Evidence map›Paper›PMID 40369521›Full record

ArticleCardiovascular diabetology2025

Dysregulated inflammation, oxidative stress, and protein quality control in diabetic HFpEF: unraveling mechanisms and therapeutic targets.

Simin Delalat, Innas Sultana, Hersh Osman, Marcel Sieme, Saltanat Zhazykbayeva, Melissa Herwig, Heidi Budde, Árpád Kovács, Mustafa Kaçmaz, Eda Göztepe and 17 more

Abstract read
In one paragraph

Article in Cardiovascular diabetology, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 27 papers.

0numbers the graph read from it
0cells of the map it votes in
27citing papers in PubMed
–field-weighted citation impact
1 · What the graph read from it

What it found

Each row is one number read from the abstract, on the scale the paper reported it, with its interval. Left of the dashed line favours the treatment, right favours the comparator. Under each row is the sentence it came from. New to these charts? A ten-minute tutorial.

The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.

2 · The registry

The trial behind it

Trials whose registry record cites this paper, or whose number appears in the abstract. A trial that started after this paper was published is citing it as background, not reporting it.

Neither the registry nor the abstract names a trial number. If this is a trial report, that itself is worth knowing.

3 · Its place in the literature

Who cites it

27 citing papers in PubMed.

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  10. Beyond circulating cGMP: revisiting compartmentalized signaling in HFrEF.International journal of cardiology. Heart & vasculature · 2026
    Article
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  17. Diabetes, Protein Misfolding, and Heat Stress: Molecular Insights and Translational Perspectives.TH open : companion journal to thrombosis and haemostasis · 2026
    Review
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4 · The record

Corrections and comments

PubMed lists nothing against this paper. Absence here is not a guarantee, only a check that was made.

5 · Who and what money

Authors and funding

27 authors.

Simin Delalat *Medical Faculty, Department of Cellular and Translational Physiology, Institute of Physiology, Molecular and Experimental Cardiology, Institut Für Forschung und Lehre (IFL), Ruhr University Bochum, 44801, Bochum, Germany.
Innas Sultana *Medical Faculty, Department of Cellular and Translational Physiology, Institute of Physiology, Molecular and Experimental Cardiology, Institut Für Forschung und Lehre (IFL), Ruhr University Bochum, 44801, Bochum, Germany.
Hersh Osman *Medical Faculty, Department of Cellular and Translational Physiology, Institute of Physiology, Molecular and Experimental Cardiology, Institut Für Forschung und Lehre (IFL), Ruhr University Bochum, 44801, Bochum, Germany.
Marcel Sieme *Medical Faculty, Department of Cellular and Translational Physiology, Institute of Physiology, Molecular and Experimental Cardiology, Institut Für Forschung und Lehre (IFL), Ruhr University Bochum, 44801, Bochum, Germany.
Saltanat ZhazykbayevaMedical Faculty, Department of Cellular and Translational Physiology, Institute of Physiology, Molecular and Experimental Cardiology, Institut Für Forschung und Lehre (IFL), Ruhr University Bochum, 44801, Bochum, Germany.
Melissa HerwigMedical Faculty, Department of Cellular and Translational Physiology, Institute of Physiology, Molecular and Experimental Cardiology, Institut Für Forschung und Lehre (IFL), Ruhr University Bochum, 44801, Bochum, Germany.
Heidi BuddeMedical Faculty, Department of Cellular and Translational Physiology, Institute of Physiology, Molecular and Experimental Cardiology, Institut Für Forschung und Lehre (IFL), Ruhr University Bochum, 44801, Bochum, Germany.
Árpád KovácsMedical Faculty, Department of Cellular and Translational Physiology, Institute of Physiology, Molecular and Experimental Cardiology, Institut Für Forschung und Lehre (IFL), Ruhr University Bochum, 44801, Bochum, Germany.
Mustafa KaçmazMedical Faculty, Department of Cellular and Translational Physiology, Institute of Physiology, Molecular and Experimental Cardiology, Institut Für Forschung und Lehre (IFL), Ruhr University Bochum, 44801, Bochum, Germany.
Eda GöztepeMedical Faculty, Department of Cellular and Translational Physiology, Institute of Physiology, Molecular and Experimental Cardiology, Institut Für Forschung und Lehre (IFL), Ruhr University Bochum, 44801, Bochum, Germany.
Natalie BorgmannMedical Faculty, Department of Cellular and Translational Physiology, Institute of Physiology, Molecular and Experimental Cardiology, Institut Für Forschung und Lehre (IFL), Ruhr University Bochum, 44801, Bochum, Germany.
Gelareh ShahriariMedical Faculty, Department of Cellular and Translational Physiology, Institute of Physiology, Molecular and Experimental Cardiology, Institut Für Forschung und Lehre (IFL), Ruhr University Bochum, 44801, Bochum, Germany.
Benjamin SaskoMedical Department II, Marien Hospital Herne, Ruhr University Bochum, Bochum, Germany.
Jan WintrichMedical Department II, Marien Hospital Herne, Ruhr University Bochum, Bochum, Germany.
Peter HaldenwangDepartment of Cardiothoracic Surgery, University Hospital Bergmannsheil Bochum, Bochum, Germany.
Wolfgang E SchmidtDepartment of Medicine I, St. Josef Hospital, UK RUB, Ruhr University Bochum, 44801, Bochum, Germany.
Wiebke FenskeDepartment of Internal Medicine I- General Internal Medicine, Endocrinology and Diabetology, Gastroenterology and Hepatology, BG University Hospital Bergmannsheil, Bochum, Germany.
Muchtiar KhanDepartment of Cardiology, OLVG, 1091 AC, Amsterdam, The Netherlands.
Kornelia JaquetMedical Faculty, Department of Cellular and Translational Physiology, Institute of Physiology, Molecular and Experimental Cardiology, Institut Für Forschung und Lehre (IFL), Ruhr University Bochum, 44801, Bochum, Germany.
Andreas MüggeMedical Faculty, Department of Cellular and Translational Physiology, Institute of Physiology, Molecular and Experimental Cardiology, Institut Für Forschung und Lehre (IFL), Ruhr University Bochum, 44801, Bochum, Germany.
Domokos MáthéDepartment of Biophysics and Radiation Biology, Semmelweis University, Tűzoltó utca 37-47, 1094, Budapest, 1085, Hungary.
Viktória E TóthHCEMM-SU Cardiometabolic Immunology Research Group, Department of Pharmacology and pharmacotherapy,, Semmelweis University, Budapest, 1089, Hungary.
Zoltán V VargaHCEMM-SU Cardiometabolic Immunology Research Group, Department of Pharmacology and pharmacotherapy,, Semmelweis University, Budapest, 1089, Hungary.
Péter FerdinandyHCEMM-SU Cardiometabolic Immunology Research Group, Department of Pharmacology and pharmacotherapy,, Semmelweis University, Budapest, 1089, Hungary.
Ibrahim El-BattrawyMedical Faculty, Department of Cellular and Translational Physiology, Institute of Physiology, Molecular and Experimental Cardiology, Institut Für Forschung und Lehre (IFL), Ruhr University Bochum, 44801, Bochum, Germany.
Loek van Heerebeek *Department of Cardiology, OLVG, 1091 AC, Amsterdam, The Netherlands.
Nazha Hamdani *Medical Faculty, Department of Cellular and Translational Physiology, Institute of Physiology, Molecular and Experimental Cardiology, Institut Für Forschung und Lehre (IFL), Ruhr University Bochum, 44801, Bochum, Germany. nazha.hamdani@rub.de.

