Biomechanical aspects of the auto-digestion theory

Geert W Schmid-Schönbein1

  • 1Department of Bioengineering, The Whitaker Institute of Biomedical Engineering, University of California San Diego, La Jolla, CA, 92093-0412, USA. gwss@bioeng.ucsd.edu

Insights

Inflammation, linked to many diseases, may originate from digestive enzymes in the intestine. Intestinal ischemia allows these enzymes to cause auto-digestion, triggering inflammatory responses and potentially multi-organ failure.

Area of Science:

  • Biomedical Science
  • Pathophysiology
  • Gastroenterology

Background:

  • Inflammation is a common factor in cardiovascular diseases, tumors, and other ailments.
  • Inflammation involves complex cellular and molecular events, including changes in gene expression and endothelial permeability.
  • The precise origin of inflammatory triggers, particularly in shock and multi-organ failure, remains a critical question.

Purpose of the Study:

  • To investigate the fundamental mechanisms triggering inflammation.
  • To identify the source of inflammatory mediators in conditions of shock and multi-organ failure.

Main Methods:

  • Tracing the origin of inflammatory mediators through a series of basic studies.
  • Investigating the role of pancreatic digestive enzymes in the intestine.
  • Examining the integrity of the mucosal epithelial barrier under conditions of intestinal ischemia.

Main Results:

  • Digestive enzymes synthesized in the pancreas were identified as the source of inflammatory mediators.
  • The intestinal mucosal barrier's permeability to pancreatic enzymes was implicated in inflammatory processes.
  • Intestinal ischemia leads to enzyme entry into the intestinal wall, causing auto-digestion and inflammation.

Conclusions:

  • Pancreatic digestive enzymes escaping their normal intestinal compartmentalization are a key trigger for inflammation.
  • Auto-digestion of the intestinal wall by pancreatic enzymes is a potential mechanism for initiating inflammatory cascades.
  • This auto-digestion process is hypothesized to be a significant contributor to multi-organ failure in shock states.

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