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Search Results (247)

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Keywords = renin-aldosterone-angiotensin-system (RAAS)

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12 pages, 859 KB  
Article
Salivary Aldosterone as a Biomarker for Obstructive Sleep Apnea: Diagnostic Performance and the Moderating Role of Mean Arterial Pressure—A Cross-Sectional Study
by Ziyuan Chen, May Nak Lau, Tengku Nurfarhana Nadirah Tengku Hamzah, Aida Nur Ashikin Abd Rahman, Liang Chye Goh and Mang Chek Wey
Clocks & Sleep 2026, 8(3), 47; https://doi.org/10.3390/clockssleep8030047 - 17 Aug 2026
Viewed by 38
Abstract
Obstructive sleep apnea (OSA) is associated with renin–angiotensin–aldosterone system (RAAS) dysregulation. This study examined the relationship between salivary aldosterone and OSA severity, identified predictors of salivary aldosterone, evaluated the moderating role of mean arterial pressure (MAP), and compared the diagnostic performance of salivary [...] Read more.
Obstructive sleep apnea (OSA) is associated with renin–angiotensin–aldosterone system (RAAS) dysregulation. This study examined the relationship between salivary aldosterone and OSA severity, identified predictors of salivary aldosterone, evaluated the moderating role of mean arterial pressure (MAP), and compared the diagnostic performance of salivary aldosterone with the STOP-BANG questionnaire. This cross-sectional study included 67 adults grouped as healthy or mild OSA (apnea–hypopnea index [AHI] < 15; n = 34) versus moderate-to-severe OSA (AHI ≥ 15; n = 33). Morning salivary aldosterone was measured using enzyme-linked immunosorbent assay. Generalized linear models assessed independent predictors, MAP moderation was tested using PROCESS Model 1, and diagnostic performance was evaluated using receiver operating characteristic analysis. Salivary aldosterone did not differ between OSA severity groups and showed poor diagnostic performance. Age was negatively associated with aldosterone levels, while MAP moderated the relationship between AHI and salivary aldosterone. In contrast, the STOP-BANG questionnaire demonstrated acceptable discriminative ability and significantly higher specificity. Salivary aldosterone is not a reliable standalone OSA screening biomarker. However, MAP moderated the OSA–aldosterone relationship, suggesting potential utility in OSA patients with elevated MAP. Age independently predicted lower aldosterone, likely reflecting age-related RAAS decline. These findings support selective utility of salivary aldosterone in OSA patients with elevated blood pressure. Full article
(This article belongs to the Special Issue Emerging Trends in Obstructive Sleep Apnea)
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32 pages, 2251 KB  
Review
Perirenal Adipose Tissue in Cardiovascular Disease: From Molecular Insights to Therapeutic Perspectives
by Adriana Grigoraș, Rodica Radu, Andrei Prodaniuc, Florin Dumitru Petrariu, Viorel Dragoș Radu and Cornelia Amalinei
Biomedicines 2026, 14(8), 1804; https://doi.org/10.3390/biomedicines14081804 - 11 Aug 2026
Viewed by 287
Abstract
Perirenal adipose tissue (PRAT) has emerged as a clinically relevant endocrine organ connecting obesity to cardiovascular disease (CVD), chronic kidney disease, and certain malignancies. Its unique anatomical location, surrounding the kidneys, accounts for PRAT’s role in altering intrarenal haemodynamics and hydrostatic pressure. Accordingly, [...] Read more.
Perirenal adipose tissue (PRAT) has emerged as a clinically relevant endocrine organ connecting obesity to cardiovascular disease (CVD), chronic kidney disease, and certain malignancies. Its unique anatomical location, surrounding the kidneys, accounts for PRAT’s role in altering intrarenal haemodynamics and hydrostatic pressure. Accordingly, PRAT’s expansion is associated with the activation of the renin–angiotensin–aldosterone system (RAAS), further increasing blood pressure. Adipokine dysregulation, together with overexpression of miR-24-3p, miR-155, miR-146a, and miR-21 in PRAT, modulates inflammation and oxidative stress, leading to endothelial dysfunction and increased risk of atherosclerosis and hypertension in obesity. Imaging assessment of PRAT thickness through computed tomography, magnetic resonance, or ultrasound has also emerged as a complementary measure for the evaluation of CVD risk. Potential therapeutic strategies targeting PRAT include lifestyle interventions, antidiabetic agents, RAAS inhibitors, adipose tissue browning agents, NOD-like receptor protein 3 (NLRP3) inflammasome inhibitors, peroxisome proliferator-activated receptor gamma (PPARγ) agonists, and surgery. Currently, novel therapeutic interventions targeting PRAT activity in CVD, such as senotherapeutic strategies, bioengineering approaches aimed at enhancing adipose-derived mesenchymal stem cell (ADMSC) function, gut microbiota modulation, and colchicine and bone morphogenetic protein 4 (BMP4) administration, are also being explored. In light of these findings, PRAT’s clinical relevance extends beyond its energy storage role, highlighting it as a metabolically active fat depot. Its assessment and therapeutic modulation may complement existing cardiovascular prevention strategies, particularly in patients with obesity. Full article
(This article belongs to the Special Issue Obesity and Obesity-Related Pathology)
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15 pages, 1149 KB  
Review
The Prorenin Receptor: Multitasking Its Way Through Cardiovascular, Metabolic and Renal Diseases
by Andrea S. Marrero-Bras, Sarah E. Thomas, Joshua D. Parquet, Zoe Vallotton, Bolu Adewale, Brianna Crabtree and Minolfa C. Prieto
Receptors 2026, 5(3), 26; https://doi.org/10.3390/receptors5030026 - 11 Aug 2026
Viewed by 115
Abstract
The renin–angiotensin–aldosterone system (RAAS) is a fundamental regulator of blood pressure, electrolyte balance, fluid homeostasis, and tissue remodeling. The discovery of the prorenin receptor (PRR), the protein encoded by the ATP6AP2 gene, has substantially expanded the classical RAAS paradigm by demonstrating that prorenin [...] Read more.
