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Integrating Imaging-Derived Clinical Endotypes with Plasma Proteomics and External Polygenic Risk Scores Enhances Coronary Microvascular Disease Risk Prediction.

Coronary microvascular disease (CMVD) is an underdiagnosed but significant contributor to the burden of ischemic heart disease, characterized by angina and myocardial infarction. The development of risk prediction models such as polygenic risk scores (PRS) for CMVD has been limited by a lack of large-scale genome-wide association studies (GWAS). However, there is significant overlap between CMVD and enrollment criteria for coronary artery disease (CAD) GWAS. In this study, we developed CMVD PRS models by selecting variants identified in a CMVD GWAS and applying weights from an external CAD GWAS, using CMVD-associated loci as proxies for the genetic risk. We integrated plasma proteomics, clinical measures from perfusion PET imaging, and PRS to evaluate their contributions to CMVD risk prediction in comprehensive machine and deep learning models. We then developed a novel unsupervised endotyping framework for CMVD from perfusion PET-derived myocardial blood flow data, revealing distinct patient subgroups beyond traditional case-control definitions. This imaging-based stratification substantially improved classification performance alongside plasma proteomics and PRS, achieving AUROCs between 0.65 and 0.73 per class, significantly outperforming binary classifiers and existing clinical models, highlighting the potential of this stratification approach to enable more precise and personalized diagnosis by capturing the underlying heterogeneity of CMVD. This work represents the first application of imaging-based endotyping and the integration of genetic and proteomic data for CMVD risk prediction, establishing a framework for multimodal modeling in complex diseases.

Cardiovascular Disease

Gut Microbiota, Lipidome, and Metabolites Mediate Immune Dysregulation in Diabetic Microvascular Disease: A Two-sample Mendelian Randomization and Mediation Analysis.

INTRODUCTION: Diabetic microvascular disease (DMiVD) involves dysregulated immune cell function, but the precise pathogenic mechanisms remain unclear. MATERIALS AND METHODS: We conducted a two-sample Mendelian randomization (MR) study using comprehensive GWAS and FinnGen summary statistics, encompassing 731 immune cell phenotypes, 473 gut microbial taxa, 91 inflammatory proteins, 179 lipid types, 1,400 plasma metabolites, 20 micronutrients, and DMiVD cases. The analysis aimed to evaluate causal associations between these variables and DMiVD. We further explored potential mediating roles of gut microbiota, plasma lipidome, and metabolites using mediation analysis, with multiple sensitivity tests confirming the robustness of our findings. RESULTS: We identified 20 immune cell phenotypes, 33 gut microbial taxa, 31 lipid types, and 83 plasma metabolites with significant causal associations with DMiVD. Mediation analysis revealed that the risk effect of CD3+ resting Tregs on diabetic nephropathy was partly mediated by phosphatidylcholine (16:0_18:2) (10.7%). Additionally, the protective effect of CX3CR1 on monocytes against DMiVD was partly mediated by Unclassified Bacilli A (35%), Species CAG-177 sp003538135 (22.6%), and triacylglycerol (52:6) (25.5%). DISCUSSION: These findings advance understanding of DMiVD pathogenesis, highlighting that modulation of key metabolic pathways and immune regulatory nodes may represent promising therapeutic strategies. Further experimental studies are needed to validate these potential causal relationships. CONCLUSION: Using causal inference approaches, this study identifies immune cell-mediated mechanisms underlying DMiVD, involving gut microbiota, plasma lipids, and metabolites. The results suggest potential intervention targets for mechanistic studies and therapeutic development.

Mendelian Randomization Analysis

Changes in red cell oxygen release capacity in diabetes mellitus.

Studies are summarized to indicate that diabetes is associated with a fluctuating disturbance in the oxygen release capacity of the erythrocytes. This disorder, present from the onset of the disease, is a consequence of excess hemoglobin AIc, and absolute or relative hypophosphatemia and acidosis that interfere with formation of the red cell metabolite 2,3-diphosphoglycerate. As a result frequent increases in hemoglobin--oxygen affinity are produced. Available evidence suggests that transient decreases in red cell oxygen delivery lead to dilatation of the venous part of the microcirculation associated with increased transcapillary plasma permeation. Combined with microrheologic alterations (increased red cell aggregation, increased blood viscosity, and decreased red cell deformability) these functional changes may over the years participate in the pathogenesis of the microvascular disease in diabetes.

