Cardiovascular Disease Management in the Context of Global Crisis
1. COVID-19 and Cardiovascular Diseases
2. Best Medical Treatments for Peripheral Artery Disease and Chronic Heart Failure
3. Advances in Interventional/Surgical Treatment
Author Contributions
Funding
Conflicts of Interest
References
- Núñez, A.; Sreeganga, S.D.; Arkalgud, R. Access to Healthcare during COVID-19. Int J. Env. Res. Public Health 2021, 18, 2980. [Google Scholar] [CrossRef] [PubMed]
- Varga, Z.; Flammer, A.J.; Steiger, P.; Haberecker, M.; Andermatt, R.; Zinkernagel, A.S.; Mehra, M.R.; Schuepbach, R.A.; Ruschitzka, F.; Moch, H. Endothelial cell infection and endotheliitis in COVID-19. Lancet 2020, 395, 1417–1418. [Google Scholar] [CrossRef] [PubMed]
- Huertas, A.; Montani, D.; Savale, L.; Pichon, J.; Tu, L.; Parent, F.; Guignabert, C.; Humbert, M. Endothelial cell dysfunction: A major player in SARS-CoV-2 infection (COVID-19)? Eur. Respir. J. 2020, 56, 2001634. [Google Scholar] [CrossRef] [PubMed]
- Wadowski, P.P.; Jilma, B.; Kopp, C.W.; Ertl, S.; Gremmel, T.; Koppensteiner, R. Glycocalyx as Possible Limiting Factor in COVID-19. Front. Immunol. 2021, 12, 607306. [Google Scholar] [CrossRef] [PubMed]
- Evans, P.C.; Rainger, G.E.; Mason, J.C.; Guzik, T.J.; Osto, E.; Stamataki, Z.; Neil, D.; Hoefer, I.E.; Fragiadaki, M.; Waltenberger, J.; et al. Endothelial dysfunction in COVID-19: A position paper of the ESC Working Group for Atherosclerosis and Vascular Biology, and the ESC Council of Basic Cardiovascular Science. Cardiovasc. Res. 2020, 116, 2177–2184. [Google Scholar] [CrossRef]
- Kim, Y.-H.; Nijst, P.; Kiefer, K.; Tang, W.H.W. Endothelial Glycocalyx as Biomarker for Cardiovascular Diseases: Mechanistic and Clinical Implications. Curr. Heart Fail. Rep. 2017, 14, 117–126. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Wadowski, P.P.; Hulsmann, M.; Schorgenhofer, C.; Lang, I.M.; Wurm, R.; Gremmel, T.; Koppensteiner, R.; Steinlechner, B.; Schwameis, M.; Jilma, B. Sublingual functional capillary rarefaction in chronic heart failure. Eur J. Clin. Investig. 2018, 48, e12869. [Google Scholar] [CrossRef]
- Wadowski, P.P.; Steinlechner, B.; Zimpfer, D.; Schlöglhofer, T.; Schima, H.; Hülsmann, M.; Lang, I.M.; Gremmel, T.; Koppensteiner, R.; Zehetmayer, S.; et al. Functional capillary impairment in patients with ventricular assist devices. Sci. Rep. 2019, 9, 5909. [Google Scholar] [CrossRef] [Green Version]
- Gerotziafas, G.T.; Catalano, M.; Colgan, M.-P.; Pecsvarady, Z.; Wautrecht, J.C.; Fazeli, B.; Olinic, D.M.; Farkas, K.; Elalamy, I.; Falanga, A.; et al. Guidance for the Management of Patients with Vascular Disease or Cardiovascular Risk Factors and COVID-19: Position Paper from VAS-European Independent Foundation in Angiology/Vascular Medicine. Thromb. Haemost. 2020, 120, 1597–1628. [Google Scholar]
- Wadowski, P.P.; Kautzky-Willer, A.; Gremmel, T.; Koppensteiner, R.; Wolf, P.; Ertl, S.; Weikert, C.; Schörgenhofer, C.; Jilma, B. Sublingual microvasculature in diabetic patients. Microvasc Res. 2020, 129, 103971. [Google Scholar] [CrossRef]
