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1.
BMC Geriatr ; 24(1): 414, 2024 May 10.
Article in English | MEDLINE | ID: mdl-38730349

ABSTRACT

BACKGROUND: Limited information is available on the effect of ideal cardiovascular health (CVH) and abnormal glucose metabolism in elderly people. We aimed to analyze the prevalence of CVH behaviors, abnormal glucose metabolism, and their correlation in 65 and older people. METHODS: In this study, randomized cluster sampling, multivariate logistic regression, and mediating effects analysis were used. Recruiting was carried out between January 2020 and December 2020, and 1984 participants aged 65 years or older completed the study. RESULTS: The prevalence of abnormal glucose metabolism in this group was 26.7% (n = 529), among which the prevalence of impaired fasting glucose (IFG) was 9.5% (male vs. female: 8.7% vs 10.1%, P = 0.338), and the prevalence of type 2 diabetes mellitus (T2DM) was 19.0% (male vs. female: 17.8 vs. 19.8%, P = 0.256). The ideal CVH rate (number of ideal CVH metrics ≥ 5) was only 21.0%. The risk of IFG and T2DM decreased by 23% and 20% with each increase in one ideal CVH metrics, with OR (95%CI) of 0.77(0.65-0.92) and 0.80(0.71-0.90), respectively (P -trend < 0.001). TyG fully mediated the ideal CVH and the incidence of T2DM, and its mediating effect OR (95%CI) was 0.88(0.84-0.91). CONCLUSIONS: Each increase in an ideal CVH measure may effectively reduce the risk of abnormal glucose metabolism by more than 20%.


Subject(s)
Blood Glucose , Cardiovascular Diseases , Diabetes Mellitus, Type 2 , Humans , Female , Male , Aged , Diabetes Mellitus, Type 2/epidemiology , Diabetes Mellitus, Type 2/metabolism , Cardiovascular Diseases/epidemiology , Cardiovascular Diseases/metabolism , Blood Glucose/metabolism , Prevalence , China/epidemiology , Aged, 80 and over , Risk Factors
2.
Int J Mol Sci ; 25(9)2024 Apr 23.
Article in English | MEDLINE | ID: mdl-38731818

ABSTRACT

Early life exposure lays the groundwork for the risk of developing cardiovascular-kidney-metabolic (CKM) syndrome in adulthood. Various environmental chemicals to which pregnant mothers are commonly exposed can disrupt fetal programming, leading to a wide range of CKM phenotypes. The aryl hydrocarbon receptor (AHR) has a key role as a ligand-activated transcription factor in sensing these environmental chemicals. Activating AHR through exposure to environmental chemicals has been documented for its adverse impacts on cardiovascular diseases, hypertension, diabetes, obesity, kidney disease, and non-alcoholic fatty liver disease, as evidenced by both epidemiological and animal studies. In this review, we compile current human evidence and findings from animal models that support the connection between antenatal chemical exposures and CKM programming, focusing particularly on AHR signaling. Additionally, we explore potential AHR modulators aimed at preventing CKM syndrome. As the pioneering review to present evidence advocating for the avoidance of toxic chemical exposure during pregnancy and deepening our understanding of AHR signaling, this has the potential to mitigate the global burden of CKM syndrome in the future.


Subject(s)
Cardiovascular Diseases , Prenatal Exposure Delayed Effects , Receptors, Aryl Hydrocarbon , Receptors, Aryl Hydrocarbon/metabolism , Receptors, Aryl Hydrocarbon/genetics , Humans , Pregnancy , Animals , Female , Prenatal Exposure Delayed Effects/metabolism , Cardiovascular Diseases/metabolism , Cardiovascular Diseases/etiology , Cardiovascular Diseases/chemically induced , Kidney Diseases/chemically induced , Kidney Diseases/metabolism , Kidney Diseases/etiology , Maternal Exposure/adverse effects , Signal Transduction/drug effects , Kidney/metabolism , Kidney/drug effects , Kidney/pathology , Fetal Development/drug effects , Environmental Pollutants/toxicity , Environmental Pollutants/adverse effects , Metabolic Reprogramming
3.
Signal Transduct Target Ther ; 9(1): 124, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38744846

