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May 6, 2026Biomedicines0 citationsOpen Access

Elucidating the Urothelial-Dependent and -Independent Mechanisms Involved in the Mouse Bladder Contractility Alterations by Acute Methylglyoxal Exposure

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AOAkila Lara OliveiraMMMatheus L. MedeirosVFVivian Fuguhara

Key Points

  • This research investigates the impact of acute methylglyoxal exposure on bladder contractility mechanisms in mice.
  • Examined female wild-type and NOS knockout mice responses to methylglyoxal incubation
  • Analyzed bladder contractions invoked by carbachol and electrical field stimulation
  • Studied the activity of glyoxalase 1 in bladder tissues
  • Acute exposure to methylglyoxal enhances detrusor hypercontractility in urothelium-intact preparations
  • Methylglyoxal exposure increased contractions in NOS knockout mice
  • No changes were observed in glyoxalase 1 activity amidst MGO exposure

Abstract

Background/Objectives: Methylglyoxal (MGO) and subsequent activation of advanced glycation end products (AGEs)–RAGE receptor signaling has been implicated in the complications of diabetes mellitus (DM), such as bladder dysfunction. Chronic treatment with MGO leads to bladder overactivity, but the effects of acute MGO exposure have not yet been evaluated. Methods: In this study, we used female wild-type, endothelial nitric oxide (eNOS) knockout (eNOS−/−), and triple (neuronal/endothelial/inducible) NOS−/− mice to investigate the effects of incubation of MGO (10 to 300 µM) on bladder contractions induced by carbachol and electrical field stimulation (EFS). We also analyzed the activity of the MGO detoxification enzyme glyoxalase 1 (Glo1). Results: Incubation with MGO at 10 and 30 µM in urothelium-intact preparations produced marked detrusor hypercontractility to both carbachol and EFS that was abolished by urothelium removal. Detrusor hypercontractility was associated with the generation of reactive oxygen species (ROS), RAGE activation, Rho kinase sensitization, and activation of TRPA1 and TRPV4 channels. At higher concentrations (100 and 300 µM), MGO did not significantly affect the detrusor contractility to carbachol and EFS, but L-NAME pretreatment restored the hypercontractile state by MGO. Likewise, in bladder strips obtained from eNOS−/− or triple NOS−/− mice, MGO exposure (300 µM) significantly enhanced carbachol and EFS-induced contractions, indicating a major role for nitric oxide (NO) counteracting the hypercontractility. No concentration of MGO altered Glo1 activity in bladder tissues. Conclusions: In conclusion, progressive MGO accumulation may account for the transition from the initial hyperactive phase to the subsequent hypoactive decompensated phase of diabetic bladder dysfunction.

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Cite This Study

Oliveira et al. (2026) studied this question.

synapsesocial.com/papers/69fa97ce04f884e66b531b17https://doi.org/10.3390/biomedicines14051017
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