Capillary Permeability

Evaluation of muscle microvascular perfusion in primary mitochondrial disease by contrast-enhanced ultrasound: Feasibility study.

BACKGROUND: Primary mitochondrial disease (PMD) are genetic disorders characterized by impaired oxidative metabolism and microvascular abnormalities that contribute to the myopathy. OBJECTIVES: This study evaluates the feasibility and utility of contrast-enhanced ultrasound (CEUS) for quantifying skeletal muscle perfusion in patients with PMD. In addition, we assessed exercise-induced changes following cardiopulmonary exercise testing (CPET) to characterize dynamic vascular responses. DESIGN: Prospective pilot feasibility study. METHODS: We enrolled genetically confirmed PMD and healthy control participants with ability to complete the CPET protocol. CEUS of the vastus lateralis muscle was performed at rest and following CPET. Imaging parameters were standardized across all CEUS scans, with a fixed mechanical index of 0.13. Perfusion parameters, including perfusion index (PI), peak enhancement (PE), and area under the curve (AUC) were quantified using delta projection analysis, and compared between PMD and control participants, and within each group, pre- and post-exercise. RESULTS: A total of 5 PMD and 5 control participants were evaluated. At rest, CEUS demonstrated a trend in higher muscle perfusion in PMD as compared to control participants on comparing PI (13.7 ± 2.7 vs. 10.7 ± 3.2; p = 0.42), PE (24.9 ± 11.5 vs. 14.3 ± 6.8; p = 0.22), and AUC (95,253.4 ± 35,072.8 vs. 73,591.2 ± 32,820.6; p = 0.31), which did not reach statistical significance, likely in part due to the small cohort size. Following CPET, PMD participants demonstrated exaggerated percentage increases in PI (+21.1% vs. +16.0%), PE (+11.2% vs. +7.6%), and AUC (+20.2% vs. +12.5%) as compared to control participants. Within group analysis revealed a significant post-exercise increase in AUC among PMD participants (p = 0.01) but did not reach significance in control participants. CONCLUSION: This is the first study to demonstrate the feasibility and utility of conducting CEUS to assess skeletal muscle perfusion in ambulatory PMD patients. The distinct perfusion patterns and exaggerated exercise-induced responses observed in PMD as compared to control participants suggest that reactive hyperemia occurs in PMD at rest and is further exaggerated by exercise. CEUS may serve as a sensitive tool for detecting microvascular alterations in PMD.

cardiopulmonary exercise testing (CPET)

Oral glucose-tolerance tests and the diagnosis of diabetes: results of a prospective study based on the Whitehall survey.

Men who participated in the Whitehall survey and were found to be glucose intolerant have been studied 6--8 years later, together with a control group of men with normal screening blood-sugar levels. Ophthalmoscopically visible microvascular retinal disease was confined to men diagnosed as probably diabetic after the survey because their 2 h blood-sugar level (after a 50 g oral glucose load) in the survey examination or during a subsequent standard oral glucose-tolerance test was greater than or equal to 200 mg/dl (11.1 mmol/l). The lowest blood-sugar in a "diabetic" subsequently found to have retinopathy was 229 mg/dl. Men with lesser degrees of glucose intolerance, including 34 who had "worsened to diabetes", did not have visible retinovascular disease at follow-up. If diabetes implies a risk of specific microvascular complications in the medium term, then the findings in this study support proposals for the revision of diagnostic criteria based on glucose-tolerance tests.

Aged

International study of coronary microvascular angina (iCorMicA): A registry-based diagnostic study and nested randomized trial.