ABSTRACT

Mitochondria, with their intricate networks of functions and information processing, are pivotal in both health regulation and disease progression. Particularly, mitochondrial dysfunctions are identified in many common pathologies, including cardiovascular diseases, neurodegeneration, metabolic syndrome, and cancer. However, the multifaceted nature and elusive phenotypic threshold of mitochondrial dysfunction complicate our understanding of their contributions to diseases. Nonetheless, these complexities do not prevent mitochondria from being among the most important therapeutic targets. In recent years, strategies targeting mitochondrial dysfunction have continuously emerged and transitioned to clinical trials. Advanced intervention such as using healthy mitochondria to replenish or replace damaged mitochondria, has shown promise in preclinical trials of various diseases. Mitochondrial components, including mtDNA, mitochondria-located microRNA, and associated proteins can be potential therapeutic agents to augment mitochondrial function in immunometabolic diseases and tissue injuries. Here, we review current knowledge of mitochondrial pathophysiology in concrete examples of common diseases. We also summarize current strategies to treat mitochondrial dysfunction from the perspective of dietary supplements and targeted therapies, as well as the clinical translational situation of related pharmacology agents. Finally, this review discusses the innovations and potential applications of mitochondrial transplantation as an advanced and promising treatment.


Subject(s)
Mitochondria , Humans , Mitochondria/genetics , Mitochondria/metabolism , Mitochondria/pathology , Mitochondrial Diseases/genetics , Mitochondrial Diseases/therapy , Mitochondrial Diseases/metabolism , DNA, Mitochondrial/genetics , MicroRNAs/genetics , Neoplasms/genetics , Neoplasms/therapy , Neoplasms/metabolism , Neoplasms/pathology , Neurodegenerative Diseases/genetics , Neurodegenerative Diseases/therapy , Neurodegenerative Diseases/pathology , Neurodegenerative Diseases/metabolism , Cardiovascular Diseases/genetics , Cardiovascular Diseases/therapy , Cardiovascular Diseases/metabolism , Cardiovascular Diseases/pathology , Animals
4.
FASEB J ; 38(9): e23635, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38690685

ABSTRACT

Cardiovascular disease (CVD) is the leading cause of death worldwide. MicroRNAs (MiRNAs) have attracted considerable attention for their roles in several cardiovascular disease states, including both the physiological and pathological processes. In this review, we will briefly describe microRNA-181 (miR-181) transcription and regulation and summarize recent findings on the roles of miR-181 family members as biomarkers or therapeutic targets in different cardiovascular-related conditions, including atherosclerosis, myocardial infarction, hypertension, and heart failure. Lessons learned from these studies may provide new theoretical foundations for CVD.


Subject(s)
Biomarkers , Cardiovascular Diseases , MicroRNAs , Humans , MicroRNAs/genetics , MicroRNAs/metabolism , Cardiovascular Diseases/genetics , Cardiovascular Diseases/therapy , Cardiovascular Diseases/metabolism , Biomarkers/metabolism , Animals
5.
Nature ; 629(8010): 174-183, 2024 May.
Article in English | MEDLINE | ID: mdl-38693412

ABSTRACT

Regular exercise promotes whole-body health and prevents disease, but the underlying molecular mechanisms are incompletely understood1-3. Here, the Molecular Transducers of Physical Activity Consortium4 profiled the temporal transcriptome, proteome, metabolome, lipidome, phosphoproteome, acetylproteome, ubiquitylproteome, epigenome and immunome in whole blood, plasma and 18 solid tissues in male and female Rattus norvegicus over eight weeks of endurance exercise training. The resulting data compendium encompasses 9,466 assays across 19 tissues, 25 molecular platforms and 4 training time points. Thousands of shared and tissue-specific molecular alterations were identified, with sex differences found in multiple tissues. Temporal multi-omic and multi-tissue analyses revealed expansive biological insights into the adaptive responses to endurance training, including widespread regulation of immune, metabolic, stress response and mitochondrial pathways. Many changes were relevant to human health, including non-alcoholic fatty liver disease, inflammatory bowel disease, cardiovascular health and tissue injury and recovery. The data and analyses presented in this study will serve as valuable resources for understanding and exploring the multi-tissue molecular effects of endurance training and are provided in a public repository ( https://motrpac-data.org/ ).


