Common Shared Pathogenic Aspects of Small Vessels in Heart and Brain Disease
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P. Caruso | R. Moretti | G. Sinagra | A. Beltrami | A. Aleksova | G. Gagno | A. Pierri | L. Padoan | M. Janjusevic | A. Fluca | R. Saro | Luca Restivo | Agnese Derin | A. Derin
[1] P. Caruso,et al. Small Vessel Disease: Ancient Description, Novel Biomarkers , 2022, International journal of molecular sciences.
[2] D. Conen,et al. Silent brain infarcts impact on cognitive function in atrial fibrillation , 2022, European heart journal.
[3] Benjamin Bowe,et al. Long-term cardiovascular outcomes of COVID-19 , 2022, Nature Medicine.
[4] G. Sinagra,et al. Old and Novel Therapeutic Approaches in the Management of Hyperglycemia, an Important Risk Factor for Atherosclerosis , 2022, International journal of molecular sciences.
[5] D. Duncker,et al. Mechanobiology of Microvascular Function and Structure in Health and Disease: Focus on the Coronary Circulation , 2021, Frontiers in Physiology.
[6] J. Wardlaw,et al. Tracer kinetic assessment of blood–brain barrier leakage and blood volume in cerebral small vessel disease: Associations with disease burden and vascular risk factors , 2021, NeuroImage: Clinical.
[7] A. Shore,et al. Cerebral small vessel disease, systemic vascular characteristics and potential therapeutic targets , 2021, Aging.
[8] G. Niccoli,et al. Coronary Microvascular Dysfunction Across the Spectrum of Cardiovascular Diseases: JACC State-of-the-Art Review. , 2021, Journal of the American College of Cardiology.
[9] R. Caffaro,et al. Arteriosclerosis, atherosclerosis, arteriolosclerosis, and Monckeberg medial calcific sclerosis: what is the difference? , 2021, Jornal vascular brasileiro.
[10] L. Fratiglioni,et al. Cerebral Small Vessel Disease Associated With Atrial Fibrillation Among Older Adults: A Population-Based Study , 2021, Stroke.
[11] A. Bastos-Leite,et al. Perivascular spaces and brain waste clearance systems: relevance for neurodegenerative and cerebrovascular pathology , 2021, Neuroradiology.
[12] P. Edison. Microglial activation and blood–brain barrier leakage: chicken and egg? , 2021, Brain : a journal of neurology.
[13] G. Campo,et al. Coronary Microvascular Dysfunction: PET, CMR and CT Assessment , 2021, Journal of clinical medicine.
[14] Linqing Feng,et al. Diets and Cellular-Derived Microparticles: Weighing a Plausible Link With Cerebral Small Vessel Disease , 2021, Frontiers in Cardiovascular Medicine.
[15] C. Torp‐Pedersen,et al. Risk of major cardiovascular events according to educational level before and after the initial COVID-19 public lockdown: a nationwide study , 2021, Journal of Epidemiology & Community Health.
[16] B. Safdar,et al. Is microvascular dysfunction a systemic disorder with common biomarkers found in the heart, brain, and kidneys? - a scoping review. , 2020, Microvascular research.
[17] H. Rahman,et al. High-Resolution Cardiac Magnetic Resonance Imaging Techniques for the Identification of Coronary Microvascular Dysfunction. , 2020, JACC. Cardiovascular imaging.
[18] Su-Hyun Han,et al. Association between arterial stiffness and the presence of cerebral small vessel disease markers , 2020, Brain and behavior.
[19] Samantha J. Ma,et al. Brain arteriolosclerosis , 2020, Acta Neuropathologica.
[20] A. Wu,et al. Age-related cerebral small vessel disease and inflammaging , 2020, Cell Death & Disease.
[21] V. Murthy,et al. Association of Isolated Coronary Microvascular Dysfunction With Mortality and Major Adverse Cardiac Events: A Systematic Review and Meta‐Analysis of Aggregate Data , 2020, Journal of the American Heart Association.
[22] V. Aboyans,et al. ENDOTHELIAL FUNCTION IN CARDIOVASCULAR PRECISION MEDICINE : A POSITION PAPER ON BEHALF OF THE EUROPEAN SOCIETY OF CARDIOLOGY. , 2020, Cardiovascular research.
[23] G. Waldemar,et al. Cerebrospinal Fluid/Plasma Albumin Ratio as a Biomarker for Blood-Brain Barrier Impairment Across Neurodegenerative Dementias. , 2020, Journal of Alzheimer's disease : JAD.