BACKGROUND: Angina is a debilitating condition caused by coronary artery disease and microvascular dysfunction. Following coronary angiography angina and no obstructive coronary arteries is a common outcome, and women are disproportionately affected. The objectives are first, to assess causes of angina in patients undergoing invasive management; and second, to assess effects of coronary function test-guided management on clinical outcomes. METHODS: This is an international, multicenter, prospective, registry-based study and nested, randomized, controlled, triple-blind, and endpoint trial. Participants, community care providers, and outcomes assessors are masked. Consented participants enter the registry. Participants without obstructive coronary artery disease (luminal stenosis <50%, or fractional flow reserve >0.80) are eligible for randomization. Index of microcirculatory resistance (IMR; abnormal &#x2265;25) and coronary flow reserve (CFR; abnormal <2.0; gray zone 2.0-2.5) are measured by bolus thermodilution, and results are disclosed (intervention) or not (control group) to the attending cardiologist. RESULTS: The primary outcome of the registry is the Seattle Angina Questionnaire summary score at baseline described by coronary artery disease status. Secondary outcomes include the prevalence of obstructive coronary artery disease, patient reported outcome measures and clinical outcomes. The primary outcome of the randomized trial is the within-individual change in Seattle Angina Questionnaire summary score at 12-months from baseline. Secondary outcomes include safety, diagnostic accuracy, patient reported outcome measures for quality of life, physical and psychological function, cardiovascular risk, clinical outcomes, health economics and mechanistic biomarkers. The first patient was screened on December 18, 2020 and the last patient was enrolled on June 30, 2026. Forty sites were included in the United Kingdom (n = 35), Republic of Ireland (n = 2), Holland (n = 2), and Poland (n = 1). In total, 1,483 participants were enrolled into the registry of whom 1,047 were randomized and 386 were not randomized (registry-only). CONCLUSION: This international, registry-based clinical trial will provide novel evidence on the natural history of angina and stratified therapy for angina with no obstructive coronary arteries. CLINICAL TRIAL REGISTRATION: https://clinicaltrials.gov/study/NCT04674449. UNIQUE IDENTIFIER: NCT04674449.

Humans

A proteomic map of thromboinflammatory signatures in antiphospholipid syndrome: results from antiphospholipid syndrome alliance for clinical trials and international networking (APS ACTION) registry.

INTRODUCTION: Antiphospholipid syndrome (APS) is an autoimmune disease with thromboembolic and obstetric morbidity arising via a model of immunothrombosis. Individuals with APS may present with thrombotic (TAPS), obstetric (OAPS), or microvascular (MAPS) disease, while many have circulating antiphospholipid antibodies (aPL) without APS classification (NoAPS). Multiple pathophysiologic mechanisms have been proposed in APS, including activation by aPL of platelets, endothelial and immune cells, as well as complement and coagulation pathways; however, the pathophysiology of APS, particularly transition of clinical APS from aPL remains unclear. METHODS: Seeking to define the inflammatory signature of APS, we carried out an unbiased proteomic screen of persistently aPL-positive patients with different clinical phenotypes from the international APS Alliance for Clinical Trials and International Networking (ACTION) Registry and compared them to 10 healthy controls. 6398 unique proteins were estimated using an DNA aptamer-based assay. Subsequently, we validated our findings in 34 additional patients. RESULTS: Our data show that the mere presence of aPL confers a distinct thromboinflammatory signature characterized by the activation of coagulation, complement, innate and adaptive immune response pathways shared by all APS subtypes. Pathway enrichment analysis revealed increasing enrichment with rising statistical significance of thrombosis, complement, neutrophil and other innate and adaptive immune activation, as well as extracellular matrix (ECM) organization with increasing clinical severity, suggesting a model of progressive thromboinflammation in evolution of APS from NoAPS to TAPS and MAPS. CONCLUSIONS: Our findings provide novel insights into the pathogenesis of APS and identify potential novel targets for diagnostic and therapeutic intervention in APS across its entire spectrum.

Humans

Premeal insulin administration lowers postprandial blood glucose and increases myocardial microvascular blood flow in people with type 1 diabetes: a randomised, crossover clinical trial.

AIMS/HYPOTHESIS: We aimed to evaluate whether prandial insulin timing affects vascular function in people with type 1 diabetes. Our hypothesis was that premeal insulin administration would lead to greater myocardial microvascular blood flow (MBF) via blunting postprandial hyperglycaemia. METHODS: People with type 1 diabetes between 18 and 35 years of age with BMI <30 kg/m2 underwent two protocols with a 1:1 randomised crossover design wherein prandial insulin was injected either 15 min before or 15 min after meal intake began. To provide a physiological comparison, age-, sex- and BMI-matched control participants completed one study where they consumed the same meal but received no exogenous insulin. Glucose, insulin, vascular function (including ultrasound measures of myocardial and skeletal muscle microvascular perfusion, aortic stiffness, brachial artery endothelial function) and biomarkers of systemic inflammation and endothelial dysfunction were assessed at baseline and then 2 h after meal ingestion within each protocol. The primary outcome was change in myocardial MBF within each protocol. Study personnel assessing outcomes were masked to group assignment. RESULTS: Eighteen people with type 1 diabetes and 18 matched control participants were analysed within each protocol. Glucose area under the curve was significantly greater (p=0.015) in the postmeal insulin study compared with the premeal insulin study in participants with type 1 diabetes. Myocardial microvascular flow velocity significantly increased (p=0.031) with premeal insulin administration in people with type 1 diabetes and this consequently led to greater myocardial MBF (p=0.044). There were no changes in myocardial MBF within the other protocols. Changes in vital signs were similar between all protocols. CONCLUSIONS/INTERPRETATION: Appropriately timed premeal insulin led to lower postprandial blood glucose along with increased myocardial MBF in people with type 1 diabetes. Further work is needed to determine the underlying aetiology of these changes. TRIAL REGISTRATION: ClinicalTrials.gov NCT04730882.