- Wadowski, P.P.; Schörgenhofer, C.; Rieder, T.; Ertl, S.; Pultar, J.; Serles, W.; Sycha, T.; Mayer, F.; Koppensteiner, R.; Gremmel, T.; et al. Microvascular rarefaction in patients with cerebrovascular events. Microvasc Res. 2022, 140, 104300. [Google Scholar] [CrossRef] [PubMed]
- Xu, J.; Xiao, W.; Liang, X.; Shi, L.; Zhang, P.; Wang, Y.; Wang, Y.; Yang, H. A meta-analysis on the risk factors adjusted association between cardiovascular disease and COVID-19 severity. BMC Public Health 2021, 21, 1533. [Google Scholar] [CrossRef] [PubMed]
- Chakinala, R.C.; Shah, C.D.; Rakholiya, J.H.; Martin, M.; Kaur, N.; Singh, H.; Okafor, T.L.; Nwodika, C.; Raval, P.; Yousuf, S.; et al. COVID-19 Outcomes Amongst Patients With Pre-existing Cardiovascular Disease and Hypertension. Cureus 2021, 13, e13420. [Google Scholar] [CrossRef] [PubMed]
- Bellosta, R.; Luzzani, L.; Natalini, G.; Pegorer, M.A.; Attisani, L.; Cossu, L.G.; Ferrandina, C.; Fossati, A.; Conti, E.; Bush, R.L.; et al. Acute limb ischemia in patients with COVID-19 pneumonia. J. Vasc Surg 2020, 72, 1864–1872. [Google Scholar] [CrossRef] [PubMed]
- Siripanthong, B.; Asatryan, B.; Hanff, T.C.; Chatha, S.R.; Khanji, M.Y.; Ricci, F.; Muser, D.; Ferrari, V.A.; Nazarian, S.; Santangeli, P.; et al. The Pathogenesis and Long-Term Consequences of COVID-19 Cardiac Injury. J. Am. Coll. Cardiol. Basic Trans. Sci. 2022, 7, 294–308. [Google Scholar] [CrossRef] [PubMed]
- Middleton, E.A.; He, X.-Y.; Denorme, F.; Campbell, R.A.; Ng, D.; Salvatore, S.P.; Mostyka, M.; Baxter-Stoltzfus, A.; Borczuk, A.C.; Loda, M.; et al. Neutrophil extracellular traps contribute to immunothrombosis in COVID-19 acute respiratory distress syndrome. Blood 2020, 136, 1169–1179. [Google Scholar] [CrossRef]
- Maier, C.L.; Truong, A.D.; Auld, S.C.; Polly, D.M.; Tanksley, C.-L.; Duncan, A. COVID-19-associated hyperviscosity: A link between inflammation and thrombophilia? Lancet 2020, 395, 1758–1759. [Google Scholar] [CrossRef]
- Østergaard, L. SARS-CoV-2 related microvascular damage and symptoms during and after COVID-19: Consequences of capillary transit-time changes, tissue hypoxia and inflammation. Physiol. Rep. 2021, 9, e14726. [Google Scholar] [CrossRef]
- Pellegrini, D.; Kawakami, R.; Guagliumi, G.; Sakamoto, A.; Kawai, K.; Gianatti, A.; Nasr, A.; Kutys, R.; Guo, L.; Cornelissen, A.; et al. Microthrombi as a Major Cause of Cardiac Injury in COVID-19. Circulation 2021, 143, 1031–1042. [Google Scholar] [CrossRef]
- Wagner, D.D.; Heger, L.A. Thromboinflammation: From Atherosclerosis to COVID-19. Arterioscler. Thromb. Vasc. Biol. 2022, 42, 1103–1112. [Google Scholar] [CrossRef]
- Zheng, M.; Karki, R.; Williams, E.P.; Yang, D.; Fitzpatrick, E.; Vogel, P.; Jonsson, C.B.; Kanneganti, T.-D. TLR2 senses the SARS-CoV-2 envelope protein to produce inflammatory cytokines. Nat. Immunol. 2021, 22, 829–838. [Google Scholar] [CrossRef]
- Kasiri, M.M.; Mittlboek, M.; Giurgea, G.-A.; Fortner, N.; Lirk, P.; Eilenberg, W.; Gollackner, B.; Neumayer, C. Peripheral Artery Disease Causes More Harm to Patients than COVID-19. Healthcare 2022, 10, 1809. [Google Scholar] [CrossRef] [PubMed]
