#KnowTheAuthors - “Improving 10-year cardiovascular risk prediction in patients with type 2 diabetes with metabolomics”
Published in General & Internal Medicine
First author Ruijie Xie provides a 2 minutes video summary of their article "Improving 10-year cardiovascular risk prediction in patients with type 2 diabetes with metabolomics" published in Cardiovascular Diabetology.
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Cardiovascular Diabetology
This journal considers manuscripts on all aspects of the diabetes/cardiovascular interrelationship and the metabolic syndrome; this includes clinical, genetic, experimental, pharmacological, epidemiological and molecular biology research.
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Cardiometabolic and Hepatic Interconnections: From Mechanisms to Clinical Implications
Cardiovascular Diabetology features a Collection on "Cardiometabolic and Hepatic Interconnections: From Mechanisms to Clinical Implications". This is a companion Collection with Diabetology & Metabolic Syndrome with the title "MASLD Beyond the Liver: Epidemiology, Pathophysiology, Diagnosis, and Therapeutic Implications in Multisystem Disorders".
Cardiometabolic and liver diseases are no longer viewed as isolated entities. Growing evidence shows that hepatic and cardiovascular dysfunctions are tightly interconnected through shared metabolic, inflammatory, hemodynamic, and hormonal pathways. This crosstalk shapes disease trajectories and opens opportunities for integrated diagnostics and therapies.
Key interconnections include:
- Insulin resistance. The liver is pivotal for glucose and lipid homeostasis. Hepatic insulin resistance drives excess glucose production and dyslipidemia, contributing to the cardiovascular–kidney–metabolic (CKM) syndrome.
- Metabolic dysfunction–associated steatotic liver disease (MASLD). Highly prevalent in obesity and metabolic syndrome, and especially common in type 2 diabetes (T2D), which bears the highest MASLD burden. Progression to steatohepatitis or fibrosis markedly increases atherosclerotic risk.
- Liver-derived factors. Hepatokines (e.g., FGF21) and extracellular vesicles influence cardiac tissue, vascular tone, and systemic metabolism, potentially amplifying inflammation, oxidative stress, and lipotoxicity across organs.
- Systemic inflammation and lipotoxicity. Visceral adipose tissue and the liver release inflammatory cytokines and triglyceride-rich lipids, promoting endothelial dysfunction and perpetuating metabolic disturbances.
- Dyslipidemia. Elevated triglycerides and LDL, with reduced HDL, accelerate atherogenesis and cardiovascular risk.
- Hemodynamic and metabolic stress. Heart failure can cause hepatic congestion and hypoperfusion, while advanced liver disease can precipitate cirrhotic cardiomyopathy and arrhythmias, even in the absence of prior heart failure.
In summary, hepatic and cardiometabolic systems are functionally and pathologically intertwined: liver dysfunction worsens cardiovascular and metabolic health, and cardiometabolic disturbances accelerate hepatic pathology.
This Collection welcomes original research articles, reviews, and meta-analyses focused on this reciprocal relationship. Given the high prevalence of MASLD in T2D, we especially encourage submissions at the T2D–MASLD–cardiovascular interface. Addressing hepatic and cardiometabolic health in parallel is essential for effective risk reduction and patient care.
This Collection supports and amplifies research related to SDG 3, Good Health and Well-Being.
All submissions in this Collection undergo the journal’s standard peer review process. Similarly, all manuscripts authored by a Guest Editor(s) will be handled by the Editor-in-Chief. As an open access publication, this journal levies an article processing fee (details here). We recognize that many key stakeholders may not have access to such resources and are committed to supporting participation in this issue wherever resources are a barrier. For more information about what support may be available, please visit OA funding and support, or email OAfundingpolicy@springernature.com or the Editor-in-Chief.
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Areas of interest include, but are not limited to:
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This Collection welcomes original research, translational studies, and comprehensive reviews and meta-analyses that provide novel mechanistic insight or clinically relevant evidence to advance understanding of the expanding role of incretin-based therapies in cardiometabolic medicine.
This Collection supports and amplifies research related to SDG 3, Good Health and Well-Being.
All submissions in this Collection undergo the journal’s standard peer review process. Similarly, all manuscripts authored by a Guest Editor(s) will be handled by the journal editorial board. As an open access publication, this journal levies an article processing fee (details here). We recognize that many key stakeholders may not have access to such resources and are committed to supporting participation in this issue wherever resources are a barrier. For more information about what support may be available, please visit OA funding and support, or email OAfundingpolicy@springernature.com.
Publishing Model: Open Access
Deadline: Dec 13, 2026
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