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Updated: Nov 7, 2025

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Published on: July 9, 2021
Characterization of haustral activity in the human colon
Jan D Huizinga1, Maham Pervez1, Sharjana Nirmalathasan1
1Division of Gastroenterology, Department of Medicine, Farncombe Family Digestive Health Research Institute, McMaster University, Hamilton, Ontario, Canada.
Insights
Human colon haustra exhibit distinct motor patterns, including rhythmic pressure waves and segmentation, crucial for mixing and absorption. These findings offer new insights into colonic motility and potential defecation disorder mechanisms.
Area of Science:
- Gastroenterology
- Human Physiology
- Colonic Motility
Background:
- Colonic haustral contractions are poorly understood.
- Previous studies lacked detailed analysis of haustral-specific motor patterns.
Purpose of the Study:
- To characterize and quantify motor patterns within individual human colon haustra.
- To investigate the role of haustral activity in colonic function and potential defecation disorders.
Main Methods:
- High-resolution manometry with 84 sensors (1-cm spacing) in 21 healthy subjects.
- Analysis of intrahaustral activity and haustral boundary movements.
- Correlation with capsule endoscopy and X-ray imaging of haustra.
Main Results:
- Identified two primary haustral motor patterns: single-sensor rhythmic activity and 3-6 cm segment activity.
- Observed intermittent haustral activity (∼30% of time) in about 50% of haustra.
- Characterized intrahaustral activity with mixed-direction pressure waves (5-30 mmHg, 3-15 cpm) and checkerboard segmentation.
Conclusions:
- Haustral boundaries are stable and likely contribute to continence.
- Intrahaustral activity facilitates mixing, absorption, and stool formation.
- This study provides a foundation for understanding haustral dysfunction in defecation disorders.
Abstract:
Contraction patterns of the human colon are rarely discussed from the perspective of its haustra. Colonic motility was analyzed in 21 healthy subjects using 84-sensor manometry catheters with 1-cm sensor spacing. Capsule endoscopy and manometry showed evidence of narrow rhythmic circular muscle contractions. X-ray images of haustra and sensor locations allowed us to identify manometry motor activity as intrahaustral activity. Two common motor patterns were observed that we infer to be associated with individual haustra: rhythmic pressure activity confined to a single sensor, and activity confined to a section of the colon of 3-6 cm length. Intrahaustral activity was observed by 3-4 sensors. Approximately 50% of the haustra were intermittently active for ∼30% of the time; 2,402 periods of haustral activity were analyzed. Intrahaustral activity showed rhythmic pressure waves, propagating in mixed direction, 5-30 mmHg in amplitude at a frequency of ∼3 cpm (range 2-6) or ∼12 cpm (range 7-15), or exhibiting a checkerboard segmentation pattern. Boundaries of the haustra showed rhythmic pressure activity with or without elevated baseline pressure. Active haustra often showed no boundary activity probably allowing transit to neighboring haustra. Haustral boundaries were seen at the same sensor for the 6- to 8-h study duration, indicating that they did not propagate, thereby likely contributing to continence. The present study elucidates the motility characteristics of haustral boundaries and the nature of intrahaustral motor patterns and paves the way for investigating their possible role in pathophysiology of defecation disorders.NEW & NOTEWORTHY Here, we present the first full characterization and quantification of motor patterns that we infer to be confined to single haustra, both intrahaustral activity and haustral boundary activity, in the human colon using high-resolution manometry. Haustral activity is intermittent but consistently present in about half of the haustra. Intrahaustral activity presents as a cyclic motor pattern of mixed propagation direction dominated by simultaneous pressure waves that can resolve into checkerboard segmentation, allowing for mixing, absorption, and stool formation.
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