- Nadarajah, R.; Wu, J.; Hurdus, B.; Asma, S.; Bhatt, D.L.; Biondi-Zoccai, G.; Mehta, L.S.; Ram, C.V.S.; Ribeiro, A.L.P.; Van Spall, H.G.C.; et al. The collateral damage of COVID-19 to cardiovascular services: A meta-analysis. Eur. Heart J. 2022, 43, 3164–3178. [Google Scholar] [CrossRef] [PubMed]
- Berger, E.; Winkelmann, J.; Eckhardt, H.; Nimptsch, U.; Panteli, D.; Reichebner, C.; Rombey, T.; Busse, R. A country-level analysis comparing hospital capacity and utilisation during the first COVID-19 wave across Europe. Health Policy 2022, 126, 373–381. [Google Scholar] [CrossRef] [PubMed]
- Verdonk, F.; Zacharowski, K.; Ahmed, A.; Orliaguet, G.; Pottecher, J. A multifaceted approach to intensive care unit capacity. Lancet Public Health 2021, 6, e448. [Google Scholar] [CrossRef] [PubMed]
- Martins-Gonçalves, R.; Campos, M.M.; Palhinha, L.; Azevedo-Quintanilha, I.G.; Abud Mendes, M.; Ramos Temerozo, J.; Toledo-Mendes, J.; Rosado-de-Castro, P.H.; Bozza, F.A.; Souza Rodrigues, R.; et al. Persisting Platelet Activation and Hyperactivity in COVID-19 Survivors. Circ. Res. 2022, 131, 944–947. [Google Scholar] [CrossRef] [PubMed]
- Satterfield, B.A.; Bhatt, D.L.; Gersh, B.J. Cardiac involvement in the long-term implications of COVID-19. Nat. Rev. Cardiol. 2022, 19, 332–341. [Google Scholar] [CrossRef]
- Xie, Y.; Xu, E.; Bowe, B.; Al-Aly, Z. Long-term cardiovascular outcomes of COVID-19. Nat. Med. 2022, 28, 583–590. [Google Scholar] [CrossRef]
- Sollini, M.; Ciccarelli, M.; Cecconi, M.; Aghemo, A.; Morelli, P.; Gelardi, F.; Chiti, A. Vasculitis changes in COVID-19 survivors with persistent symptoms: An [18F]FDG-PET/CT study. Eur. J. Nucl. Med. Mol. Imaging 2021, 48, 1460–1466. [Google Scholar] [CrossRef]
- Gao, Y.-P.; Zhou, W.; Huang, P.-N.; Liu, H.-Y.; Bi, X.-J.; Zhu, Y.; Sun, J.; Tang, Q.-Y.; Li, L.; Zhang, J.; et al. Persistent Endothelial Dysfunction in Coronavirus Disease-2019 Survivors Late After Recovery. Front. Med. 2022, 9, 809033. [Google Scholar] [CrossRef]
- Petersen, E.L.; Goßling, A.; Adam, G.; Aepfelbacher, M.; Behrendt, C.-A.; Cavus, E.; Cheng, B.; Fischer, N.; Gallinat, J.; Kühn, S.; et al. Multi-organ assessment in mainly non-hospitalized individuals after SARS-CoV-2 infection: The Hamburg City Health Study COVID programme. Eur. Heart J. 2022, 43, 1124–1137. [Google Scholar] [CrossRef] [PubMed]
- Rossouw, T.M.; Anderson, R.; Manga, P.; Feldman, C. Emerging Role of Platelet-Endothelium Interactions in the Pathogenesis of Severe SARS-CoV-2 Infection-Associated Myocardial Injury. Front. Immunol. 2022, 13, 776861. [Google Scholar] [CrossRef] [PubMed]
- Vlagopoulos, P.T.; Tighiouart, H.; Weiner, D.E.; Griffith, J.; Pettitt, D.; Salem, D.N.; Levey, A.S.; Sarnak, M.J. Anemia as a Risk Factor for Cardiovascular Disease and All-Cause Mortality in Diabetes: The Impact of Chronic Kidney Disease. J. Am. Soc. Nephrol. 2005, 16, 3403. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Giustino, G.; Kirtane, A.J.; Baber, U.; Genereux, P.; Witzenbichler, B.; Neumann, F.J.; Weisz, G.; Maehara, A.; Rinaldi, M.J.; Metzger, C.; et al. Impact of Anemia on Platelet Reactivity and Ischemic and Bleeding Risk: From the Assessment of Dual Antiplatelet Therapy with Drug-Eluting Stents Study. Am. J. Cardiol. 2016, 117, 1877–1883. [Google Scholar] [CrossRef]