Subject(s)
Endurance Training , Multiomics , Physical Conditioning, Animal , Physical Endurance , Animals , Female , Humans , Male , Rats , Acetylation , Blood/immunology , Blood/metabolism , Cardiovascular Diseases/genetics , Cardiovascular Diseases/immunology , Cardiovascular Diseases/metabolism , Databases, Factual , Epigenome , Inflammatory Bowel Diseases/genetics , Inflammatory Bowel Diseases/immunology , Inflammatory Bowel Diseases/metabolism , Internet , Lipidomics , Metabolome , Mitochondria/metabolism , Non-alcoholic Fatty Liver Disease/genetics , Non-alcoholic Fatty Liver Disease/immunology , Non-alcoholic Fatty Liver Disease/metabolism , Organ Specificity/genetics , Organ Specificity/immunology , Organ Specificity/physiology , Phosphorylation , Physical Conditioning, Animal/physiology , Physical Endurance/genetics , Physical Endurance/physiology , Proteome/metabolism , Proteomics , Time Factors , Transcriptome/genetics , Ubiquitination , Wounds and Injuries/genetics , Wounds and Injuries/immunology , Wounds and Injuries/metabolism
6.
Int J Mol Sci ; 25(9)2024 May 04.
Article in English | MEDLINE | ID: mdl-38732245

ABSTRACT

Oxidative stress and inflammation are recognized as pivotal contributors and common features of several chronic degenerative diseases, including cancer, metabolic syndrome, type 2 diabetes, cardiovascular diseases and neurodegenerative disorders, affecting a high percentage of the population [...].


Subject(s)
Inflammation , Neurodegenerative Diseases , Oxidative Stress , Humans , Inflammation/metabolism , Neurodegenerative Diseases/metabolism , Chronic Disease , Diabetes Mellitus, Type 2/metabolism , Cardiovascular Diseases/metabolism , Animals , Metabolic Syndrome/metabolism
7.
Curr Atheroscler Rep ; 26(5): 163-175, 2024 May.
Article in English | MEDLINE | ID: mdl-38698167

ABSTRACT

PURPOSE OF REVIEW: Fatty acid-binding protein 4 (FABP4) plays a role in lipid metabolism and cardiovascular health. In this paper, we cover FABP4 biology, its implications in atherosclerosis from observational studies, genetic factors affecting FABP4 serum levels, and ongoing drug development to target FABP4 and offer insights into future FABP4 research. RECENT FINDINGS: FABP4 impacts cells through JAK2/STAT2 and c-kit pathways, increasing inflammatory and adhesion-related proteins. In addition, FABP4 induces angiogenesis and vascular smooth muscle cell proliferation and migration. FABP4 is established as a reliable predictive biomarker for cardiovascular disease in specific at-risk groups. Genetic studies robustly link PPARG and FABP4 variants to FABP4 serum levels. Considering the potential effects on atherosclerotic lesion development, drug discovery programs have been initiated in search for potent inhibitors of FABP4. Elevated FABP4 levels indicate an increased cardiovascular risk and is causally related to acceleration of atherosclerotic disease, However, clinical trials for FABP4 inhibition are lacking, possibly due to concerns about available compounds' side effects. Further research on FABP4 genetics and its putative causal role in cardiovascular disease is needed, particularly in aging subgroups.


Subject(s)
Aging , Cardiovascular Diseases , Fatty Acid-Binding Proteins , Humans , Fatty Acid-Binding Proteins/genetics , Fatty Acid-Binding Proteins/metabolism , Cardiovascular Diseases/genetics , Cardiovascular Diseases/metabolism , Cardiovascular Diseases/epidemiology , Aging/genetics , Aging/physiology , Atherosclerosis/genetics , Atherosclerosis/metabolism , Animals , Biomarkers/blood , Biomarkers/metabolism
8.
Int J Mol Sci ; 25(9)2024 Apr 30.
Article in English | MEDLINE | ID: mdl-38732154

