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Secretagogue-stimulated pancreatic secretion is differentially regulated by constitutive NOS isoforms in mice
Matthew J DiMagno1, Yibai Hao, Yasuhiro Tsunoda
1Department of Internal Medicine, The University of Michigan Medical School, 1500 E. Medical Center Dr., 3912 Taubman Center, Ann Arbor, MI 48109-0362, USA. mdimagno@umich.edu
Abstract:
Nitric oxide (NO) and NO synthase (NOS) play controversial roles in pancreatic secretion. NOS inhibition reduces CCK-stimulated in vivo pancreatic secretion, but it is unclear which NOS isoform is responsible, because NOS inhibitors lack specificity and three NOS isoforms exist: neuronal (nNOS), endothelial (eNOS), and inducible (iNOS). Mice having individual NOS gene deletions were used to clarify the NOS species and cellular interactions influencing pancreatic secretion. In vivo secretion was performed in anesthetized mice by collecting extraduodenal pancreatic duct juice and measuring protein output. Nonselective NOS blockade was induced with N(omega)-nitro-L-arginine (L-NNA; 10 mg/kg). In vivo pancreatic secretion was maximal at 160 pmol.kg(-1).h(-1) CCK octapeptide (CCK-8) and was reduced by NOS blockade (45%) and eNOS deletion (44%). Secretion was unaffected by iNOS deletion but was increased by nNOS deletion (91%). To determine whether the influence of NOS on secretion involved nonacinar events, in vitro CCK-8-stimulated secretion of amylase from isolated acini was studied and found to be unaltered by NOS blockade and eNOS deletion. Influence of NOS on in vivo secretion was further examined with carbachol. Protein secretion, which was maximal at 100 nmol.kg(-1).h(-1) carbachol, was reduced by NOS blockade and eNOS deletion but unaffected by nNOS deletion. NOS blockade by L-NNA had no effect on carbachol-stimulated amylase secretion in vitro. Thus constitutive NOS isoforms can exert opposite effects on in vivo pancreatic secretion. eNOS likely plays a dominant role, because eNOS deletion mimics NOS blockade by inhibiting CCK-8 and carbachol-stimulated secretion, whereas nNOS deletion augments CCK-8 but not carbachol-stimulated secretion.
Insights
Nitric oxide synthase (NOS) isoforms have opposing effects on pancreatic secretion. Endothelial NOS (eNOS) deletion reduces secretion, while neuronal NOS (nNOS) deletion increases it, clarifying NOS roles in digestive function.
Area of Science:
- Physiology
- Gastroenterology
- Molecular Biology
Background:
- Nitric oxide (NO) and its synthesizing enzymes (NOS) have complex, debated roles in pancreatic secretion.
- Existing NOS inhibitors lack specificity, making it difficult to determine the roles of neuronal (nNOS), endothelial (eNOS), and inducible (iNOS) isoforms.
Purpose of the Study:
- To elucidate the specific roles of individual NOS isoforms in regulating pancreatic secretion in vivo.
- To differentiate the contributions of eNOS and nNOS to CCK-8 and carbachol-stimulated pancreatic secretion.
Main Methods:
- Utilized gene-deleted mice lacking specific NOS isoforms (eNOS, iNOS, nNOS).
- Measured in vivo pancreatic protein secretion via extraduodenal duct juice collection in anesthetized mice.
- Administered CCK octapeptide (CCK-8) and carbachol to stimulate secretion and assessed the effects of NOS blockade (L-NNA) and gene deletions.
Main Results:
- NOS blockade and eNOS deletion significantly reduced CCK-8-stimulated pancreatic secretion (45% and 44%, respectively).
- nNOS deletion unexpectedly increased CCK-8-stimulated secretion (91%), while iNOS deletion had no effect.
- eNOS deletion mimicked NOS blockade effects on both CCK-8 and carbachol-stimulated secretion, whereas nNOS deletion only affected CCK-8 stimulated secretion.
Conclusions:
- Constitutive NOS isoforms, eNOS and nNOS, exert opposing regulatory effects on in vivo pancreatic secretion.
- Endothelial NOS (eNOS) plays a dominant inhibitory role in CCK-8 and carbachol-stimulated pancreatic secretion.
- Neuronal NOS (nNOS) appears to have a modulatory role, potentially augmenting CCK-8 stimulated secretion but not carbachol-stimulated secretion.
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