The renin–angiotensin–aldosterone system (RAAS) is a fundamental regulator of blood pressure, electrolyte balance, fluid homeostasis, and tissue remodeling. The discovery of the prorenin receptor (PRR), the protein encoded by the ATP6AP2 gene, has substantially expanded the classical RAAS paradigm by demonstrating that prorenin possesses biological activity beyond its proteolytic conversion to renin. Binding of renin or prorenin to PRR enhances local angiotensin II (Ang II) generation while simultaneously initiating Ang II-independent intracellular signaling pathways, including ERK1/2, mitogen-activated protein kinases, PI3K/Akt, transforming growth factor-β, and nuclear factor-κB, thereby promoting inflammation, oxidative stress, fibrosis, cellular proliferation, and extracellular matrix accumulation. Beyond its receptor function, PRR serves as an essential accessory component of the vacuolar H+-ATPase (V-ATPase) complex, regulating vesicular acidification, lysosomal function, autophagy, protein trafficking, cellular metabolism, and Wnt/β-catenin signaling. These diverse functions explain its indispensable role in embryonic development, cell differentiation, and tissue homeostasis, as evidenced by the embryonic lethality associated with ATP6AP2 gene deficiency. PRR is predominantly localized to intracellular organelles, including the endoplasmic reticulum, Golgi apparatus, endosomes, lysosomes, and autophagic vesicles, although membrane-bound and soluble forms also contribute to physiological and pathological processes. Increasing evidence implies dysregulated PRR signaling in the development and progression of hypertension, cardiovascular disease, chronic kidney disease, diabetes, obesity, and other metabolic disorders. This review summarizes current advances in PRR and soluble PRR biology, discusses unresolved mechanistic and translational questions, and evaluates the potential of PRR as a biomarker and therapeutic target for cardiovascular, renal, and metabolic diseases. Full article
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36 pages, 17849 KB  
Review
Mechanisms of Obesity-Related Kidney Disease: From Adipose Depot Biology to the Chymase–Aldosterone and Ghrelin–Leptin Axes
by Hsuan-Chu Hsu, Li-Jane Shih, Yi-Chou Hou and Kuo-Cheng Lu
Biomolecules 2026, 16(8), 1155; https://doi.org/10.3390/biom16081155 - 8 Aug 2026
Viewed by 479
Abstract
Obesity is an increasingly important and modifiable driver of chronic kidney disease (CKD), with effects that extend well beyond its associations with type 2 diabetes, hypertension, and dyslipidemia. To synthesize the evidence that excess adiposity is a causal and modifiable determinant of kidney [...] Read more.
