Consistent with our hypothesis of microglia activation by leakage of gut microbes, we observed increased serum endotoxins in AOAH-deficient mice and increased activation of cultured BV2 microglial cells by stool of AOAH-deficient mice. Together, these findings demonstrate a role for AOAH in microglial modulation of pelvic pain and thus identify a novel therapeutic target for IC/BPS.
Insights
Acyloxyacyl hydrolase (AOAH) deficiency in mice causes pelvic pain by activating microglia, resident immune cells in the central nervous system. Restoring AOAH function may offer a new therapeutic target for interstitial cystitis/bladder pain syndrome.
Area of Science:
- Neuroimmunology
- Pain Research
- Microbiome-Gut-Brain Axis
Background:
- Chronic pelvic pain conditions like interstitial cystitis/bladder pain syndrome (IC/BPS) lack clear mechanistic understanding.
- Microglia, the central nervous system's immune cells, are implicated in pain signaling and influenced by the gut microbiome.
- Previous studies linked acyloxyacyl hydrolase (AOAH) deficiency to IC/BPS-like symptoms and gut dysbiosis in mice.
Purpose of the Study:
- To investigate the role of AOAH in microglial activation and its contribution to pelvic pain.
- To explore the link between AOAH deficiency, gut dysbiosis, and neuroinflammation in the context of pelvic pain.
Main Methods:
- RNA sequencing (RNAseq) to analyze AOAH expression in microglia and astrocytes.
- Pharmacological ablation of central nervous system (CNS) microglia using PLX5622.
- Skeletal analysis to assess microglial morphology in pain-modulating brain regions.
- Measurement of serum endotoxins and assessment of microglial activation by gut microbial components.
Main Results:
- AOAH is highly expressed in wild-type microglia, suggesting a specific functional role.
- Depletion of CNS microglia reduced pelvic allodynia in AOAH-deficient mice, which returned upon drug withdrawal.
- AOAH-deficient mice exhibited activated microglia morphology in brain regions controlling pain.
- Increased serum endotoxins and heightened microglial activation by gut microbiota from AOAH-deficient mice were observed.
Conclusions:
- AOAH plays a crucial role in modulating microglial activity and pelvic pain.
- Gut dysbiosis and subsequent microbial component leakage contribute to microglial activation in AOAH deficiency.
- AOAH emerges as a potential therapeutic target for managing pelvic pain conditions like IC/BPS.

