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Activation of muscarinic receptors in rat bladder sensory pathways alters reflex bladder activity.

Kullmann FA et al.

The Journal of Neuroscience. 2008 Feb 20; 28(8):1977-1987

https://doi.org/10.1523/JNEUROSCI.4694-07.2008PMID: 18287514

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  • Confirmation
  • New Finding

Evaluations

Very Good
03 Apr 2008
Rodolfo Testa
Rodolfo Testa

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This mechanistic paper demonstrates that, in anesthetized rats, i) the inhibition of bladder voiding frequency induced by intravesical (but not intravenous) administration of low concentrations of a muscarinic agonist is decreased if NO (nitric oxide) synthesis is inhibited, and ii) that the increase in voiding frequency induced by intravesical high doses of muscarinic agonists is similarly inhibited, blocking purinergic receptors, suggesting that activation of muscarinic receptors involves ATP and NO release, as well as an interaction between urothelium and afferent nerves.

A previously published paper {1} suggests that antimuscarinic agents in rats might be effective not only by suppression of muscarinic receptor-mediated detrusor muscle contractions but also by blocking muscarinic receptors in bladder-afferent pathways.

Antimuscarinic drugs are generally thought to exert their therapeutic action on detrusor overactivity by reducing the ability of the detrusor muscle to contract. On the other hand, Finney et al. {2} reviewed currently available published clinical data on antimuscarinic drugs using a PubMed data search and considered 14 original articles reporting cystometric data for both filling and voiding phases, and suggest that the available data do not support the conclusion that antimuscarinic drugs at doses used in current clinical practice exert their therapeutic action by inhibiting detrusor contractility, but rather effects on variables associated with sensation. The present paper is, therefore, interesting since it enlightens us about the function of muscarinic receptors in affecting bladder sensory symptoms, such as urgency and frequency.

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Relevant Specialties

  • Molecular Medicine

    Genitourinary & Reproductive Pharmacology | Neurobiology of Disease & Regeneration | Neuropharmacology & Psychopharmacology | Renal, Fluid & Electrolyte Physiology
  • Nephrology

    Renal, Fluid & Electrolyte Physiology
  • Neuroscience

    Neurobiology of Disease & Regeneration | Neuronal Signaling Mechanisms | Neuropharmacology & Psychopharmacology | Sensory Systems
  • Pharmacology & Drug Discovery

    Genitourinary & Reproductive Pharmacology | Neuropharmacology & Psychopharmacology
  • Physiology

    Renal, Fluid & Electrolyte Physiology
  • Renal Biology

    Renal, Fluid & Electrolyte Physiology

Clinical Trials

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