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Characterization of alternating neurogenic motor patterns in mouse colon
Author(s) -
Costa Marcello,
Keightley Lauren J.,
Hibberd Timothy J.,
Wiklendt Lukasz,
Smolilo David J.,
Dinning Phil G.,
Brookes Simon J.,
Spencer Nick J.
Publication year - 2021
Publication title -
neurogastroenterology and motility
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.489
H-Index - 105
eISSN - 1365-2982
pISSN - 1350-1925
DOI - 10.1111/nmo.14047
Subject(s) - motility , in vivo , electrophysiology , interstitial cell of cajal , in vitro , distal colon , migrating motor complex , chemistry , anatomy , smooth muscle , biophysics , proximal colon , biology , neuroscience , medicine , microbiology and biotechnology , endocrinology , biochemistry , colorectal cancer , cancer
Background Colonic motor complexes (CMCs) have been widely recorded in the large intestine of vertebrates. We have investigated whether in the smooth muscle, a single unified pattern of electrical activity, or different patterns of electrical activity give rise to the different neurogenic patterns of motility underlying CMCs in vitro. Methods To study differences of the CMCs between proximal and distal colon, we used a novel combination of techniques to simultaneously record muscle diameter and force at multiple sites along the whole mouse colon ex vivo. In addition, electrical activity of smooth muscle was recorded by suction electrodes. Key Results Two distinct types of CMCs were distinguished; CMCs that propagated along the entire colon (complete CMC) and CMCs which were restricted to the proximal colon (incomplete CMC). The two types of CMC often occurred in the same preparations. Incomplete CMCs had longer bursts of smooth muscle action potentials than complete CMCs and propagated more slowly. Interestingly, both types of CMC were associated with similar frequency bursts of smooth muscle action potentials at ~2.4 Hz. In the most proximal colon, an additional firing frequency was detected close to ~7 Hz generating multiple peaks within each CMC. Conclusions & Inferences We report distinct characteristics underlying complete and incomplete CMCs in isolated mouse colon. Recognizing these distinct patterns of motility will be important for future interpretation of analysis of murine colonic motility recordings. The identification of alternating patterns of motor activity in proximal colon, but not distal colon may reflect specific neural mechanisms for fecal pellet formation.