Obesity is an increasingly important and modifiable driver of chronic kidney disease (CKD), with effects that extend well beyond its associations with type 2 diabetes, hypertension, and dyslipidemia. To synthesize the evidence that excess adiposity is a causal and modifiable determinant of kidney disease, and to examine how specific adipose depots injure the glomerulus and the tubulointerstitium, and then map these mechanisms onto established and emerging therapies. Throughout, obesity-related kidney disease (ORKD) denotes the full spectrum of diposity-driven renal injury, whereas obesity-related glomerulopathy (ORG) is reserved for the biopsy-defined glomerular lesion. Central, visceral, perirenal and renal-sinus adiposity act first through structural and haemodynamic mechanisms, promoting glomerular hyperfiltration, mechanical renal compression and activation of the adipose-derived renin–angiotensin–aldosterone system (RAAS). In parallel, these depots drive cellular and metabolic injury through lipotoxicity, adipokine imbalance, sterile inflammation, oxidative stress, gut dysbiosis, mitochondrial dysfunction, epigenetic remodelling and cellular senescence. Ectopic lipid accumulation within the renal parenchyma—fatty kidney—offers a unifying description of these changes and is most marked in type 2 diabetes mellitus. These interacting processes converge on podocyte stress, tubular metabolic failure, endothelial dysfunction and interstitial fibrosis, producing a phenotypic continuum that ranges from early albuminuria to obesity-related glomerulopathy and progressive CKD. Within the RAAS limb we highlight two comparatively underappreciated, adiposity-linked routes to injury: adipocyte-derived leptin directly upregulates adrenal aldosterone synthase (CYP11B2), and mast-cell chymase generates angiotensin II independently of angiotensin-converting enzyme, together reinforcing aldosterone- and angiotensin II–mediated damage that conventional RAAS blockade only partially interrupts. We further consider the counter-regulatory ghrelin–leptin axis, in which the suppression of ghrelin that accompanies obesity may withdraw an antioxidant, anti-inflammatory and podocyte-protective signal precisely as leptin-driven glomerular injury intensifies, positioning ghrelin as a plausible modulator and candidate biomarker of obesity-related kidney injury. We also examine how obesity complicates renal risk assessment, drug dosing, dialysis delivery and transplant access. Emerging, mechanism-matched therapies—SGLT2 inhibitors, GLP-1 receptor agonists, finerenone, structured lifestyle intervention, metabolic-bariatric surgery and, most recently, aldosterone synthase inhibitors that suppress the chymase- and leptin-driven aldosterone escaping receptor blockade—now enable a precision cardiovascular-kidney-metabolic framework that aligns adipose-depot biology, biomarkers, histology and treatment response to guide mechanism-based care in ORKD. Full article
(This article belongs to the Section Molecular Medicine)
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26 pages, 1600 KB  
Review
Renal Effects of Glucagon-like Peptide-1 Receptor Agonists in Diabetic Kidney Disease: A Narrative Review of Mechanisms and Clinical Evidence
by Adina Braha, Bogdan Timar, Adrian Sturza and Romulus Timar
Medicina 2026, 62(8), 1509; https://doi.org/10.3390/medicina62081509 - 5 Aug 2026
Viewed by 347
Abstract
Diabetic kidney disease (DKD) remains a major cause of advanced chronic kidney disease (CKD) and cardiovascular (CV) mortality, despite optimization of renin–angiotensin–aldosterone system (RAAS) blockade and the use of sodium–glucose cotransporter-2 inhibitors (SGLT2i). Glucagon-like peptide-1 receptor agonists (GLP-1 RAs) are cardiometabolic agents with [...] Read more.
Diabetic kidney disease (DKD) remains a major cause of advanced chronic kidney disease (CKD) and cardiovascular (CV) mortality, despite optimization of renin–angiotensin–aldosterone system (RAAS) blockade and the use of sodium–glucose cotransporter-2 inhibitors (SGLT2i). Glucagon-like peptide-1 receptor agonists (GLP-1 RAs) are cardiometabolic agents with significant efficacy on glycemic control, body weight, blood pressure (BP), lipid profile, and systemic inflammation. In experimental studies, GLP-1 RAs showed direct renal effects by modulating natriuresis, intrarenal hemodynamics, oxidative stress, endothelial dysfunction, and tubular apoptosis. Randomized clinical trials and real-life analyses have demonstrated reductions in albuminuria and slowing of glomerular filtration rate (GFR) decline. The first study with a primary renal endpoint for semaglutide confirms its nephroprotective potential. This narrative review synthesizes the renal mechanisms involved. The clinical evidence for GLP-1 RA in DKD positions this class alongside SGLT2i and non-steroidal mineralocorticoid receptor antagonists (ns-MRAs) for the management of patients with type 2 diabetes mellitus (T2D), CKD, and very high cardiorenal risk. Full article
(This article belongs to the Special Issue Advances in the Diagnosis and Treatment of Type 2 Diabetes Mellitus)
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27 pages, 2698 KB  
Review
Cardiometabolic Aging Driven by Multi-Organ Crosstalk: Mechanisms and Therapeutic Strategies
by Shouyao Zhang, Chenggui Xu, Yongli Song and Xinghe Zhang
Int. J. Mol. Sci. 2026, 27(15), 6881; https://doi.org/10.3390/ijms27156881 - 1 Aug 2026
Viewed by 245
Abstract
Cardiac senescence is not an isolated organ decline but a systemic consequence driven by pathological crosstalk between the heart and its peripheral metabolic organs. In this review, we discard the traditional organ–centric perspective and construct an integrated framework around multi-organ crosstalk axes, including [...] Read more.