ABSTRACT

The diagnosis of cardiovascular disease (CVD) is still limited. Therefore, this study demonstrates the presence of human ether-a-go-go-related gene 1 (hERG1) and heat shock protein 47 (Hsp47) on the surface of small extracellular vesicles (sEVs) in human peripheral blood and their association with CVD. In this research, 20 individuals with heart failure and 26 participants subjected to cardiac stress tests were enrolled. The associations between hERG1 and/or Hsp47 in sEVs and CVD were established using Western blot, flow cytometry, electron microscopy, ELISA, and nanoparticle tracking analysis. The results show that hERG1 and Hsp47 were present in sEV membranes, extravesicularly exposing the sequences 430AFLLKETEEGPPATE445 for hERG1 and 169ALQSINEWAAQTT- DGKLPEVTKDVERTD196 for Hsp47. In addition, upon exposure to hypoxia, rat primary cardiomyocytes released sEVs into the media, and human cardiomyocytes in culture also released sEVs containing hERG1 (EV-hERG1) and/or Hsp47 (EV-Hsp47). Moreover, the levels of sEVs increased in the blood when cardiac ischemia was induced during the stress test, as well as the concentrations of EV-hERG1 and EV-Hsp47. Additionally, the plasma levels of EV-hERG1 and EV-Hsp47 decreased in patients with decompensated heart failure (DHF). Our data provide the first evidence that hERG1 and Hsp47 are present in the membranes of sEVs derived from the human cardiomyocyte cell line, and also in those isolated from human peripheral blood. Total sEVs, EV-hERG1, and EV-Hsp47 may be explored as biomarkers for heart diseases such as heart failure and cardiac ischemia.


Subject(s)
Biomarkers , Cardiovascular Diseases , Extracellular Vesicles , HSP47 Heat-Shock Proteins , Myocytes, Cardiac , Humans , Extracellular Vesicles/metabolism , Biomarkers/blood , Male , Cardiovascular Diseases/metabolism , Female , Myocytes, Cardiac/metabolism , Myocytes, Cardiac/pathology , Middle Aged , Animals , HSP47 Heat-Shock Proteins/metabolism , Rats , ERG1 Potassium Channel/metabolism , Aged , Adult , Ether-A-Go-Go Potassium Channels/metabolism , Heart Failure/metabolism , Heart Failure/pathology , Heart Failure/blood
9.
Free Radic Biol Med ; 219: 64-75, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38604314

ABSTRACT

Cardiovascular diseases (CVDs) are the leading cause of death globally, resulting in a major health burden. Thus, an urgent need exists for exploring effective therapeutic targets to block progression of CVDs and improve patient prognoses. Immune and inflammatory responses are involved in the development of atherosclerosis, ischemic myocardial damage responses and repair, calcification, and stenosis of the aortic valve. These responses can involve both large and small blood vessels throughout the body, leading to increased blood pressure and end-organ damage. While exploring potential avenues for therapeutic intervention in CVDs, researchers have begun to focus on immune metabolism, where metabolic changes that occur in immune cells in response to exogenous or endogenous stimuli can influence immune cell effector responses and local immune signaling. Itaconate, an intermediate metabolite of the tricarboxylic acid (TCA) cycle, is related to pathophysiological processes, including cellular metabolism, oxidative stress, and inflammatory immune responses. The expression of immune response gene 1 (IRG1) is upregulated in activated macrophages, and this gene encodes an enzyme that catalyzes the production of itaconate from the TCA cycle intermediate, cis-aconitate. Itaconate and its derivatives have exerted cardioprotective effects through immune modulation in various disease models, such as ischemic heart disease, valvular heart disease, vascular disease, heart transplantation, and chemotherapy drug-induced cardiotoxicity, implying their therapeutic potential in CVDs. In this review, we delve into the associated signaling pathways through which itaconate exerts immunomodulatory effects, summarize its specific roles in CVDs, and explore emerging immunological therapeutic strategies for managing CVDs.


Subject(s)
Cardiovascular Diseases , Succinates , Humans , Succinates/metabolism , Animals , Cardiovascular Diseases/metabolism , Cardiovascular Diseases/immunology , Cardiovascular Diseases/drug therapy , Cardiovascular Diseases/pathology , Citric Acid Cycle , Oxidative Stress/drug effects , Signal Transduction/drug effects , Carboxy-Lyases
10.
Cell Signal ; 119: 111156, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38574938