Humans

Matrine alleviates coronary microvascular dysfunction in ischemia with non-obstructive coronary artery disease mice induced by advanced glycation end products inhibition of the reactive oxygen species-mediated endoplasmic reticulum stress in cardiac microvascular endothelial cells.

OBJECTIVE: To investigate the protective effect of matrine on coronary microvascular dysfunction (CMD) induced by advanced glycation end products (AGEs) in a mouse model of ischemia with non-obstructive coronary artery disease (INOCA), with a focus on the underlying mechanisms, particularly the endoplasmic reticulum (ER) stress protein kinase R-like ER kinase (PERK)/ nuclear factor of activated T-cells (NFAT) signaling pathway. METHODS: An INOCA model was established in mice, and CMD was induced by peritoneal injections of AGEs. Matrine was administered daily via intraperitoneal injections. Coronary microcirculation was evaluated using coronary flow velocity reserve (CFVR), and cardiac microvascular endothelial cells (CMECs) were isolated for assessment of apoptosis, inflammation, oxidative stress, and microthrombosis. Markers of ER stress and the PERK/NFAT pathway were examined through immunoblotting, immunofluorescence, and enzymatic assays. The effect of matrine were further evaluated in CMECs treated with AGEs and the PERK agonist. RESULTS: Matrine treatment significantly improved CFVR and reduced CMD in AGEs-exposed INOCA mice. In CMECs, matrine attenuated AGEs-induced apoptosis, inflammation, and microthrombosis. It also suppressed intracellular reactive oxygen species (ROS) generation, ER stress markers, and PERK/NFAT signaling. Matrine's effects were concentration-dependent and partially reversed by the PERK agonist, confirming its action through the ER stress pathway. No significant toxicities were observed with matrine administration. CONCLUSION: Matrine attenuates AGEs-induced CMD in INOCA by suppressing the ROS-mediated ER stress PERK/NFAT signaling pathway in CMECs. This study highlights matrine's potential as a therapeutic agent for CMD in diabetic cardiovascular complications.

Animals

Prednisone effect on microvascular permeability in patients with inflammatory rheumatic diseases.

The transcapillary escape rate of albumin was measured in 27 consecutive patients with inflammatory rheumatic diseases before and after 1 and 7 days of prednisone treatment in doses of 45 mg/day. The transcapillary escape rate decreased from 7.33%/h (range 5.11-9.55) before prednisone treatment to 3.11%/h (0.04-6.18) (p less than 0.05) after 1 day of treatment and 5.80%/h (4.36-7.24) after 7 days of treatment. It is concluded that prednisone inhibits vascular permeability in patients with inflammatory rheumatic diseases.

Adult

Activation of mTOR signaling in adult lung microvascular progenitor cells accelerates lung aging.

Reactivation and dysregulation of the mTOR signaling pathway are a hallmark of aging and chronic lung disease; however, the impact on microvascular progenitor cells (MVPCs), capillary angiostasis, and tissue homeostasis is unknown. While the existence of an adult lung vascular progenitor has long been hypothesized, these studies show that Abcg2 enriches for a population of angiogenic tissue-resident MVPCs present in both adult mouse and human lungs using functional, lineage, and transcriptomic analyses. These studies link human and mouse MVPC-specific mTORC1 activation to decreased stemness, angiogenic potential, and disruption of p53 and Wnt pathways, with consequent loss of alveolar-capillary structure and function. Following mTOR activation, these MVPCs adapt a unique transcriptome signature and emerge as a venous subpopulation in the angiodiverse microvascular endothelial subclusters. Thus, our findings support a significant role for mTOR in the maintenance of MVPC function and microvascular niche homeostasis as well as a cell-based mechanism driving loss of tissue structure underlying lung aging and the development of emphysema.