Cardiac senescence is not an isolated organ decline but a systemic consequence driven by pathological crosstalk between the heart and its peripheral metabolic organs. In this review, we discard the traditional organ–centric perspective and construct an integrated framework around multi-organ crosstalk axes, including the epicardial adipose tissue–heart axis, the skeletal muscle–heart axis, the gut–heart axis, and the kidney–heart axis. For each axis, we dissect the local molecular mediators—inflammatory cytokines, lipotoxic metabolites, microbiota-derived compounds such as trimethylamine N-oxide (TMAO), renin-angiotensin-aldosterone system (RAAS) effectors, and extracellular vesicle (EV) cargoes—and illustrate how they converge onto common pathways of oxidative stress, impaired autophagy, and cellular senescence. Importantly, we emphasize that these signals do not operate in isolation; they act synergistically through the circulation, converting local organ dysfunction into systemic cardiac aging via convergence onto shared senescence pathways. By redefining aging as a potentially modifiable multi-organ crosstalk, we propose emerging nodal points—senolytics, myokine mimetics, gut microbiota modulation, RAAS/sodium–glucose cotransporter 2 (SGLT2) inhibitors, and integrated lifestyle strategies—to block pathological crosstalk and delay cardiovascular aging. This framework shifts the research focus from isolated organs to systemic multi-organ crosstalk, providing new insights into cardiometabolic aging. Full article
(This article belongs to the Special Issue Advances in Cardiovascular and Vascular Biology)
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19 pages, 1017 KB  
Review
Mechanisms of Hypertension in Women: Interactions Between Vascular Ageing, Metabolic Dysfunction, and Hormonal Regulation
by Shiva Hooshmandi, Nicholas S. Freestone and Francesca I. F. Arrigoni
Biomedicines 2026, 14(8), 1667; https://doi.org/10.3390/biomedicines14081667 - 24 Jul 2026
Viewed by 524
Abstract
Purpose: Hypertension in women is a dynamic, hormone sensitive condition shaped by cumulative physiological changes across the life course. This review summarises current evidence relating vascular ageing, hormonal regulation, metabolic dysfunction, and reproductive history to blood pressure regulation in women. Materials and Methods: [...] Read more.
Purpose: Hypertension in women is a dynamic, hormone sensitive condition shaped by cumulative physiological changes across the life course. This review summarises current evidence relating vascular ageing, hormonal regulation, metabolic dysfunction, and reproductive history to blood pressure regulation in women. Materials and Methods: A narrative review of the literature was conducted using PubMed, Scopus and Google Scholar. Clinical, epidemiological, and mechanistic studies were synthesised to evaluate factors influencing hypertension in women. Reports in which menopausal status was not defined, or previous reproductive milestones were not documented, were excluded or interpreted with caution. Results: Evidence suggests that menopause, vascular ageing, metabolic dysfunction, androgen to oestrogen balance, and reproductive history interact to influence endothelial function, neurohormonal regulation, renal sodium handling, and vascular resistance. Ageing-related mechanisms, including cellular senescence, chronic low-grade inflammation, and genetic susceptibility, may contribute to increased cardiovascular risk. Hypertensive disorders of pregnancy identify women who are at higher risk of developing cardiovascular disease later in life and provide an opportunity for earlier risk assessment and prevention. Emerging therapies, including GLP-1 receptor agonists and SGLT2 inhibitors, may offer additional options for improving cardiovascular risk management, although their role in sex-specific prevention remains an evolving area of research. Conclusions: Hypertension in women is best understood within a life-course framework. Incorporating reproductive history, menopausal status, metabolic health, and emerging risk markers may improve cardiovascular risk assessment and support earlier intervention. Full article
(This article belongs to the Section Endocrinology and Metabolism Research)
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17 pages, 3295 KB  
Review
A Potential Role of Psoralea corylifolia L. Seed Extract in Diabetic Nephropathy
by Jong Han Lee
Diabetology 2026, 7(7), 141; https://doi.org/10.3390/diabetology7070141 - 22 Jul 2026
Viewed by 560
Abstract
Diabetic nephropathy (DN) is a major microvascular complication of diabetes mellitus, and a leading cause of chronic kidney disease (CKD) and end-stage renal disease (ESRD) worldwide. It is characterized by proteinuria, mesangial expansion, glomerulosclerosis and progressive loss of renal function. Current therapeutic strategies [...] Read more.