ABSTRACT

In the seemingly well-researched field of vascular research, there are still many underestimated factors and molecular mechanisms. In recent years, SUMOylation has become increasingly important. SUMOylation is a post-translational modification in which small ubiquitin-related modifiers (SUMO) are covalently attached to target proteins. Sites where these SUMO modification processes take place in the cell nucleus are PML nuclear bodies (PML-NBs) - multiprotein complexes with their essential main component and organizer, the PML protein. PML and SUMO, either alone or as partners, influence a variety of cellular processes, including regulation of transcription, senescence, DNA damage response and defence against microorganisms, and are involved in innate immunity and inflammatory responses. They also play an important role in maintaining homeostasis in the vascular system and in pathological processes leading to the development and progression of cardiovascular diseases. This review summarizes information about the function of SUMO(ylation) and PML(-NBs) in the human vasculature from angiogenesis to disease and highlights their clinical potential as drug targets.


Subject(s)
Nuclear Proteins , Promyelocytic Leukemia Protein , Sumoylation , Transcription Factors , Humans , Promyelocytic Leukemia Protein/metabolism , Nuclear Proteins/metabolism , Transcription Factors/metabolism , Animals , Tumor Suppressor Proteins/metabolism , Small Ubiquitin-Related Modifier Proteins/metabolism , Cardiovascular Diseases/metabolism , Cardiovascular Diseases/pathology
11.
Cell Signal ; 119: 111169, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38599440

ABSTRACT

Cardiac resident macrophages (CRMs) are essential in maintaining the balance of the immune homeostasis in the heart. One of the main factors in the progression of cardiovascular diseases, such as myocarditis, myocardial infarction(MI), and heart failure(HF), is the imbalance in the regulatory mechanisms of CRMs. Recent studies have reported novel heterogeneity and spatiotemporal complexity of CRMs, and their role in maintaining cardiac immune homeostasis and treating cardiovascular diseases. In this review, we focus on the functions of CRMs, including immune surveillance, immune phagocytosis, and immune metabolism, and explore the impact of CRM's homeostasis imbalance on cardiac injury and cardiac repair. We also discuss the therapeutic approaches linked to CRMs. The immunomodulatory strategies targeting CRMs may be a therapeutic approach for the treatment of cardiovascular disease.


Subject(s)
Homeostasis , Macrophages , Humans , Macrophages/immunology , Macrophages/metabolism , Animals , Myocardium/immunology , Myocardium/metabolism , Myocardium/pathology , Phagocytosis , Cardiovascular Diseases/immunology , Cardiovascular Diseases/pathology , Cardiovascular Diseases/metabolism
13.
PeerJ ; 12: e17185, 2024.
Article in English | MEDLINE | ID: mdl-38584937

ABSTRACT

Background: Cardiovascular diseases are the leading cause of death worldwide, significantly impacting public health. Atherosclerotic cardiovascular diseases account for the majority of these deaths, with atherosclerosis marking the initial and most critical phase of their pathophysiological progression. There is a complex relationship between atherosclerosis, the gut microbiome's composition and function, and the potential mediating role of exercise. The adaptability of the gut microbiome and the feasibility of exercise interventions present novel opportunities for therapeutic and preventative approaches. Methodology: We conducted a comprehensive literature review using professional databases such as PubMed and Web of Science. This review focuses on the application of meta-omics techniques, particularly metagenomics and metabolomics, in studying the effects of exercise interventions on the gut microbiome and atherosclerosis. Results: Meta-omics technologies offer unparalleled capabilities to explore the intricate connections between exercise, the microbiome, the metabolome, and cardiometabolic health. This review highlights the advancements in metagenomics and metabolomics, their applications in research, and examines how exercise influences the gut microbiome. We delve into the mechanisms connecting these elements from a metabolic perspective. Metagenomics provides insight into changes in microbial strains post-exercise, while metabolomics sheds light on the shifts in metabolites. Together, these approaches offer a comprehensive understanding of how exercise impacts atherosclerosis through specific mechanisms. Conclusions: Exercise significantly influences atherosclerosis, with the gut microbiome serving as a critical intermediary. Meta-omics technology holds substantial promise for investigating the gut microbiome; however, its methodologies require further refinement. Additionally, there is a pressing need for more extensive cohort studies to enhance our comprehension of the connection among these element.


