Diabetes causes NLRP3-dependent barrier dysfunction in mice with detrusor overactivity but not underactivity

Michael R Odom1, Francis M Hughes1, Huixia Jin1

  • 1Division of Urology, Department of Surgery, Duke University Medical Center, Durham, North Carolina.

Insights

Inflammation from NLRP3 inflammasome activation damages the bladder barrier in early diabetes. Eliminating NLRP3 prevents this damage, suggesting its critical role in diabetic bladder dysfunction progression.

Area of Science:

  • Urology
  • Immunology
  • Metabolic Disorders

Background:

  • Diabetic bladder dysfunction (DBD) affects approximately 50% of diabetic patients.
  • Inflammation, driven by dysregulated glucose and toxic metabolites activating the NOD-, LRR-, and pyrin domain-containing protein 3 (NLRP3) inflammasome, is a key factor in DBD initiation and progression.
  • NLRP3 activation causes urothelial pyroptosis, potentially compromising bladder barrier integrity.

Purpose of the Study:

  • To investigate the impact of NLRP3-dependent inflammation on urothelial barrier function during the progression of type 1 diabetes.
  • To determine the specific role of NLRP3 in diabetes-induced bladder barrier damage using a mouse model.

Main Methods:

  • Utilized a type 1 diabetic female Akita mouse model at 15 and 30 weeks to represent early (overactive) and late (underactive) detrusor phenotypes.
  • Crossbred Akita mice with NLRP3-deficient mice to assess the specific role of NLRP3.
  • Evaluated urothelial barrier function via ex vivo (Evans blue dye) and in vivo (sulfo-NHS-biotin) permeability assays.
  • Assessed expression of uroplakin and tight junction components.

Main Results:

  • Diabetic mice at 15 weeks showed increased ex vivo and in vivo urothelial permeability and downregulated expression of barrier components (uroplakin, tight junctions).
  • NLRP3-deficient diabetic mice exhibited no barrier damage or gene/protein downregulation, indicating NLRP3's critical role.
  • By 30 weeks, barrier damage and component downregulation were resolved in diabetic mice, suggesting urothelial repair or remodeling.

Conclusions:

  • NLRP3-mediated inflammation is responsible for urothelial barrier damage associated with early-stage detrusor overactivity in type 1 diabetes.
  • The absence of NLRP3 prevents diabetes-induced urothelial barrier damage.
  • Urothelial barrier restoration occurs between the overactive and underactive stages of DBD, highlighting inflammation as a critical early factor.

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