Diabetic nephropathy (DN) is a major microvascular complication of diabetes mellitus, and a leading cause of chronic kidney disease (CKD) and end-stage renal disease (ESRD) worldwide. It is characterized by proteinuria, mesangial expansion, glomerulosclerosis and progressive loss of renal function. Current therapeutic strategies of DN, including renin–angiotensin–aldosterone system (RAAS) blockade, glucagon-like peptide-1 receptor agonists, non-steroidal mineralocorticoid receptor, and sodium-glucose cotransporter-2 (SGLT2) inhibitors, only slow the progression of the disease rather than reversing the pathology. Therefore, there is a growing interest in identifying alternative or complementary therapeutic agents, particularly those derived from natural products with multi-targeted activities. Psoralea corylifolia Linn (PCL) is a medicinal herb commonly used in traditional Asian medicine. It has known pharmacological properties on oxidative stress, inflammation, fibrosis and metabolic disorders. Accumulating recent studies indicated that PCL and its bioactive compounds, such as psoralen, bakuchiol, and corylin, mitigate pathological conditions in various diseases. Here, the current review will provide our current knowledge of major identified and characterized PCL focusing on their biological activity and function, particularly in DN. Full article
(This article belongs to the Section Complications and Comorbidities of Diabetes)
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13 pages, 1089 KB  
Article
Cardiorenal Effects of Switching from Eplerenone to Esaxerenone in Patients with Chronic Heart Failure and Hypertension: A Prospective Clinical Study
by Akira Sezai, Masanori Abe, Takashi Maruyama, Makoto Taoka, Hisakuni Sekino and Masashi Tanaka
J. Pers. Med. 2026, 16(7), 388; https://doi.org/10.3390/jpm16070388 - 20 Jul 2026
Viewed by 361
Abstract
Background/Objectives: Esaxerenone is a non-steroidal mineralocorticoid receptor antagonist (MRA) with potent cardiorenal protective effects. However, the clinical effects of switching from eplerenone to esaxerenone in patients with chronic heart failure complicated by hypertension remain unclear. This study investigated the effects of switching from [...] Read more.
Background/Objectives: Esaxerenone is a non-steroidal mineralocorticoid receptor antagonist (MRA) with potent cardiorenal protective effects. However, the clinical effects of switching from eplerenone to esaxerenone in patients with chronic heart failure complicated by hypertension remain unclear. This study investigated the effects of switching from eplerenone to esaxerenone on blood pressure, heart failure biomarkers, renal function, and the renin–angiotensin–aldosterone system (RAAS). Methods: A total of 156 patients with chronic heart failure and hypertension who had been receiving eplerenone for more than one year were prospectively enrolled. Eplerenone was switched to esaxerenone, and the patients were followed for 6 months. Blood pressure, heart rate, brain natriuretic peptide (BNP), renal function, urinary albumin-to-creatinine ratio (UACR), plasma renin activity (PRA), plasma aldosterone concentration (PAC), and urinary osmolality (U-OSM) were evaluated. Results: Following the switch to esaxerenone, systolic and diastolic blood pressure significantly decreased (both p < 0.001), whereas heart rate remained unchanged. BNP levels significantly decreased at 3 and 6 months (p = 0.008 and p = 0.002, respectively). Serum creatinine decreased (p = 0.017), estimated glomerular filtration rate increased (p = 0.028), and UACR significantly decreased at both time points (both p < 0.001). PRA and PAC significantly increased after switching (both p < 0.05), whereas angiotensin II levels remained unchanged. U-OSM significantly decreased (p = 0.01 and p = 0.002 at 3 and 6 months, respectively). No major cardiovascular events or severe adverse events were observed. Conclusions: In patients with chronic heart failure and hypertension, switching from eplerenone to esaxerenone was associated with reductions in blood pressure, BNP, UACR, and urinary osmolality, together with improvements in renal function. These findings suggest favorable physiological changes following the switch from a steroidal to a non-steroidal mineralocorticoid receptor antagonist, although confirmation in randomized controlled studies with clinical outcome measures is warranted. Full article
(This article belongs to the Section Personalized Therapy in Clinical Medicine)
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28 pages, 620 KB  
Review
Urinary Extracellular Vesicle-Derived miRNAs as Regulators and Biomarkers in Diabetic Kidney Disease
by Nurzhanyat Ablaikhanova, Arailym Yessenbekova, Ayauly Duisenbek, Ingkar Okhas, Botagoz Ussipbek, Gulmira Assan, Makpal Yessenova, Arman Abaildayev, Altynay Safiollayeva, Sayagul Syraiyl, Kantemir Satken, Iryna Rusanova and Beibarys Mukhitdin
Int. J. Mol. Sci. 2026, 27(14), 6394; https://doi.org/10.3390/ijms27146394 - 18 Jul 2026
Viewed by 539
Abstract
Diabetic kidney disease (DKD) remains one of the most severe microvascular complications of type 2 diabetes mellitus (T2DM) and a leading cause of chronic kidney disease (CKD) worldwide. Nevertheless, despite considerable progress in elucidating its molecular background, early diagnosis and accurate stratification of [...] Read more.