[24] S. Gabriel,et al. Microvascular Disease and Small-Vessel Disease: The Nexus of Multiple Diseases of Women , 2020, Journal of women's health.
[25] D. Tousoulis,et al. ESC Working Group on Coronary Pathophysiology and Microcirculation position paper on 'coronary microvascular dysfunction in cardiovascular disease'. , 2020, Cardiovascular research.
[26] Hyaline Arteriolosclerosis , 2020, Definitions.
[27] Prevention Study , 2020, Definitions.
[28] P. Caruso,et al. Small Vessel Disease-Related Dementia: An Invalid Neurovascular Coupling? , 2020, International journal of molecular sciences.
[29] P. Caruso,et al. Small vessel disease to subcortical dementia: a dynamic model, which interfaces aging, cholinergic dysregulation and the neurovascular unit , 2019, Vascular health and risk management.
[30] M. Dichgans,et al. Small vessel disease: mechanisms and clinical implications , 2019, The Lancet Neurology.
[31] Richard Frayne,et al. Quantifying blood-brain barrier leakage in small vessel disease: Review and consensus recommendations , 2019, Alzheimer's & Dementia.
[32] Shengxiang Zhang. Microglial activation after ischaemic stroke , 2019, Stroke and Vascular Neurology.
[33] M. Kamal,et al. Editorial: Neuroscientific Research for Management of Dementia , 2019, Front. Aging Neurosci..
[34] S. Van Huffel,et al. Measurement of Neurovascular Coupling in Neonates , 2019, Front. Physiol..
[35] C. Berry,et al. Small‐Vessel Disease in the Heart and Brain: Current Knowledge, Unmet Therapeutic Need, and Future Directions , 2019, Journal of the American Heart Association.
[36] Richa Kalsi,et al. Small GTPases and Their Role in Vascular Disease , 2019, International journal of molecular sciences.
[37] M. Kamal,et al. Neuroscientific Research for Management of Dementia , 2019, Frontiers Research Topics.
[38] J. Davies,et al. Coronary autoregulation and assessment of stenosis severity without pharmacological vasodilation , 2018, European heart journal.
[39] F. Verhey,et al. Blood-Brain Barrier Dysfunction in Small Vessel Disease Related Intracerebral Hemorrhage , 2018, Front. Neurol..
[40] M. D. Di Carli,et al. Coronary Microvascular Disease Pathogenic Mechanisms and Therapeutic Options: JACC State-of-the-Art Review. , 2018, Journal of the American College of Cardiology.
[41] R. Dagda. Role of Mitochondrial Dysfunction in Degenerative Brain Diseases, an Overview , 2018, Brain sciences.
[42] Harman S. Suri,et al. Cerebral Small Vessel Disease: A Review Focusing on Pathophysiology, Biomarkers, and Machine Learning Strategies , 2018, Journal of stroke.
[43] Fei Han,et al. Arterial Stiffness and Cerebral Small Vessel Disease , 2018, Front. Neurol..
[44] C. Berry,et al. Systemic microvascular dysfunction in microvascular and vasospastic angina , 2018, European heart journal.
[45] Li Yue-chun,et al. The Role of Necroptosis in Cardiovascular Disease , 2018, Front. Pharmacol..
[46] F.‐E. Leeuw,et al. Cerebral small vessel disease: from a focal to a global perspective , 2018, Nature Reviews Neurology.
[47] W. Heiss. The Additional Value of PET in the Assessment of Cerebral Small Vessel Disease , 2018, The Journal of Nuclear Medicine.
[48] E. Prescott,et al. Effect of ACE-inhibition on coronary microvascular function and symptoms in normotensive women with microvascular angina: A randomized placebo-controlled trial , 2018, PloS one.
[49] Wenli Hu,et al. Compromised Blood–Brain Barrier Integrity Is Associated With Total Magnetic Resonance Imaging Burden of Cerebral Small Vessel Disease , 2018, Front. Neurol..
[50] J. Ryu,et al. Fibrinogen in neurological diseases: mechanisms, imaging and therapeutics , 2018, Nature Reviews Neuroscience.
[51] T. Shindo,et al. Coronary Adventitial and Perivascular Adipose Tissue Inflammation in Patients With Vasospastic Angina. , 2018, Journal of the American College of Cardiology.
[52] P. Kubatka,et al. Nitric oxide in the pathophysiology of retinopathy: evidences from preclinical and clinical researches , 2017, Acta ophthalmologica.
[53] H. Weiner,et al. CNS inflammation and neurodegeneration. , 2017, The Journal of clinical investigation.
