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Updated: May 11, 2026

An Orthotopic Resectional Mouse Model of Pancreatic Cancer
Published on: September 24, 2020
Norepinephrine inhibits the migratory activity of pancreatic cancer cells
Anna-Maria Stock1, Desmond G Powe2, Stephan A Hahn3
1Institute of Immunology and Experimental Oncology, Centre for Biomedical Education and Research (ZBAF), Witten/Herdecke University, 58448 Witten, Germany.
Abstract:
We have shown previously that norepinephrine induces migratory activity of tumour cells from breast, colon and prostate tissue via activation of beta-2 adrenergic receptors. Consequently, this effect can be inhibited pharmacologically by clinically established beta-blockers. Tumour cell migration is a prerequisite for metastasis formation, and accordingly we and others have shown that breast cancer patients, which take beta-blockers due to hypertension, have reduced metastasis formation and increased survival probability as compared to patients without hypertension or using other anti-hypertensive medication. Unlike the aforementioned tumour cells, pancreatic cancer cells show a reduced migratory activity upon norepinephrine treatment. By means of our three-dimensional, collagen-based cell migration assay, we have investigated the signal transduction pathways involved in this phenomenon. We have found that this conflicting effect of norepinephrine on pancreatic cancer cells is due to an imbalanced activation of the two pathways that usually mediate a pro-migratory effect of norepinephrine in other tumour cell types. Firstly, the inhibitory effect results from activation of a pathway which causes a strong increase of the secondary cell signalling molecule, cAMP. In addition, activation of phospholipase C gamma and the downstream protein kinase C alpha were shown to be already activated in pancreatic cancer cells and cannot be further activated by norepinephrine. We hypothesize that this constitutive activation of the phospholipase C gamma pathway is due to a cross-talk with receptor tyrosine kinase signalling, and this might also deliver an explanation for the unusual high spontaneous migratory activity of pancreatic cancer cells.
Insights
Norepinephrine normally increases tumor cell migration, but not in pancreatic cancer. This study reveals pancreatic cancer
Area of Science:
- Oncology
- Cell Biology
- Pharmacology
Background:
- Norepinephrine promotes migration in breast, colon, and prostate tumor cells via beta-2 adrenergic receptors.
- Beta-blockers inhibit this migration, correlating with reduced metastasis and improved survival in breast cancer patients.
- Pancreatic cancer cells exhibit reduced migration upon norepinephrine treatment, unlike other tumor types.
Purpose of the Study:
- Investigate the signal transduction pathways underlying norepinephrine's paradoxical effect on pancreatic cancer cell migration.
- Elucidate the molecular mechanisms behind the reduced migratory response to norepinephrine in pancreatic cancer.
Main Methods:
- Utilized a three-dimensional, collagen-based cell migration assay.
- Analyzed signal transduction pathways involved in norepinephrine's effect on pancreatic cancer cells.
Main Results:
- Norepinephrine's inhibitory effect on pancreatic cancer cell migration is linked to increased cyclic adenosine monophosphate (cAMP).
- Phospholipase C gamma and protein kinase C alpha are constitutively active in pancreatic cancer cells and not further activated by norepinephrine.
- This constitutive activation may stem from cross-talk with receptor tyrosine kinase signaling.
Conclusions:
- The unusual response of pancreatic cancer cells to norepinephrine is due to imbalanced activation of pro-migratory pathways.
- Constitutive activation of phospholipase C gamma signaling may explain both the blunted norepinephrine response and high spontaneous migration in pancreatic cancer.
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