Mice

Adverse pregnancy outcomes and long-term cardiovascular disease risk.

Pregnancy provides a unique physiological stress test for the cardiovascular system, during which, adverse pregnancy outcomes (APOs) can unmask latent susceptibility to future disease. Common complications, including hypertensive disorders of pregnancy (HDP), gestational diabetes, and preterm birth (delivery before 37 weeks' gestation), identify women at substantially higher long-term risk of cardiovascular morbidity and mortality compared with women without a history of APOs. These excess risks likely reflect the combined effects of pre-existing cardiometabolic and genetic susceptibility, as well as the haemodynamic and metabolic stressors of pregnancy, heralding accelerated risk factor trajectories, relative impairment in endothelial and microvascular function, and early disease onset. This final Review in the Series extends the focus from cardiovascular disease during pregnancy and HDP to the long-term cardiovascular implications of APOs after delivery. We synthesise epidemiological data quantifying cardiovascular risk across major APO phenotypes and emerging evidence linking maternal APO history with cardiometabolic risk trajectories in offspring. We also delineate putative mechanistic pathways and summarise guidelines and consensus-informed recommendations for short-term and long-term follow-up after APOs. Finally, we propose practical approaches for integrating APO history into cardiovascular disease risk assessment and guideline-directed prevention across the female life course. We highlight key knowledge gaps, including uncertainty about optimal follow-up models, the limitations of current risk-stratification tools, and the absence of APO-specific prevention trials. We also outline priorities for mechanistic and implementation research. Positioning APOs as early, sex-specific indicators of cardiovascular risk offers a key window of opportunity to shift prevention upstream and improve cardiovascular health outcomes for women.

Humans

Markers of microvascular instability predict severity and survival in idiopathic pulmonary fibrosis.

INTRODUCTION: Most research on idiopathic pulmonary fibrosis (IPF) has focused on the interplay among fibroblasts, the immune system and epithelial cells. There is growing evidence that microvascular dysfunction also plays a role in disease progression, but large human translational studies are lacking. In this research, we aim to identify a proteomic signature of microvascular instability and assess the impact of current therapeutics on the microvasculature. METHODS: Olink proteomic data from patients with IPF were obtained from the Pulmonary Fibrosis Foundation Patient Registry (PFF-PR) (n=914) and an independent validation cohort (n=366). Among the PFF-PR, 640 patients also have whole-blood RNA sequencing data available. A subset of 79 microvascular-associated proteins was curated, and their associations with disease severity and transplant-free survival were examined. An adaptive least absolute shrinkage and selection operator was used to generate a novel microvascular risk score. RESULTS: Higher plasma levels of five microvascular-associated proteins (SDC1, MMP10, THBS2, HGF and SERPINA5) were associated with lung function and survival in both cohorts. Whole-blood RNA sequencing of patients with microvascular risk revealed enrichment of immune-mediated processes. Patients with higher microvascular risk who were subsequently put on nintedanib in the following year had significantly better 3-year transplant-free survival compared with patients who did not receive antifibrotic intervention (HR 0.56, 95%&#x2009;CI 0.35 to 0.89, p=0.0142). DISCUSSION: Integrative multi-omics analyses suggest that perturbations to microvascular remodelling contribute to disease severity and progression in IPF. This analysis offers a framework for a precision medicine approach for IPF.

Idiopathic pulmonary fibrosis

Downregulation of Trpv4 and Klf2 in brain microvessels is associated with the progression of neurovascular dysfunction and cognitive impairment in a model of heart failure with preserved ejection fraction.

Vascular cognitive impairment (VCI) shares major risk factors with heart failure with preserved ejection fraction (HFpEF), including obesity, diabetes and hypertension. Yet VCI research often relies on single-stimulus models, whereas patients experience combined risk factors. We therefore assessed cerebrovascular and cognitive phenotypes in an HFpEF model and investigated underlying mechanisms. Male Lean and Obese ZSF1 rats underwent longitudinal assessments of blood pressure, glucose, cardiac function and behavioural performance. Cerebral blood flow and neurovascular coupling were assessed by laser speckle contrast imaging. White matter integrity, blood-brain barrier (BBB) permeability and vascular density were analyzed by (immuno)histochemistry. Cortical microvessels were isolated for transcriptomic profiling, and selected targets were validated using multiplex in-situ hybridization. Obese rats exhibited neurovascular uncoupling and impaired short- and long-term memory and spatial learning, accompanied by brain atrophy and reduced myelin. BBB permeability increased at 22-23&#x2009;weeks and vascular density at 34-35&#x2009;weeks in Obese versus Lean rats. Transcriptomic analysis of brain microvessels revealed altered processes related to angiogenesis, vasoreactivity, immune mechanisms and vascular remodelling, with consistent downregulation of Trpv4 and Klf2. Obese ZSF1 rats develop progressive neurovascular dysfunction associated with HFpEF onset and reduced Trpv4 and Klf2 expression in cerebral microvessels, two key vasoprotective genes.