[54] Amit R. Patel,et al. Myocardial computed tomography perfusion. , 2017, Cardiovascular diagnosis and therapy.
[55] J. Wardlaw,et al. Small Vessel Disease and Dietary Salt Intake: Cross-Sectional Study and Systematic Review , 2017, Journal of stroke and cerebrovascular diseases : the official journal of National Stroke Association.
[56] A. Sinusas,et al. Quantitative Assessment of Coronary Microvascular Function: Dynamic Single-Photon Emission Computed Tomography, Positron Emission Tomography, Ultrasound, Computed Tomography, and Magnetic Resonance Imaging. , 2017, Circulation. Cardiovascular imaging.
[57] T. Jiang,et al. Higher blood–brain barrier permeability is associated with higher white matter hyperintensities burden , 2017, Journal of Neurology.
[58] E. Wouters,et al. The Relationship between Cerebral Small Vessel Disease, Hippocampal Volume and Cognitive Functioning in Patients with COPD: An MRI Study , 2017, Front. Aging Neurosci..
[59] Jun Chen,et al. Dysfunction of the neurovascular unit in ischemic stroke and neurodegenerative diseases: An aging effect , 2017, Ageing Research Reviews.
[60] S. Greenberg,et al. Small vessel disease burden in cerebral amyloid angiopathy without symptomatic hemorrhage , 2017, Neurology.
[61] Stefan J. Teipel,et al. White Matter Damage in the Cholinergic System Contributes to Cognitive Impairment in Subcortical Vascular Cognitive Impairment, No Dementia , 2017, Front. Aging Neurosci..
[62] Jun Chen,et al. Cerebral Vascular Disease and Neurovascular Injury in Ischemic Stroke , 2017, Circulation research.
[63] F. Erdő,et al. Age-associated physiological and pathological changes at the blood–brain barrier: A review , 2017, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[64] T. Kawamura,et al. Pathogenesis and neuroimaging of cerebral large and small vessel disease in type 2 diabetes: A possible link between cerebral and retinal microvascular abnormalities , 2016, Journal of diabetes investigation.
[65] F. Carreras,et al. Protective Effects of Ticagrelor on Myocardial Injury After Infarction , 2016, Circulation.
[66] Joanna M Wardlaw,et al. Update on cerebral small vessel disease: a dynamic whole-brain disease , 2016, Stroke and Vascular Neurology.
[67] J. Silver,et al. “Targeting astrocytes in CNS injury and disease: A translational research approach” , 2016, Progress in Neurobiology.
[68] J. Lima,et al. Endocardial-epicardial distribution of myocardial perfusion reserve assessed by multidetector computed tomography in symptomatic patients without significant coronary artery disease: insights from the CORE320 multicentre study. , 2016, European heart journal cardiovascular Imaging.
[69] P. Eshtehardi,et al. Novel biomarkers of coronary microvascular disease. , 2016, Future cardiology.
[70] C. Samuel,et al. Cerebral Small Vessel Disease: Targeting Oxidative Stress as a Novel Therapeutic Strategy? , 2016, Front. Pharmacol..
[71] A. Shah,et al. Mutual Regulation of Epicardial Adipose Tissue and Myocardial Redox State by PPAR-γ/Adiponectin Signalling , 2016, Circulation research.
[72] M. Bennett,et al. Vascular Smooth Muscle Cells in Atherosclerosis. , 2016, Circulation research.
[73] S. Greenberg,et al. Ischemic brain injury in cerebral amyloid angiopathy , 2016, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[74] Alan J. Thomas,et al. Frontal white matter hyperintensities, clasmatodendrosis and gliovascular abnormalities in ageing and post-stroke dementia , 2015, Brain : a journal of neurology.
[75] T. Sakurai,et al. Cerebral Small Vessel Disease and Arterial Stiffness: Tsunami Effect in the Brain , 2016, Pulse.
[76] A. Ridley,et al. The Function of Rho-Associated Kinases ROCK1 and ROCK2 in the Pathogenesis of Cardiovascular Disease , 2015, Front. Pharmacol..
[77] Turgay Dalkara,et al. Cerebral microvascular pericytes and neurogliovascular signaling in health and disease , 2015, Brain Research.
[78] V. Jaquet,et al. Challenges, Progresses, and Promises for Developing Future NADPH Oxidase Therapeutics. , 2015, Antioxidants & redox signaling.
[79] H. Schmidt,et al. Evolution of NADPH Oxidase Inhibitors: Selectivity and Mechanisms for Target Engagement. , 2015, Antioxidants & redox signaling.
