Manometric demonstration of duodenal/jejunal motor function consistent with the duodenal brake mechanism.

John Dent, Eveline Deloose, Philip Dinning, Maura Corsetti, Nathalie Rommel, Jan Tack, Lukasz Wiklendt, Anthony William Papageorgiou, John William Arkwright

Journal: Neurogastroenterology and motility 2021;32(10):e13835

PMID: 32167632

Abstract

BACKGROUND

High-resolution manometric studies below the stomach are rare due to technical limitations of traditional manometry catheters. Consequently, specific motor patterns and their impact on gastric and small bowel function are not well understood. High-resolution manometry was used to record fed-state motor patterns in the antro-jejunal segment and relate these to fasting motor function.

METHODS

Antro-jejunal pressures were monitored in 15 healthy females using fiber-optic manometry (72 sensors at 1 cm intervals) before and after a high-nutrient drink.

KEY RESULTS

Postprandial motility showed a previously unreported transition point 18.8 cm (range 13-28 cm) beyond the antro-pyloric junction. Distal to the transition, a zone of non-propagating, repetitive pressure events (11.5 ± 0.5 cpm) were dominant in the fed state. We have named this activity, the duodeno-jejunal complex (DJC). Continuous DJC activity predominated, but nine subjects also exhibited intermittent clusters of DJC activity, 7.4 ± 4.9/h, lasting 1.4 ± 0.55 minutes, and 3.8 ± 1.2 minutes apart. DJC activity was less prevalent during fasting (3.6 ± 3.3/h; P = .04). 78% of fed and fasting state propagating antro-duodenal pressure events terminated proximally or at the transition point and were closely associated with DJC clusters.

CONCLUSIONS AND INFERENCES

High-resolution duodeno-jejunal manometry revealed a previously unrecognized transition point and associated motor pattern extending into the jejunum, consistent with the duodenal brake previously identified fluoroscopically. Timing suggests DJC activity is driven by chyme stimulating duodenal mucosal chemosensors. These findings indicate that the duodenum and proximal jejunum consists of two major functional motor regions.

© 2020 John Wiley & Sons Ltd.

Address: Department of Medicine, University of Adelaide, Adelaide, SA, Australia.; Translational Research Centre for Gastrointestinal Disorders, University of Leuven, Leuven, Belgium.; Department of Gastroenterology & Surgery, Flinders Medical Centre, Adelaide, SA, Australia.; College of Medicine and Public Health, Flinders University, Bedford Park, SA, Australia.; National Institute for Health Research, Nottingham Digestive Diseases Biomedical Research Unit, Nottingham University Hospitals NHS Trust, University of Nottingham, Nottingham, UK.; Experimental Oto-Rhino-Laryngology, University of Leuven, Leuven, Belgium.; College of Science and Engineering, Flinders University, Tonsley, SA, Australia.

Link outs

Bant logo

© Copyright 2026, Nutrition Evidence

NED wishes to thank the following organisations for their support:

We use cookies to improve your experience and analyze site traffic with Google Analytics. By continuing to use our site, you agree to our use of cookies. Learn more.