Diastolic dysfunction

Endothelial-mitochondrial coupling in mitochondrial disease: A systematic review and quantitative synthesis of vascular, biochemical, and oxidative bioenergetic dysfunction.

INTRODUCTION: Mitochondrial diseases are multisystem disorders in which defects in oxidative phosphorylation disrupt cellular bioenergetics and redox signaling across the vasculature and heart. Because mitochondrial function is closely linked to endothelial nitric oxide (NO) production, we hypothesized that mitochondrial diseases manifest as a NO-deficiency endotheliopathy affecting conduit and microvascular function. To evaluate this, we performed a systematic review with quantitative synthesis of human studies reporting vascular reactivity, biochemical NO production, or myocardial metabolic imaging, aiming to define the magnitude of impairment and responsiveness to NO-precursor therapy (l-arginine or l-citrulline). METHODS: Following PRISMA 2020 guidelines, we conducted a comprehensive search (inception-October 2025) identifying clinical studies of genetically or clinically confirmed mitochondrial disease with quantitative endothelial or bioenergetic endpoints. Eligible measures included flow-mediated dilation (FMD), reactive hyperemia index (RHI), passive-leg-movement (PLM) hyperemia, absolute synthesis rate of NO metabolites (ASR NOm), and positron emission tomography (PET)-derived myocardial oxidative indices (k mono , DP/k mono ). Quantitative synthesis used Hedges g for between-group comparisons and standardized mean change (SMC) for within-subject responses. Risk of bias was evaluated using ROBINS-I and a modified Newcastle-Ottawa Scale. RESULTS: Seven studies met these inclusion criteria, comprising 76 mitochondrial-disease subjects and 81 controls (ages 8-63 years). Across all vascular and metabolic domains, mitochondrial disease was associated with marked endothelial and bioenergetic impairment. Macro- and microvascular dysfunction, reflected by reduced FMD, RHI, and PLM hyperemia, demonstrated severe endothelium-specific abnormalities. Biochemical assays showed diminished NO synthesis. Myocardial PET imaging revealed reduced oxidative rate constants and increased energetic inefficiency despite preserved perfusion. Nitric oxide synthesis-precursor therapy was associated with improved endothelial reactivity (increased FMD, RHI, and ASR NOm) and significant, modest improvements in myocardial oxidative metabolism, consistent with partial restoration of endothelial NO signaling. Effect sizes collectively supported a reversible NO-deficiency endotheliopathy. The risk-of-bias assessment indicated moderate-to-good methodological quality, with limitations primarily related to small sample sizes and nonrandomized designs. CONCLUSIONS: Mitochondrial disease is characterized by significant impairments in vascular reactivity, NO signaling, and myocardial bioenergetics. Improvements in endothelial function and NO synthesis following l-arginine or l-citrulline supplementation are consistent with a role for impaired endothelial NO signaling in the vascular manifestations of mitochondrial disease. These findings highlight the vascular endothelium as a potential therapeutic target and underscore the need for future clinical intervention trials that use standardized vascular and bioenergetic endpoints.

and stroke-like episodes (MELAS)

Genetic predisposition and mediating pathways in ischemic stroke-induced cardiac arrhythmias: a genome-wide analysis.

