Partial bladder outlet obstruction abolishes the receptor- and G protein-dependent increase in calcium sensitivity in

Michaela C Stanton1, Daniel Delaney, Stephen A Zderic

  • 1Dept. of Pharmacology and Physiology, Drexel University College of Medicine, Philadelphia, PA 19102, USA.

Insights

Partial bladder outlet obstruction (PBOO) impairs bladder smooth muscle contractility by reducing calcium sensitivity. This dysfunction occurs downstream of G protein and PKC signaling pathways, impacting bladder function.

Area of Science:

  • Urology
  • Physiology
  • Smooth Muscle Biology

Background:

  • Partial bladder outlet obstruction (PBOO) is known to alter bladder function.
  • Specific changes in bladder smooth muscle cell contractility are observed following PBOO.

Purpose of the Study:

  • To investigate if PBOO affects smooth muscle contraction by altering the receptor- and G protein-dependent increase in myofilament Ca2+ sensitivity.
  • To identify the molecular mechanisms underlying altered bladder smooth muscle contractility in PBOO.

Main Methods:

  • Utilized alpha-toxin-permeabilized bladder smooth muscle strips from control and PBOO-subjected animals.
  • Measured force development in response to increasing free Ca2+ concentrations.
  • Assessed the effects of carbachol and GTP on Ca2+ sensitivity and force.
  • Analyzed myosin light chain phosphorylation levels.
  • Evaluated G protein activity and protein kinase C (PKC) signaling.

Main Results:

  • In control tissues, carbachol and GTP enhanced Ca2+ sensitivity and maximal force.
  • In PBOO tissues, carbachol and GTP failed to enhance Ca2+ sensitivity or maximal force.
  • Myosin light chain phosphorylation showed a trend towards increase in PBOO but was not statistically significant.
  • G protein activity and PKC signaling alterations did not account for the observed loss of enhancement.

Conclusions:

  • PBOO decreases receptor-mediated myofilament calcium sensitization in bladder smooth muscle.
  • The site of action for this PBOO-induced deficit is located downstream of G proteins and PKC signaling.
  • These findings elucidate a key mechanism of bladder dysfunction in PBOO.

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