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Published on: May 22, 2018
Mini Review: the non-neuronal cardiac cholinergic system in type-2 diabetes mellitus
Eng Leng Saw1, Martin Fronius2, Rajesh Katare2
1Whitaker Cardiovascular Institute, Boston University Chobanian & Avedisian School of Medicine, Boston, MA, United States.
Abstract:
Diabetic heart disease remains the leading cause of death in individuals with type-2 diabetes mellitus (T2DM). Both insulin resistance and metabolic derangement, hallmark features of T2DM, develop early and progressively impair cardiovascular function. These factors result in altered cardiac metabolism and energetics, as well as coronary vascular dysfunction, among other consequences. Therefore, gaining a deeper understanding of the mechanisms underlying the pathophysiology of diabetic heart disease is crucial for developing novel therapies for T2DM-associated cardiovascular disease. Cardiomyocytes are equipped with the cholinergic machinery, known as the non-neuronal cardiac cholinergic system (NNCCS), for synthesizing and secreting acetylcholine (ACh) as well as possessing muscarinic ACh receptor for ACh binding and initiating signaling cascade. ACh from cardiomyocytes regulates glucose metabolism and energetics, endothelial function, and among others, in an auto/paracrine manner. Presently, there is only one preclinical animal model - diabetic db/db mice with cardiac-specific overexpression of choline transferase (Chat) gene - to study the effect of activated NNCCS in the diabetic heart. In this mini-review, we discuss the physiological role of NNCCS, the connection between NNCCS activation and cardiovascular function in T2DM and summarize the current knowledge of S-Nitroso-NPivaloyl-D-Penicillamine (SNPiP), a novel inducer of NNCCS, as a potential therapeutic strategy to modulate NNCCS activity for diabetic heart disease.
Insights
Diabetic heart disease impairs cardiovascular function in type-2 diabetes. Activating the non-neuronal cardiac cholinergic system (NNCCS) with novel inducers like SNPiP may offer a new therapeutic strategy.
Area of Science:
- Cardiology
- Endocrinology
- Molecular Biology
Background:
- Diabetic heart disease is a major cause of mortality in type-2 diabetes mellitus (T2DM).
- Insulin resistance and metabolic dysfunction in T2DM progressively impair cardiac function and metabolism.
- Understanding the pathophysiology of diabetic heart disease is critical for developing new T2DM therapies.
Purpose of the Study:
- To review the physiological role of the non-neuronal cardiac cholinergic system (NNCCS).
- To explore the link between NNCCS activation and cardiovascular function in T2DM.
- To summarize the therapeutic potential of S-Nitroso-NPivaloyl-D-Penicillamine (SNPiP) for diabetic heart disease.
Main Methods:
- Review of existing literature on NNCCS, T2DM, and cardiovascular function.
- Discussion of preclinical models, including diabetic db/db mice with cardiac-specific choline acetyltransferase (Chat) overexpression.
- Analysis of SNPiP as a novel NNCCS inducer.
Main Results:
- The NNCCS, involving acetylcholine (ACh) synthesis and signaling within cardiomyocytes, plays a role in cardiac metabolism and function.
- Evidence suggests a connection between NNCCS activity and cardiovascular complications in T2DM.
- SNPiP emerges as a potential therapeutic agent to modulate NNCCS activity.
Conclusions:
- The NNCCS is a key player in maintaining cardiac homeostasis and its dysfunction contributes to diabetic heart disease.
- Targeting the NNCCS, potentially with agents like SNPiP, represents a promising therapeutic avenue for T2DM-associated cardiovascular disease.
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