Diabetic kidney disease (DKD) remains one of the most severe microvascular complications of type 2 diabetes mellitus (T2DM) and a leading cause of chronic kidney disease (CKD) worldwide. Nevertheless, despite considerable progress in elucidating its molecular background, early diagnosis and accurate stratification of disease progression remain challenging when relying on conventional clinical biomarkers such as albuminuria and estimated glomerular filtration rate (eGFR). Growing evidence indicates that DKD is driven by interconnected pathogenic mechanisms, including chronic hyperglycemia, activation of the protein kinase C (PKC) signaling pathway, renin–angiotensin–aldosterone system (RAAS) dysregulation, oxidative stress, inflammatory cascades, and immune system activation involving Toll-like receptors (TLR) and the NLRP3 inflammasome. These processes collectively contribute to endothelial dysfunction, podocyte injury, extracellular matrix accumulation, and progressive renal fibrosis. Exosomes and their molecular cargo, particularly miRNAs, have emerged as promising regulators and non-invasive biomarkers reflecting ongoing renal injury. Urinary exosomal microRNAs (uEV-miRNAs) are of interest due to their stability in biological fluids and their direct origin from nephron segments, enabling real-time reflection of renal pathophysiology. Accumulating studies suggest that differentially expressed microRNAs (miRNAs), including miR-21-5p, miR-30a-5p, miR-192-5p, and miR-142-3p, are closely associated with key pathways in DN. However, their clinical translation remains limited by methodological heterogeneity, the lack of standardized isolation protocols, and insufficient validation in large longitudinal cohorts. This review navigates the current landscape of knowledge on the molecular mechanisms underlying DKD and examines the emerging role of uEV-miRNAs as diagnostic biomarkers. Altogether, uEV-miRNAs offer a promising avenue for improving early detection, risk stratification, and disease monitoring in DKD. Full article
(This article belongs to the Special Issue Molecular Insights into Diabetic Nephropathy)
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28 pages, 5672 KB  
Review
Apelin, Cortisol, and Doxorubicin-Induced Cardiotoxicity: A Triangle of Actions
by Kinga Dziobiak, Maja Owe-Larsson, Mirosława Chwil and Izabela Róża Janiuk
Cells 2026, 15(13), 1187; https://doi.org/10.3390/cells15131187 - 30 Jun 2026
Viewed by 514
Abstract
The mechanisms underlying doxorubicin (DOX) cardiotoxicity include activation of the renin–angiotensin–aldosterone system (RAAS), oxidative stress, mitochondrial dysfunction, calcium overload, and cardiomyocyte apoptosis. Cortisol plays a key role in regulating multiple metabolic, immunological, cardiovascular, and neuroendocrine processes and may additionally influence drug pharmacokinetics by [...] Read more.
The mechanisms underlying doxorubicin (DOX) cardiotoxicity include activation of the renin–angiotensin–aldosterone system (RAAS), oxidative stress, mitochondrial dysfunction, calcium overload, and cardiomyocyte apoptosis. Cortisol plays a key role in regulating multiple metabolic, immunological, cardiovascular, and neuroendocrine processes and may additionally influence drug pharmacokinetics by modulating the activity of P-glycoprotein (P-gp). The peptide apelin, through its specific target, angiotensin II protein J receptor (APJ), exerts cardioprotective, antifibrotic, and anti-inflammatory effects. The available data demonstrate that apelin signaling protects against DOX-induced cardiotoxicity, impacts cortisol secretion, and inhibits RAAS. Short-term elevation in cortisol levels, caused by apelin, may reduce inflammation and thus have cardioprotective properties. However, through chronically elevated cortisol levels, apelin may indirectly contribute to peripheral resistance, cardiac remodeling, and myocardial damage, especially when cortisol metabolism by 11β-hydroxysteroid dehydrogenase 2 (11β-HSD2) is altered. This narrative review explores the potential molecular and cellular mechanisms shaping the outcome of apelin–cortisol interplay, offering a potential foundation for developing cardioprotective strategies during anticancer therapy. Future studies should be aimed at assessing the complex interactions between cortisol, apelin, and the RAAS regarding DOX-induced cardiotoxicity. Full article
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31 pages, 3208 KB  
Review
Butyrate and Butyrate-Producing Bacteria in Cardiovascular–Kidney–Metabolic Syndrome
by Wenli Huang, Fen Zhou, Shuo Wang, Meng Shu, Zhongchun Liu and Ling Gao
Antioxidants 2026, 15(7), 812; https://doi.org/10.3390/antiox15070812 - 28 Jun 2026
Viewed by 1006
Abstract
The recently conceptualized Cardiovascular–Kidney–Metabolic (CKM) syndrome represents a pressing global health burden, characterized by a vicious cycle of dysfunction among the cardiac, renal, and metabolic systems. Growing evidence suggests that gut microbiota dysbiosis, specifically, a loss of butyrate-producing bacteria (BPB) and the resulting [...] Read more.