Funding

EUROPEAN UNION 739593
6 · The paper itself

Abstract

backgroundType 2 diabetes mellitus (T2DM) represents a significant risk factor for cardiovascular disease, particularly heart failure with preserved ejection fraction (HFpEF). HFpEF predominantly affects elderly individuals and women, and is characterized by dysfunctions associated with metabolic, inflammatory, and oxidative stress pathways. Despite HFpEF being the most prevalent heart failure phenotype in patients with T2DM, its underlying pathophysiological mechanisms remain inadequately elucidated.

objectiveThis study aims to investigate the effects of diabetes mellitus on myocardial inflammation, oxidative stress, and protein quality control (PQC) mechanisms in HFpEF, with particular emphasis on insulin signaling, autophagy, and chaperone-mediated stress responses.

methodsWe conducted an analysis of left ventricular myocardial tissue from HFpEF patients, both with and without diabetes, employing a range of molecular, biochemical, and functional assays. The passive stiffness of cardiomyocytes (Fpassive) was assessed in demembranated cardiomyocytes before and after implementing treatments aimed at reducing inflammation (IL-6 inhibition), oxidative stress (Mito-TEMPO), and enhancing PQC (HSP27, HSP70). Inflammatory markers (NF-κB, IL-6, TNF-α, ICAM-1, VCAM-1, NLRP3), oxidative stress markers (ROS, GSH/GSSG ratio, lipid peroxidation), and components of signaling pathways (PI3K/AKT/mTOR, AMPK, MAPK, and PKG) were evaluated using western blotting, immunofluorescence, and ELISA techniques.

resultsHearts from diabetic HFpEF patients exhibited significantly heightened inflammation, characterized by the upregulation of NF-κB, IL-6, and the NLRP3 inflammasome. This increase in inflammation was accompanied by elevated oxidative stress, diminished nitric oxide (NO) bioavailability, and impaired activation of the NO-sGC-cGMP-PKG signaling pathway. Notably, dysregulation of insulin signaling was observed, as indicated by decreased AKT phosphorylation and impaired autophagy regulation mediated by AMPK and mTOR. Additionally, PQC dysfunction was evidenced by reduced expression levels of HSP27 and HSP70, which correlated with increased cardiomyocyte passive stiffness. Targeted therapeutic interventions effectively reduced Fpassive, with IL-6 inhibition, Mito-TEMPO, and HSP administration leading to improvements in cardiomyocyte mechanical properties.

conclusionThe findings of this study elucidate a mechanistic relationship among diabetes, inflammation, oxidative stress, and PQC impairment in the context of HFpEF. Therapeutic strategies that target these dysregulated pathways, including IL-6 inhibition, mitochondrial antioxidants, and chaperone-mediated protection, may enhance myocardial function in HFpEF patients with T2DM. Addressing these molecular dysfunctions could facilitate the development of novel interventions specifically tailored to the diabetic HFpEF population.

Indexed as

Diabetes Mellitus, Type 2Diabetic CardiomyopathiesHeart FailureInflammationInflammation MediatorsMyocytes, CardiacOxidative StressProteostasisStroke VolumeVentricular Function, LeftAgedAged, 80 and overAnti-Inflammatory AgentsAntioxidantsAutophagyCase-Control StudiesAnti-Inflammatory AgentsAntioxidantsHeat-Shock ProteinsHSP27 Heat-Shock ProteinsHSP70 Heat-Shock ProteinsHSPB1 protein, humanInflammation MediatorsInsulinMolecular ChaperonesAutophagyCardiomyocyte stiffnessHeart failure with preserved ejection fractionHeat shock proteinsInflammationInsulin resistanceOxidative stressProtein quality controlType 2 diabetes

Identifiers

PMID40369521
PMCPMC12080046

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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the OpenQuestion graph.