[80] D. Holtzman,et al. Contribution of reactive oxygen species to cerebral amyloid angiopathy, vasomotor dysfunction, and microhemorrhage in aged Tg2576 mice , 2015, Proceedings of the National Academy of Sciences.
[81] Christopher M Kramer,et al. Coronary microvascular dysfunction, microvascular angina, and treatment strategies. , 2015, JACC. Cardiovascular imaging.
[82] D. Blazer,et al. The new DSM-5 diagnosis of mild neurocognitive disorder and its relation to research in mild cognitive impairment , 2015, Aging & mental health.
[83] L. Bridges,et al. Endothelial Cells and Human Cerebral Small Vessel Disease , 2015, Brain pathology.
[84] Ornella Rimoldi,et al. Coronary microvascular dysfunction: mechanisms and functional assessment , 2015, Nature Reviews Cardiology.
[85] M. Mohajeri,et al. Effects of Vitamin E on Cognitive Performance during Ageing and in Alzheimer’s Disease , 2014, Nutrients.
[86] M. Esiri,et al. Blood-Brain Barrier Dysfunction and Cerebral Small Vessel Disease (Arteriolosclerosis) in Brains of Older People , 2014, Journal of neuropathology and experimental neurology.
[87] Weihai Xu. Large artery: an important target for cerebral small vessel diseases. , 2014, Annals of translational medicine.
[88] F. Crea,et al. Coronary microvascular dysfunction in patients without myocardial diseases and obstructive atherosclerosis , 2014 .
[89] K. Yuen,et al. Clinical Investigation of the Protective Effects of Palm Vitamin E Tocotrienols on Brain White Matter , 2014, Stroke.
[90] C. Iadecola,et al. The Pathobiology of Vascular Dementia , 2013, Neuron.
[91] A. Csiszar,et al. Mitochondria in Cardiovascular Physiology and Disease Role of mitochondrial dysfunction and altered autophagy in cardiovascular aging and disease : from mechanisms to therapeutics , 2013 .
[92] Nick C Fox,et al. Neuroimaging standards for research into small vessel disease and its contribution to ageing and neurodegeneration , 2013, The Lancet Neurology.
[93] M. Morioka,et al. The Efficacy of Edaravone (Radicut), a Free Radical Scavenger, for Cardiovascular Disease , 2013, International journal of molecular sciences.
[94] A. Rodriguez-Mateos,et al. Dietary (poly)phenolics in human health: structures, bioavailability, and evidence of protective effects against chronic diseases. , 2013, Antioxidants & redox signaling.
[95] M. Dichgans,et al. Mechanisms of sporadic cerebral small vessel disease: insights from neuroimaging , 2013, The Lancet Neurology.
[96] K. Jellinger. Pathology and pathogenesis of vascular cognitive impairment—a critical update , 2013, Front. Aging Neurosci..
[97] J. Filosa,et al. A quantitative spatiotemporal analysis of microglia morphology during ischemic stroke and reperfusion , 2013, Journal of Neuroinflammation.
[98] Aad van der Lugt,et al. Arterial Stiffness and Cerebral Small Vessel Disease: The Rotterdam Scan Study , 2012, Stroke.
[99] A. Puca,et al. Endothelial nitric oxide synthase, vascular integrity and human exceptional longevity , 2012, Immunity & Ageing.
[100] S. Fumagalli,et al. Temporal pattern of expression and colocalization of microglia/macrophage phenotype markers following brain ischemic injury in mice , 2011, Journal of Neuroinflammation.
[101] C. Sobey,et al. Nox2 Oxidase Activity Accounts for the Oxidative Stress and Vasomotor Dysfunction in Mouse Cerebral Arteries following Ischemic Stroke , 2011, PloS one.
[102] O. Onodera. [What is cerebral small vessel disease?]. , 2011, Rinsho shinkeigaku = Clinical neurology.
[103] C. Sobey,et al. Combating oxidative stress in vascular disease: NADPH oxidases as therapeutic targets , 2011, Nature Reviews Drug Discovery.
[104] H. Markus,et al. Magnetic Resonance Imaging in Cerebral Small Vessel Disease and its Use as a Surrogate Disease Marker , 2011, International journal of stroke : official journal of the International Stroke Society.
[105] C. Gerloff,et al. Dynamics of Regional Distribution of Ischemic Lesions in Middle Cerebral Artery Trunk Occlusion Relates to Collateral Circulation , 2011, Journal of cerebral blood flow and metabolism : official journal of the International Society of Cerebral Blood Flow and Metabolism.