The recently conceptualized Cardiovascular–Kidney–Metabolic (CKM) syndrome represents a pressing global health burden, characterized by a vicious cycle of dysfunction among the cardiac, renal, and metabolic systems. Growing evidence suggests that gut microbiota dysbiosis, specifically, a loss of butyrate-producing bacteria (BPB) and the resulting systemic butyrate deficiency, may be an important but previously overlooked driver of CKM progression. In this review, we synthesize available evidence linking butyrate to the integrated, multi-organ pathophysiology of CKM and propose a conceptual framework we term the gut-butyrate-CKM axis. We discuss the multiple mechanisms by which butyrate and BPB exert protective effects, including targeting key pathophysiological features of CKM, such as insulin resistance (IR), metabolic inflammation, oxidative stress, endothelial dysfunction, renin–angiotensin–aldosterone system (RAAS) overactivation, and gut dysbiosis itself. Through a critical appraisal of human studies, we bring together findings from direct butyrate supplementation, dietary interventions, and microbiota-directed strategies. Based on this, we argue that butyrate serves as a central hub linking gut homeostasis to systemic metabolic and cardiorenal health. By integrating previously fragmented observations into a coherent framework, this review addresses a conceptual gap in our understanding of CKM pathogenesis and points to actionable, microbiota-targeted therapeutic strategies that could help break the disease cycle. Given the current lack of integrated management options for CKM, our work offers insights for future translational research and clinical practice, highlighting butyrate-centered approaches as a potential paradigm shift in CKM care. Full article
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12 pages, 11251 KB  
Article
Rationally Modified SARS-CoV-2 Spike Protein Impairs ACE2 Binding While Preserving Immunogenicity in Mice
by Elia Tamagnini, Luca Simonelli, Martin Palus, Tanja Rezzonico Jost, Edoardo Lazzarini, Davide Mangani, Václav Hönig, Markéta Dvořáková, Dominik Arbon, Federica Gambini, Sara Lestani, Fabio Grassi, Lucio Barile, Mattia Pedotti, Radislav Sedlacek and Luca Varani
Vaccines 2026, 14(7), 568; https://doi.org/10.3390/vaccines14070568 - 27 Jun 2026
Viewed by 683
Abstract
Background: While vaccines are designed to elicit targeted immune responses, in some cases, the immunogenic molecules employed can inherently interact with broader host cellular pathways as a secondary consequence. This phenomenon can be exemplified by COVID-19 vaccines. COVID-19 vaccines, including mRNA platforms, use [...] Read more.
Background: While vaccines are designed to elicit targeted immune responses, in some cases, the immunogenic molecules employed can inherently interact with broader host cellular pathways as a secondary consequence. This phenomenon can be exemplified by COVID-19 vaccines. COVID-19 vaccines, including mRNA platforms, use the SARS-CoV-2 spike protein as an immunogen to induce the production of neutralizing antibodies. The spike protein binds the ACE2 (angiotensin-converting enzyme 2) receptor on human cells, mediating viral entry and infection. ACE2 is widely expressed across multiple tissues and is a key component of the renin–angiotensin–aldosterone system (RAAS) that acts as a homeostatic regulator of systemic and local blood flow, blood pressure, cardiac function, fluid balance and immunity. Some studies have proposed the interaction between the spike protein and ACE2 as a possible contributing factor to rare adverse effects observed following COVID-19 vaccination, including myocarditis, pericarditis, thrombosis, and reported alterations in blood pressure, though these mechanisms remain to be fully elucidated. Objectives: As a proof-of-concept approach in vaccine antigen development, we engineered SARS-CoV-2 spike mutants with impaired binding to the host receptor ACE2. Methods: By rational design, we produced and validated in vitro and in vivo spike point mutants that do not effectively bind ACE2. Results: The engineered spike mutants do not effectively bind the human entry receptor ACE2 while retaining the immunogenic properties equal to or better than the wild type spike and thus generate a protective response in animals when used as a vaccination agent. Conclusions: By establishing a straightforward molecular strategy for rational vaccine design, this work demonstrates the feasibility of limiting specific antigen–host receptor interactions while maintaining immunogenicity. This approach may be applicable to future vaccination strategies where antigen interaction with host cells could potentially interfere with physiological pathways. Full article
(This article belongs to the Section COVID-19 Vaccines and Vaccination)
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16 pages, 2857 KB  
Article
Prevalence of rs850683722 Variant and Its Influence on the Course of Myxomatous Mitral Valve Disease in 105 Cavalier King Charles Spaniel Dogs in the Polish Population
by Maksymilian Lewicki, Sylwia Barbara Górczyńska-Kosiorz, Justyn Gach, Piotr Frydrychowski, Zuzanna Wojtczak and Agnieszka Noszczyk-Nowak
Animals 2026, 16(13), 1956; https://doi.org/10.3390/ani16131956 - 24 Jun 2026
Viewed by 325
Abstract
Myxomatous mitral valve disease (MMVD) is the most common acquired cardiac disease in small-breed dogs and shows particularly high prevalence and early onset in Cavalier King Charles Spaniels (CKCS). Although MMVD is considered a complex, polygenic disease, the clinical relevance of individual genetic [...] Read more.
