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Updated: Jan 23, 2026

Murine Colitis Modeling using Dextran Sulfate Sodium DSS
Published on: January 19, 2010
NTPDase1 and -2 are expressed by distinct cellular compartments in the mouse colon and differentially impact colonic
Vladimir Grubišić1, Alberto L Perez-Medina2, David E Fried1
1Department of Physiology and Neuroscience Program, Michigan State University, East Lansing, Michigan.
Abstract:
ATP is both an important mediator of physiological gut functions such as motility and epithelial function, and a key danger signal that mediates cell death and tissue damage. The actions of extracellular ATP are regulated through the catalytic functions extracellular nucleoside triphosphate diphosphohydrolase-1 (NTPDase1), -2, -3, and -8, which ultimately generate nucleosides. Ectonucleotidases have distinct cellular associations, but the specific locations and functional roles of individual NTPDases in the intestine are still poorly understood. Here, we tested the hypothesis that differential and cell-selective regulation of purine hydrolysis by NTPDase1 and -2 plays important roles in gut physiology and disease. We studied Entpd1 and Entpd2 null mice in health and following colitis driven by 2% dextran sulfate sodium (DSS) administration using functional readouts of gut motility, epithelial barrier function, and neuromuscular communication. NTPDase1 is expressed by immune cells, and the ablation of Entpd1 altered glial numbers in the myenteric plexus. NTPDase2 is expressed by enteric glia, and the ablation of Entpd2 altered myenteric neuron numbers. Mice lacking either NTPDase1 or -2 exhibited decreased inhibitory neuromuscular transmission and altered components of inhibitory junction potentials. Ablation of Entpd2 increased gut permeability following inflammation. In conclusion, the location- and context-dependent extracellular nucleotide phosphohydrolysis by NTPDase1 and -2 substantially impacts gut function in health and disease.NEW & NOTEWORTHY Purines are important mediators of gastrointestinal physiology and pathophysiology. Nucleoside triphosphate diphosphohydrolases (NTPDases) regulate extracellular purines, but the roles of specific NTPDases in gut functions are poorly understood. Here, we used Entpd1- and Entpd2-deficient mice to show that the differential and cell-selective regulation of purine hydrolysis by NTPDase1 and -2 plays important roles in barrier function, gut motility, and neuromuscular communication in health and disease.
Insights
Extracellular nucleoside triphosphate diphosphohydrolases (NTPDases) 1 and 2 regulate gut functions. Their cell-specific roles impact gut motility, barrier function, and neuromuscular communication in health and disease.
Area of Science:
- Gastroenterology
- Immunology
- Neuroscience
Background:
- Extracellular ATP regulates gut physiology and signals danger.
- Extracellular nucleoside triphosphate diphosphohydrolases (NTPDases) control extracellular ATP levels.
- The specific roles of NTPDases in the gut remain unclear.
Purpose of the Study:
- To investigate the roles of NTPDase1 and NTPDase2 in gut physiology and disease.
- To test the hypothesis that differential regulation of purine hydrolysis by NTPDase1 and -2 is crucial for gut function.
Main Methods:
- Studied Entpd1 and Entpd2 null mice in health and DSS-induced colitis.
- Assessed gut motility, epithelial barrier function, and neuromuscular communication.
- Examined glial and neuronal populations in the myenteric plexus.
Main Results:
- NTPDase1 ablation affected glial numbers; NTPDase2 ablation affected neuronal numbers.
- Mice lacking NTPDase1 or -2 showed impaired neuromuscular transmission.
- NTPDase2 deficiency worsened gut permeability during inflammation.
Conclusions:
- Cell-selective purine hydrolysis by NTPDase1 and -2 significantly impacts gut function.
- These NTPDases play critical roles in maintaining gut barrier integrity and motility.
- Targeting NTPDases may offer therapeutic potential for gastrointestinal diseases.
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