[106] Sophie Houngninou-Molango,et al. First in class, potent, and orally bioavailable NADPH oxidase isoform 4 (Nox4) inhibitors for the treatment of idiopathic pulmonary fibrosis. , 2010, Journal of medicinal chemistry.
[107] R. Rouhl,et al. Endothelial Activation in Lacunar Stroke Subtypes , 2010, Stroke.
[108] F. Crea,et al. Primary Coronary Microvascular Dysfunction: Clinical Presentation, Pathophysiology, and Management , 2010, Circulation.
[109] Kirsten Shuler,et al. A Systematic Review of Dynamic Cerebral and Peripheral Endothelial Function in Lacunar Stroke Versus Controls , 2010, Stroke.
[110] M. Joyner,et al. Aging Is Associated With Reduced Prostacyclin-Mediated Dilation in the Human Forearm , 2009, Hypertension.
[111] C. Sigmund,et al. Role of oxidative stress and AT1 receptors in cerebral vascular dysfunction with aging. , 2009, American journal of physiology. Heart and circulatory physiology.
[112] Michael G. Hennerici,et al. Results of the Stroke Prevention by Aggressive Reduction in Cholesterol Levels (SPARCL) Trial by Stroke Subtypes , 2009, Stroke.
[113] J. Pretnar-Oblak,et al. Statin treatment improves cerebral more than systemic endothelial dysfunction in patients with arterial hypertension. , 2008, American journal of hypertension.
[114] Vilmundur Gudnason,et al. Retinal and Cerebral Microvascular Signs and Diabetes , 2008, Diabetes.
[115] M. Delp,et al. Aging Reduces Skeletal Blood Flow, Endothelium‐Dependent Vasodilation, and NO Bioavailability in Rats , 2007, Journal of bone and mineral research : the official journal of the American Society for Bone and Mineral Research.
[116] F. Crea,et al. Coronary microvascular dysfunction. , 2013, The New England journal of medicine.
[117] M. Robson,et al. Evidence for Microvascular Dysfunction in Hypertrophic Cardiomyopathy: New Insights From Multiparametric Magnetic Resonance Imaging , 2007, Circulation.
[118] B. Jani,et al. Ageing and vascular ageing , 2006, Postgraduate Medical Journal.
[119] J. O'Brien,et al. White Matter Lesions in an Unselected Cohort of the Elderly: Molecular Pathology Suggests Origin From Chronic Hypoperfusion Injury , 2006, Stroke.
[120] L. Truong,et al. Loss of nitric oxide and endothelial-derived hyperpolarizing factor-mediated responses in aging. , 2005, Kidney international.
[121] C. Enzinger,et al. Markers of Endothelial and Hemostatic Activation and Progression of Cerebral White Matter Hyperintensities: Longitudinal Results of the Austrian Stroke Prevention Study , 2005, Stroke.
[122] P. Ganz,et al. Role of Endothelial Dysfunction in Atherosclerosis , 2004, Circulation.
[123] R. Vos,et al. Experimental cerebral hypoperfusion induces white matter injury and microglial activation in the rat brain , 2004, Acta Neuropathologica.
[124] H. Shibasaki,et al. Chronic cerebral hypoperfusion induces white matter lesions and loss of oligodendroglia with DNA fragmentation in the rat , 2003, Acta Neuropathologica.
[125] J. O'Brien,et al. Hyperintensities and Fronto-Subcortical Atrophy on MRI Are Substrates of Mild Cognitive Deficits after Stroke , 2003, Dementia and Geriatric Cognitive Disorders.
[126] Tw. MRC/BHF Heart Protection Study of antioxidant vitamin supplementation in 20 536 high-risk individuals: a randomised placebo-controlled trial , 2002, The Lancet.
[127] W. Jagust,et al. Neuropathologic Substrates of Ischemic Vascular Dementia , 2000, Journal of neuropathology and experimental neurology.
[128] S. Higano,et al. Long-term L-arginine supplementation improves small-vessel coronary endothelial function in humans. , 1998, Circulation.
[129] M S Mega,et al. Frontal-subcortical circuits and neuropsychiatric disorders. , 1994, The Journal of neuropsychiatry and clinical neurosciences.
[130] A Brun,et al. CORRELATIONS BETWEEN HISTOPATHOLOGIC WHITE MATTER CHANGES AND PROTON MR RELAXATION TIMES IN DEMENTIA , 1987, Alzheimer disease and associated disorders.
[131] C. N. Gamble. The pathogenesis of hyaline arteriolosclerosis. , 1986, The American journal of pathology.