- Wadowski, P.P.; Kopp, C.W.; Koppensteiner, R.; Lang, I.M.; Pultar, J.; Lee, S.; Weikert, C.; Panzer, S.; Gremmel, T. Decreased platelet inhibition by P2Y12 receptor blockers in anaemia. Eur. J. Clin. Investig. 2018, 48, 2861. [Google Scholar] [CrossRef] [PubMed]
- Balzanelli, M.G.; Distratis, P.; Dipalma, G.; Vimercati, L.; Inchingolo, A.D.; Lazzaro, R.; Aityan, S.K.; Maggiore, M.E.; Mancini, A.; Laforgia, R.; et al. SARS-CoV-2 Virus Infection May Interfere CD34+ Hematopoietic Stem Cells and Megakaryocyte–Erythroid Progenitors Differentiation Contributing to Platelet Defection towards Insurgence of Thrombocytopenia and Thrombophilia. Microorganisms 2021, 9, 1632. [Google Scholar] [CrossRef] [PubMed]
- Jha, M.; Tak, M.L.; Gupta, R.; Sharma, P.; Rajpurohit, V.; Mathur, P.; Gaur, N. Relationship of anemia with COVID-19 deaths: A retrospective cross-sectional study. J. Anaesthesiol. Clin. Pharmacol. 2022, 38 (Suppl. 1), S115–S119. [Google Scholar]
- Zuin, M.; Rigatelli, G.; Quadretti, L.; Fogato, L.; Zuliani, G.; Roncon, L. Prognostic Role of Anemia in COVID-19 Patients: A Meta-Analysis. Infect. Dis. Rep. 2021, 13, 85. [Google Scholar] [CrossRef]
- Aboyans, V.; Ricco, J.B.; Bartelink, M.E.L.; Bjorck, M.; Brodmann, M.; Cohnert, T.; Collet, J.P.; Czerny, M.; De Carlo, M.; Debus, S.; et al. 2017 ESC Guidelines on the Diagnosis and Treatment of Peripheral Arterial Diseases, in collaboration with the European Society for Vascular Surgery (ESVS): Document covering atherosclerotic disease of extracranial carotid and vertebral, mesenteric, renal, upper and lower extremity arteriesEndorsed by: The European Stroke Organization (ESO)The Task Force for the Diagnosis and Treatment of Peripheral Arterial Diseases of the European Society of Cardiology (ESC) and of the European Society for Vascular Surgery (ESVS). Eur. Heart J. 2018, 39, 763–816. [Google Scholar] [CrossRef] [Green Version]
- Frank, U.; Nikol, S.; Belch, J.; Boc, V.; Brodmann, M.; Carpentier, P.H.; Chraim, A.; Canning, C.; Dimakakos, E.; Gottsäter, A.; et al. ESVM Guideline on peripheral arterial disease. VASA 2019, 48 (Suppl. 102), 1–79. [Google Scholar] [CrossRef] [Green Version]
- Mach, F.; Baigent, C.; Catapano, A.L.; Koskinas, K.C.; Casula, M.; Badimon, L.; Chapman, M.J.; De Backer, G.G.; Delgado, V.; Ference, B.A.; et al. 2019 ESC/EAS Guidelines for the management of dyslipidaemias: Lipid modification to reduce cardiovascular risk: The Task Force for the management of dyslipidaemias of the European Society of Cardiology (ESC) and European Atherosclerosis Society (EAS). Eur. Heart J. 2020, 41, 111–188. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Eikelboom, J.W.; Connolly, S.J.; Bosch, J.; Dagenais, G.R.; Hart, R.G.; Shestakovska, O.; Diaz, R.; Alings, M.; Lonn, E.M.; Anand, S.S.; et al. Rivaroxaban with or without Aspirin in Stable Cardiovascular Disease. N. Engl. J. Med. 2017, 377, 1319–1330. [Google Scholar] [CrossRef] [PubMed]