Myxomatous mitral valve disease (MMVD) is the most common acquired cardiac disease in small-breed dogs and shows particularly high prevalence and early onset in Cavalier King Charles Spaniels (CKCS). Although MMVD is considered a complex, polygenic disease, the clinical relevance of individual genetic variants remains incompletely understood. The angiotensin-converting enzyme (ACE) gene variant rs850683722 has previously been associated with altered ACE activity and differences in renin–angiotensin–aldosterone system-related responses in dogs with MMVD. The aim of this study was to determine the prevalence of rs850683722 in a Polish population of CKCS dogs and to assess whether this variant is associated with the clinical course of MMVD. A total of 105 CKCS dogs were included in the study. All dogs underwent standardized cardiovascular evaluation, including echocardiography, electrocardiography, and systolic blood pressure measurement. MMVD diagnosis and staging were performed according to current ACVIM consensus criteria. Genotyping of the rs850683722 variant was performed using Sanger sequencing for 95 dogs, while next-generation sequencing data was obtained for 10 dogs. Genotype distribution, allele frequencies, conformity with the Hardy–Weinberg equilibrium (HWE), sex-related differences, and associations between genotype and age at progression to selected MMVD stages or the primary clinical endpoint were assessed statistically. The most frequent genotype was AA, detected in fifty-nine dogs, followed by GG in thirty-seven dogs and AG in nine dogs. When dogs carrying at least one A allele were considered variant-positive, the overall prevalence of the variant-positive genotype was 64.8%. The calculated allele frequencies were 0.605 for the A allele and 0.395 for the G allele. The observed genotype distribution deviated markedly from the Hardy–Weinberg equilibrium, mainly because of a pronounced deficit of heterozygous dogs. No significant association was detected between genotype and sex. Genotype was also not significantly associated with age at progression to stage B2 or stage C. A statistically significant difference in age of death was demonstrated by genotype, but this difference was not reflected in the survival analysis. The rs850683722 variant was highly prevalent in the studied Polish CKCS population, with a frequency comparable to previously reported data for this breed. Despite its documented biological association with ACE activity and RAAS-related responses, the variant was not significantly associated with the clinical progression of MMVD in this cohort. These findings suggest that rs850683722 alone seems unlikely to be a reliable marker for predicting the severity or rate of MMVD progression in Polish CKCS dogs. Further studies including larger cohorts, longer follow-up, pedigree information, and the direct assessment of RAAS activity may help clarify whether this variant has stage-dependent or treatment-related clinical relevance. Full article
(This article belongs to the Section Veterinary Clinical Studies)
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16 pages, 1289 KB  
Review
Aldosterone in Diabetic Kidney Disease: From Mineralocorticoid Receptor Antagonism to Aldosterone Synthase Inhibition
by Juarez R. Braga, Joseph H. Holthoff, Luis A. Juncos, Ramakrishna Thotakura and Fatima Ayub
Int. J. Mol. Sci. 2026, 27(13), 5664; https://doi.org/10.3390/ijms27135664 - 23 Jun 2026
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Abstract
Diabetic kidney disease (DKD) represents the single most common etiology of chronic kidney disease and end stage kidney disease globally, a burden that continues to expand in direct proportion to the worldwide growth of the diabetes epidemic. The pathogenesis of DKD is multifactorial, [...] Read more.
Diabetic kidney disease (DKD) represents the single most common etiology of chronic kidney disease and end stage kidney disease globally, a burden that continues to expand in direct proportion to the worldwide growth of the diabetes epidemic. The pathogenesis of DKD is multifactorial, involving metabolic, hemodynamic, inflammatory, and fibrotic pathways. Among these, aldosterone has emerged as a key mediator of kidney injury, extending beyond its traditional role in sodium balance and blood pressure regulation. Through activation of both MR-dependent transcriptional processes and MR-independent signaling cascades, aldosterone drives a coordinated pattern of renal injury encompassing oxidative stress generation, endothelial dysfunction, podocyte damage, inflammatory cell recruitment, and progressive interstitial fibrosis. Current therapies targeting the renin–angiotensin–aldosterone system (RAAS), including angiotensin-converting enzyme inhibitors, angiotensin receptor blockers, and mineralocorticoid receptor antagonists, have significantly improved outcomes in DKD. Despite these advances, a considerable degree of residual cardiovascular and renal risk persists, attributable in part to the incomplete attenuation of aldosterone activity and the well-characterized phenomenon of aldosterone escape under sustained RAAS blockade. Aldosterone synthase inhibitors (ASIs) represent a mechanistically distinct therapeutic approach that targets aldosterone overproduction at its enzymatic source, potentially addressing both MR-dependent and independent pathways. Early clinical trials evaluating the efficacy of ASIs have demonstrated promising effects on blood pressure and albuminuria. This review summarizes the role of aldosterone in DKD pathogenesis, evaluates current therapeutic approaches, and discusses emerging evidence supporting ASIs as a potential addition to the evolving treatment landscape. Full article
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