Subject(s)
Atherosclerosis , Cardiovascular Diseases , Gastrointestinal Microbiome , Humans , Gastrointestinal Microbiome/genetics , Cardiovascular Diseases/metabolism , Metabolomics/methods , Metabolome
14.
Cell ; 187(8): 1834-1852.e19, 2024 Apr 11.
Article in English | MEDLINE | ID: mdl-38569543

ABSTRACT

Accumulating evidence suggests that cardiovascular disease (CVD) is associated with an altered gut microbiome. Our understanding of the underlying mechanisms has been hindered by lack of matched multi-omic data with diagnostic biomarkers. To comprehensively profile gut microbiome contributions to CVD, we generated stool metagenomics and metabolomics from 1,429 Framingham Heart Study participants. We identified blood lipids and cardiovascular health measurements associated with microbiome and metabolome composition. Integrated analysis revealed microbial pathways implicated in CVD, including flavonoid, γ-butyrobetaine, and cholesterol metabolism. Species from the Oscillibacter genus were associated with decreased fecal and plasma cholesterol levels. Using functional prediction and in vitro characterization of multiple representative human gut Oscillibacter isolates, we uncovered conserved cholesterol-metabolizing capabilities, including glycosylation and dehydrogenation. These findings suggest that cholesterol metabolism is a broad property of phylogenetically diverse Oscillibacter spp., with potential benefits for lipid homeostasis and cardiovascular health.


Subject(s)
Bacteria , Cardiovascular Diseases , Cholesterol , Gastrointestinal Microbiome , Humans , Bacteria/metabolism , Cardiovascular Diseases/metabolism , Cholesterol/analysis , Cholesterol/blood , Cholesterol/metabolism , Feces/chemistry , Longitudinal Studies , Metabolome , Metabolomics , RNA, Ribosomal, 16S/metabolism
15.
Arterioscler Thromb Vasc Biol ; 44(5): 1021-1030, 2024 May.
Article in English | MEDLINE | ID: mdl-38572647

ABSTRACT

AGT (angiotensinogen) is the unique precursor for the generation of all the peptides of the renin-angiotensin system, but it has received relatively scant attention compared to many other renin-angiotensin system components. Focus on AGT has increased recently, particularly with the evolution of drugs to target the synthesis of the protein. AGT is a noninhibitory serpin that has several conserved domains in addition to the angiotensin II sequences at the N terminus. Increased study is needed on the structure-function relationship to resolve many unknowns regarding AGT metabolism. Constitutive whole-body genetic deletion of Agt in mice leads to multiple developmental defects creating a challenge to use these mice for mechanistic studies. This has been overcome by creating Agt-floxed mice to enable the development of cell-specific deficiencies that have provided considerable insight into a range of cardiovascular and associated diseases. This has been augmented by the recent development of pharmacological approaches targeting hepatocytes in humans to promote protracted inhibition of AGT synthesis. Genetic deletion or pharmacological inhibition of Agt has been demonstrated to be beneficial in a spectrum of diseases experimentally, including hypertension, atherosclerosis, aortic and superior mesenteric artery aneurysms, myocardial dysfunction, and hepatic steatosis. This review summarizes the findings of recent studies utilizing AGT manipulation as a therapeutic approach.


Subject(s)
Angiotensinogen , Cardiovascular Diseases , Metabolic Diseases , Animals , Humans , Cardiovascular Diseases/drug therapy , Cardiovascular Diseases/metabolism , Cardiovascular Diseases/genetics , Angiotensinogen/metabolism , Angiotensinogen/genetics , Metabolic Diseases/drug therapy , Metabolic Diseases/metabolism , Metabolic Diseases/genetics , Renin-Angiotensin System/drug effects , Molecular Targeted Therapy
16.
Pathol Res Pract ; 257: 155274, 2024 May.
Article in English | MEDLINE | ID: mdl-38626659

