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Updated: Aug 31, 2025

In Vitro Characterization of the Electrophysiological Properties of Colonic Afferent Fibers in Rats
Published on: September 27, 2017
Neuropilin 2 Is a Novel Regulator of Distal Colon Contractility
George Lambrinos1, Vivian Cristofaro2, Kristine Pelton1
1Urological Diseases Research Center, Boston Children's Hospital, Boston, Massachusetts.
Abstract:
Appropriate coordination of smooth muscle contraction and relaxation is essential for normal colonic motility. The impact of perturbed motility ranges from moderate, in conditions such as colitis, to potentially fatal in the case of pseudo-obstruction. The mechanisms underlying aberrant motility and the extent to which they can be targeted pharmacologically are incompletely understood. This study identified colonic smooth muscle as a major site of expression of neuropilin 2 (Nrp2) in mice and humans. Mice with inducible smooth muscle-specific knockout of Nrp2 had an increase in evoked contraction of colonic rings in response to carbachol at 1 and 4 weeks following initiation of deletion. KCl-induced contractions were also increased at 4 weeks. Colonic motility was similarly enhanced, as evidenced by faster bead expulsion in Nrp2-deleted mice versus Nrp2-intact controls. In length-tension analysis of the distal colon, passive tension was similar in Nrp2-deficient and Nrp2-intact mice, but at low strains, active stiffness was greater in Nrp2-deficient animals. Consistent with the findings in conditional Nrp2 mice, Nrp2-null mice showed increased contractility in response to carbachol and KCl. Evaluation of selected proteins implicated in smooth muscle contraction revealed no significant differences in the level of α-smooth muscle actin, myosin light chain, calponin, or RhoA. Together, these findings identify Nrp2 as a novel regulator of colonic contractility that may be targetable in conditions characterized by dysmotility.
Insights
Neuropilin 2 (Nrp2) in colonic smooth muscle regulates gut motility. Deleting Nrp2 enhances colonic muscle contraction, suggesting Nrp2 as a therapeutic target for motility disorders.
Area of Science:
- Gastroenterology
- Molecular Biology
- Physiology
Background:
- Normal colonic motility relies on precise smooth muscle contraction and relaxation.
- Aberrant colonic motility contributes to conditions like colitis and pseudo-obstruction.
- Mechanisms of dysmotility and their pharmacological targets remain incompletely understood.
Purpose of the Study:
- To investigate the role of neuropilin 2 (Nrp2) in colonic smooth muscle function.
- To identify Nrp2 as a potential therapeutic target for colonic dysmotility.
Main Methods:
- Generated inducible smooth muscle-specific Nrp2 knockout mice and Nrp2-null mice.
- Assessed colonic ring contractility using carbachol and KCl stimulation.
- Performed length-tension analysis on colonic tissues.
- Quantified key proteins involved in smooth muscle contraction.
Main Results:
- Nrp2 is highly expressed in colonic smooth muscle of mice and humans.
- Nrp2 deletion in smooth muscle led to increased colonic contractility and enhanced motility.
- Active stiffness of the distal colon was elevated in Nrp2-deficient mice.
- No significant changes in smooth muscle contraction-related proteins were observed.
Conclusions:
- Neuropilin 2 (Nrp2) is a novel regulator of colonic smooth muscle contractility.
- Nrp2 plays a critical role in maintaining normal colonic motility.
- Targeting Nrp2 presents a potential therapeutic strategy for managing colonic dysmotility.
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