INTRODUCTION: The clinical presentation of stroke-heart syndrome (SHS) underscores the interplay between the central nervous system and the cardiovascular system. While cardiac arrhythmia is the prevalent form of cardiac injury in SHS patients, the causal link between ischemic stroke and cardiac arrhythmia is still unclear. METHODS: Mendelian randomization analyses and genome-wide association studies data were used to investigate the causal role of ischemic stroke on cardiac complications. Mediation and colocalization analyses were used to identify potential pathways and shared genetic variants. Single nucleotide polymorphisms (SNPs) associated with arrhythmias and ischemic stroke were used for Gene Ontology and Kyoto Encyclopedia of Genes and Genomes (KEGG) analyses. Gene expression omnibus (GEO) database from atrial fibrillation patients were used for validation. RESULTS: Mendelian randomization analyses showed a strong correlation between arrhythmias, including ventricular tachyarrhythmias and atrial fibrillation, with ischemic stroke. Diabetic microvascular (nephropathy, retinopathy) and macrovascular (cardiomyopathy, peripheral arterial disease) complications significantly mediated the effect of ischemic stroke on cardiac arrhythmias and atrial fibrillation, explaining 28.69&#xa0;% and 20.48&#xa0;% of the indirect effect, respectively. Colocalization analyses identified a shared causal variant in the Phosphodiesterase 3A (PDE3A) gene (rs11045239), providing genetic evidence for a shared pathogenic pathway between ischemic stroke and cardiac arrhythmias. Moreover, KEGG pathway enrichment analyses identified a role of the cyclic adenosine monophosphate (cAMP) signaling pathway in both ischemic stroke and arrhythmias. Validation using the GEO database confirmed a significant upregulation of the PDE3A gene expression in atrial fibrillation patients. CONCLUSION: This study demonstrated a causal link between ischemic stroke and cardiac arrhythmias, with diabetic complications as one mediating factor. The identification of a shared causal variant in the PDE3A gene and the role of the cAMP signaling pathway have the potential to improve prediction and management of SHS patients.

Humans

Glymphatic dysfunction mediates inflammation-driven vascular burden and cognitive decline in cerebral small vessel disease.

BACKGROUND: Cerebral small vessel disease (CSVD) is increasingly recognized as a disorder involving microvascular dysfunction, impaired perivascular clearance, and inflammatory processes. However, how systemic inflammatory burden, neurovascular coupling (NVC), glymphatic MRI markers, vascular lesion burden, and cognition are interrelated remains unclear. MATERIALS AND METHODS: In this prospective study, 155 patients with CSVD and 70 healthy controls (HCs) underwent multimodal MRI. NVC was quantified using the cerebral blood flow/fractional amplitude of low-frequency fluctuations ratio. Glymphatic function was assessed via the diffusion tensor image analysis along the perivascular space (ALPS) index, choroid plexus volume (CPV), and perivascular space (PVS) fractions. Structural equation modeling (SEM) was employed to evaluate the direct and indirect effects of inflammatory markers on vascular burden and cognitive performance. RESULTS: Patients with CSVD exhibited significantly diminished NVC (specifically in the right median cingulate and left frontal gyri) and impaired glymphatic function (lower ALPS-index; higher CPV and PVS fractions) compared to HCs. SEM revealed that inflammatory biomarkers exerted both a direct effect on vascular burden and a substantial indirect effect (accounting for 66.3% of the total effect) mediated through two pathways: a single-mediation path via glymphatic function (42.8%) and a serial-mediation path via NVC and glymphatic function (23.5%). Increased vascular burden was significantly associated with poorer cognitive performance. CONCLUSION: Inflammation drives CSVD progression and cognitive decline primarily through the disruption of NVC and glymphatic clearance mechanisms. These findings highlight glymphatic dysfunction as a critical mediator of inflammation-related structural brain damage.

Humans

[Chronic inflammatory neuromyopathies in adults treated for gluten-sensitive enteropathy. A report on three cases with microvascular nerve and muscle lesions (author's transl)].

Neuromyopathies developed in three patients with gluten-sensitive enteropathy, a long time after they had been cured of their digestive disease by following a gluten-free diet. These cases differed radically from typical deficiency neuropathies by the presence of microvascular inflammatory lesions in nerves and muscles. The semiological findings were similar in all 3 cases, and were distinguished by the association of signs eveking lesions of the largest myelinated nerves fibers to the posterior rami with lesions in the muscles. Corticotherapy improved the condition but did not affect its chronic course. Nerve and muscle biopsies revealed the presence of segmentary microrascularitis, mainly lymphohistiocytic. The probable mechanism of these histological changes is alterations in the circulating immune-complexes, usually found in gluten-sensitive enteropathy, producing various types of associated disorders. Some of these immune-complexes would not be related straight to digestive intolerance to gluten, but would persist during the gluten-free diet period, and could be responsible for the micro-angiitis.

Adult