ABSTRACT

MicroRNAs (miRs, miRNAs) are known to have a part in various human illnesses, such as those related to the heart. One particular miRNA, miR-155, has been extensively studied and has been found to be involved in hematopoietic lineage differentiation, immunity, viral infections, inflammation, as well as vascular remodeling. These processes have all been connected to cardiovascular diseases, including heart failure, diabetic heart disease, coronary artery disease, and abdominal aortic aneurysm. The impacts of miR-155 depend on the type of cell it is acting on and the specific target genes involved, resulting in different mechanisms of disease. Although, the exact part of miR-155 in cardiovascular illnesses is yet not fully comprehended, as some studies have shown it to promote the development of atherosclerosis while others have shown it to prevent it. As a result, to comprehend the underlying processes of miR-155 in cardiovascular disorders, further thorough study is required. It has been discovered that exosomes that could be absorbed by adjacent or distant cells, control post-transcriptional regulation of gene expression by focusing on mRNA. Exosomal miRNAs have been found to have a range of functions, including participating in inflammatory reactions, cell movement, growth, death, autophagy, as well as epithelial-mesenchymal transition. An increasing amount of research indicates that exosomal miRNAs are important for cardiovascular health and have a major role in the development of a number of cardiovascular disorders, including pulmonary hypertension, atherosclerosis, acute coronary syndrome, heart failure, and myocardial ischemia-reperfusion injury. Herein the role of miR-155 and its exosomal form in heart diseases are summarized.


Subject(s)
Cardiovascular Diseases , Exosomes , MicroRNAs , Humans , MicroRNAs/genetics , MicroRNAs/metabolism , Exosomes/metabolism , Exosomes/genetics , Cardiovascular Diseases/genetics , Cardiovascular Diseases/metabolism , Animals
17.
Circ Res ; 134(9): 1113-1135, 2024 Apr 26.
Article in English | MEDLINE | ID: mdl-38662856

ABSTRACT

Epidemiological studies have found that transportation noise increases the risk for cardiovascular morbidity and mortality, with solid evidence for ischemic heart disease, heart failure, and stroke. According to the World Health Organization, at least 1.6 million healthy life years are lost annually from traffic-related noise in Western Europe. Traffic noise at night causes fragmentation and shortening of sleep, elevation of stress hormone levels, and increased oxidative stress in the vasculature and the brain. These factors can promote vascular (endothelial) dysfunction, inflammation, and arterial hypertension, thus elevating cardiovascular risk. The present review focusses on the indirect, nonauditory cardiovascular health effects of noise. We provide an updated overview of epidemiological research on the effects of transportation noise on cardiovascular risk factors and disease, and mechanistic insights based on the latest clinical and experimental studies and propose new risk markers to address noise-induced cardiovascular effects in the general population. We will discuss the potential effects of noise on vascular dysfunction, oxidative stress, and inflammation in humans and animals. We will elaborately explain the underlying pathomechanisms by alterations of gene networks, epigenetic pathways, circadian rhythm, signal transduction along the neuronal-cardiovascular axis, and metabolism. We will describe current and future noise mitigation strategies. Finally, we will conduct an overall evaluation of the status of the current evidence of noise as a significant cardiovascular risk factor.


Subject(s)
Cardiovascular Diseases , Noise, Transportation , Oxidative Stress , Humans , Noise, Transportation/adverse effects , Cardiovascular Diseases/metabolism , Cardiovascular Diseases/etiology , Cardiovascular Diseases/epidemiology , Animals , Heart Disease Risk Factors , Environmental Exposure/adverse effects , Risk Factors
18.
Pharmacol Res ; 203: 107164, 2024 May.
Article in English | MEDLINE | ID: mdl-38569981

ABSTRACT

The impact of mitochondrial dysfunction on the pathogenesis of cardiovascular disease is increasing. However, the precise underlying mechanism remains unclear. Mitochondria produce cellular energy through oxidative phosphorylation while regulating calcium homeostasis, cellular respiration, and the production of biosynthetic chemicals. Nevertheless, problems related to cardiac energy metabolism, defective mitochondrial proteins, mitophagy, and structural changes in mitochondrial membranes can cause cardiovascular diseases via mitochondrial dysfunction. Mitofilin is a critical inner mitochondrial membrane protein that maintains cristae structure and facilitates protein transport while linking the inner mitochondrial membrane, outer mitochondrial membrane, and mitochondrial DNA transcription. Researchers believe that mitofilin may be a therapeutic target for treating cardiovascular diseases, particularly cardiac mitochondrial dysfunctions. In this review, we highlight current findings regarding the role of mitofilin in the pathogenesis of cardiovascular diseases and potential therapeutic compounds targeting mitofilin.


