Diabetes and Pancreatic Cancer—A Dangerous Liaison Relying on Carbonyl Stress
Abstract
:Simple Summary
Abstract
1. Introduction
2. Relationship between Diabetes and Pancreatic Cancer
3. Diabetes, Carbonyl Stress, Advanced Glycation End-Products (AGEs) Formation, and Related Therapeutic Strategies
4. Carbonyl Stress in Cancer: A Possible Link between Metabolism and Malignances
5. RAGE, AGEs, and Their Carbonyl Precursors as Potential Targets in Pancreatic Cancer Associated with Diabetes and Other Carbonyl Stress-Related Conditions
6. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Study | Design/Intervention | Population/Animal or Cell Culture Model | Drug Target | Main Result |
---|---|---|---|---|
Clinical | ||||
Jiao et al. [190] | prospective case-cohort study | Finnish male smokers | AGE/RAGE axis | pre-diagnostic sRAGE is inversely associate while CML AGE:sRAGE ratio is positively associated with PDAC risk |
White et al. [191] | prospective nested case-control study | postmenopausal women | AGE/RAGE axis | pre-diagnostic sRAGE is inversely associated with pancreatic cancer risk |
Kahlert et al. [202] | retrospective study | PDAC patients undergoing potentially curative resection | ALCAM/CD166 (RAGE homolog) | ALCAM/CD166 is an independent prognostic marker for survival and tumour relapse in PDAC |
Jiao et al. [101] | prospective study | NIH-AARP Diet and Health Study participants | AGEs | dietary AGE consumption is associated with increased risk of PDAC |
Experimental | ||||
Kang et al. [193] | RAGE knock-down | murine model of Kras-driven PDAC and human PDAC tissue | RAGE-IL6-pSTAT3 pathway | RAGE ablation delays PDAC development by decreasing STAT3 signaling and autophagy |
Arumugam J et al. [194] | RAGE blockade | pancreatic orthotopic model | RAGE-NF-κB axis | RAGE inhibition reduces PDAC growth and metastasis |
Azizan et al. [192] | RAGE blockade | pancreatic orthotopic model | RAGE-NF-κB-KRAS axis | RAGE inhibition lowers oncogenic KRAS activity by preventing NF-κB activation |
Vernon et al. [195] | RAGE knock-down | murine model of Kras-driven PDAC | RAGE-IL6 pathway | RAGE ablation delays PDAC development by reducing the accumulation of myeloid-derived suppressor cells |
Kang et al. [196] | RAGE knock-down or inhibition by RNA interference | PDAC cells | ROS-NF-κB-RAGE axis | suppression and knockdown of RAGE increases the sensitivity of PDAC cells to oxidative injury |
Kang et al. [197] | RAGE knock-down | murine model of Kras-driven PDAC | RAGE-IL6-pSTAT3 pathway | RAGE ablation increases apoptosis and decreases autophagy/proliferation in the emerging PDAC microenvironment |
Kang et al. [198] | RAGE knock-down or inhibition of HMGB1 release | ectopic tumor xenograft model and human PDAC tissue | HMGB1–RAGE axis | lack of RAGE or inhibition of HMGB1 release slows PDAC growth in vitro and in vivo by diminishing ATP production |
Kang et al. [182] | RAGE knock-down | murine model of Kras-driven PDAC | RAGE-NF-κB-KRAS pathway | binding of RAGE to oncogenic KRAS facilitates HIF-1α activation and promotes PDAC growth |
Menini et al. [171] | exogenous AGE administration/RAGE blockade | murine model of Kras-driven PDAC | AGE-RAGE-ALCAM/CD166 axis | AGEs accelerate the progression of PDAC through receptor-mediated mechanisms |
Menini et al. [203] | inhibition of AGE formation by RCS scavenging | diabetic murine model of Kras-driven PDAC and human PDAC tissue | RCS (AGE precursors) | circulating and tumor-derived RCS/AGEs generated by hyperglycemia promote invasive PDAC |
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Menini, S.; Iacobini, C.; Vitale, M.; Pesce, C.; Pugliese, G. Diabetes and Pancreatic Cancer—A Dangerous Liaison Relying on Carbonyl Stress. Cancers 2021, 13, 313. https://doi.org/10.3390/cancers13020313
Menini S, Iacobini C, Vitale M, Pesce C, Pugliese G. Diabetes and Pancreatic Cancer—A Dangerous Liaison Relying on Carbonyl Stress. Cancers. 2021; 13(2):313. https://doi.org/10.3390/cancers13020313
Chicago/Turabian StyleMenini, Stefano, Carla Iacobini, Martina Vitale, Carlo Pesce, and Giuseppe Pugliese. 2021. "Diabetes and Pancreatic Cancer—A Dangerous Liaison Relying on Carbonyl Stress" Cancers 13, no. 2: 313. https://doi.org/10.3390/cancers13020313
APA StyleMenini, S., Iacobini, C., Vitale, M., Pesce, C., & Pugliese, G. (2021). Diabetes and Pancreatic Cancer—A Dangerous Liaison Relying on Carbonyl Stress. Cancers, 13(2), 313. https://doi.org/10.3390/cancers13020313