Relaxin Affects Smooth Muscle Biophysical Properties and Mechanical Activity of the Female Mouse Colon

Roberta Squecco1, Rachele Garella1, Eglantina Idrizaj1

  • 1Sections of Physiology (R.S., R.G., E.I., F.F., M.C.B.) and Anatomy and Histology (S.N.), Department of Experimental and Clinical Medicine, University of Florence, 50134 Florence, Italy.

Endocrinology
|September 12, 2015
PubMed

Insights

The hormone relaxin (RLX) alters colonic smooth muscle cell biophysical properties. RLX hyperpolarizes resting membrane potential and modulates ion channels via the nitric oxide/cGMP pathway, impacting gastrointestinal motility.

Area of Science:

  • Gastroenterology
  • Physiology
  • Molecular Biology

Background:

  • The hormone relaxin (RLX) is known to affect gastrointestinal motility.
  • Its precise impact on the biophysical characteristics of colonic smooth muscle cells (SMCs) remains uncharacterized.

Purpose of the Study:

  • To investigate how RLX influences the resting membrane potential (RMP) and sarcolemmal ion channels in mouse colonic SMCs.
  • To elucidate the relationship between these biophysical changes and RLX's mechanical effects on the colon.

Main Methods:

  • Employed a combined approach using mechanical and electrophysiological techniques.
  • Utilized specific inhibitors, including ODQ (guanylate cyclase inhibitor) and KT5823 (cGMP-dependent protein kinase inhibitor).

Main Results:

  • RLX induced a decrease in basal colonic tone and enhanced spontaneous contractions, effects blocked by ODQ.
  • RLX caused hyperpolarization of RMP and initiated slow hyperpolarization/depolarization oscillations in colonic SMCs.
  • RLX reduced L-type calcium channel Ca(2+) influx and modulated K(+) channels, with these effects dependent on the nitric oxide/guanylate cyclase pathway.

Conclusions:

  • RLX directly alters the biophysical properties of colonic SMCs.
  • The nitric oxide/guanylate cyclase/cGMP-dependent protein kinase pathway mediates RLX's effects on RMP and ion channels.
  • These findings suggest a novel mechanism for RLX in regulating proximal colon motility.

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