Subject(s)
Cardiovascular Diseases , Mitochondrial Proteins , Muscle Proteins , Humans , Animals , Cardiovascular Diseases/metabolism , Cardiovascular Diseases/drug therapy , Muscle Proteins/metabolism , Muscle Proteins/genetics , Mitochondrial Proteins/metabolism , Mitochondria, Heart/metabolism , Mitochondria, Heart/drug effects
19.
Exp Gerontol ; 190: 112420, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38588751

ABSTRACT

Sex differences are consistently identified in determining the prevalence, manifestation, and response to therapies in several systemic disorders, including those affecting the cardiovascular (CV), skeletal muscle, and nervous system. Interestingly, such differences are often more noticeable as we age. For example, premenopausal women experience a lower risk of CV disease than men of the same age. While at an advanced age, with menopause, the risk of cardiovascular diseases and adverse outcomes increases exponentially in women, exceeding that of men. However, this effect appears to be reversed in diseases such as pulmonary hypertension, where women are up to seven times more likely than men to develop an idiopathic form of the disease with symptoms developing ten years earlier than their male counterparts. Explaining this is a complex question. However, several factors and mechanisms have been identified in recent decades, including a role for sex hormones, particularly estrogens and their related receptors. Furthermore, an emerging role in these sex differences has also been suggested for ß-adrenergic receptors (ßARs), which are essential regulators of mammalian physiology. It has in fact been shown that ßARs interact with estrogen receptors (ER), providing further demonstration of their involvement in determining sexual differences. Based on these premises, this review article focused on the ß3AR subtype, which shows important activities in adipose tissue but with new and interesting roles in regulating the function of cardiomyocytes and vascular cells. In detail, we examined how ß3AR and ER signaling are intertwined and whether there would be sex- and age-dependent specific effects of these receptor systems.


Subject(s)
Aging , Cardiovascular Diseases , Estrogens , Receptors, Adrenergic, beta-3 , Receptors, Estrogen , Humans , Cardiovascular Diseases/metabolism , Cardiovascular Diseases/physiopathology , Female , Male , Receptors, Adrenergic, beta-3/metabolism , Estrogens/metabolism , Receptors, Estrogen/metabolism , Aging/physiology , Animals , Sex Factors , Cardiovascular System/metabolism , Cardiovascular System/physiopathology , Sex Characteristics , Signal Transduction
20.
Front Biosci (Landmark Ed) ; 29(4): 143, 2024 Apr 09.
Article in English | MEDLINE | ID: mdl-38682186

ABSTRACT

Coenzyme A (CoA) functions as a crucial carrier of acyl groups within cells, playing a fundamental role in regulating acyl transfer reactions and participating in cellular metabolic processes. As the principal substrate and cofactor engaged in diverse metabolic reactions, CoA and its derivatives exert central influence over various physiological processes, primarily modulating lipid and ketone metabolism, as well as protein modification. This paper presents a comprehensive review of the molecular mechanisms by which CoA influences the onset and progression of cancer, cardiovascular disease (CVD), neurodegenerative disorders, and other illnesses. The main focal points include the following. (1) In cancer, enzymes such as acetyl-CoA synthetase 2, ATP citrate lyase, and acetyl-CoA carboxylase regulate lipid synthesis and energy metabolism by modulating acetyl-CoA levels. (2) In CVD, the effects of enzymes such as stearoyl-CoA desaturase-1, 3-hydroxy-3-methylglutaryl-CoA (HMGC) synthase 2, and HMGC reductase on the formation and advancement of these diseases are elucidated by their regulation of CoA metabolism across multiple organs. (3) In neurodegenerative disorders, the significance of CoA in maintaining cholesterol homeostasis in the brain and its implications on the development of such disorders are thoroughly discussed. The metabolic processes involving CoA and its derivatives span all physiological aspects within cells, playing a critical role in the onset and progression of various diseases. Elucidating the role of CoA in these conditions yields important insights that can serve as valuable references and guidance for disease diagnosis, treatment, and drug development.


Subject(s)
Cardiovascular Diseases , Coenzyme A , Neoplasms , Neurodegenerative Diseases , Humans , Neurodegenerative Diseases/metabolism , Neoplasms/metabolism , Coenzyme A/metabolism , Cardiovascular Diseases/metabolism , Animals
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