- Anand, S.S.; Bosch, J.; Eikelboom, J.W.; Connolly, S.J.; Diaz, R.; Widimsky, P.; Aboyans, V.; Alings, M.; Kakkar, A.K.; Keltai, K.; et al. Rivaroxaban with or without aspirin in patients with stable peripheral or carotid artery disease: An international, randomised, double-blind, placebo-controlled trial. Lancet 2018, 391, 219–229. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Bonaca, M.P.; Bauersachs, R.M.; Anand, S.S.; Debus, E.S.; Nehler, M.R.; Patel, M.R.; Fanelli, F.; Capell, W.H.; Diao, L.; Jaeger, N.; et al. Rivaroxaban in Peripheral Artery Disease after Revascularization. N. Engl. J. Med. 2020, 382, 1994–2004. [Google Scholar] [CrossRef] [PubMed]
- Perera, D.; Clayton, T.; O’Kane, P.D.; Greenwood, J.P.; Weerackody, R.; Ryan, M.; Morgan, H.P.; Dodd, M.; Evans, R.; Canter, R.; et al. Percutaneous Revascularization for Ischemic Left Ventricular Dysfunction. N. Engl. J. Med 2022, 387, 1351–1360. [Google Scholar] [CrossRef]
- McDonagh, T.A.; Metra, M.; Adamo, M.; Gardner, R.S.; Baumbach, A.; Böhm, M.; Burri, H.; Butler, J.; Čelutkienė, J.; Chioncel, O.; et al. 2021 ESC Guidelines for the diagnosis and treatment of acute and chronic heart failure: Developed by the Task Force for the diagnosis and treatment of acute and chronic heart failure of the European Society of Cardiology (ESC) With the special contribution of the Heart Failure Association (HFA) of the ESC. Eur. Heart J. 2021, 42, 3599–3726. [Google Scholar] [CrossRef] [PubMed]
- Anker, S.D.; Butler, J.; Filippatos, G.; Ferreira, J.P.; Bocchi, E.; Böhm, M.; Brunner–La Rocca, H.-P.; Choi, D.-J.; Chopra, V.; Chuquiure-Valenzuela, E.; et al. Empagliflozin in Heart Failure with a Preserved Ejection Fraction. N. Engl. J. Med. 2021, 385, 1451–1461. [Google Scholar] [CrossRef] [PubMed]
- Solomon, S.D.; McMurray, J.J.V.; Claggett, B.; de Boer, R.A.; DeMets, D.; Hernandez, A.F.; Inzucchi, S.E.; Kosiborod, M.N.; Lam, C.S.P.; Martinez, F.; et al. Dapagliflozin in Heart Failure with Mildly Reduced or Preserved Ejection Fraction. N. Engl. J. Med. 2022, 12, 1089–1098. [Google Scholar] [CrossRef]
- Kirtane, A.J. REVIVE-ing a Weak Heart—Details Matter. N. Engl. J. Med. 2022, 387, 1426–1427. [Google Scholar] [CrossRef]
- Ibanez, B.; James, S.; Agewall, S.; Antunes, M.J.; Bucciarelli-Ducci, C.; Bueno, H.; Caforio, A.L.P.; Crea, F.; Goudevenos, J.A.; Halvorsen, S.; et al. 2017 ESC Guidelines for the management of acute myocardial infarction in patients presenting with ST-segment elevation: The Task Force for the management of acute myocardial infarction in patients presenting with ST-segment elevation of the European Society of Cardiology (ESC). Eur. Heart J. 2018, 39, 119–177. [Google Scholar] [CrossRef] [Green Version]
- Collet, J.-P.; Thiele, H.; Barbato, E.; Barthélémy, O.; Bauersachs, J.; Bhatt, D.L.; Dendale, P.; Dorobantu, M.; Edvardsen, T.; Folliguet, T.; et al. 2020 ESC Guidelines for the management of acute coronary syndromes in patients presenting without persistent ST-segment elevation: The Task Force for the management of acute coronary syndromes in patients presenting without persistent ST-segment elevation of the European Society of Cardiology (ESC). Eur. Heart J. 2021, 42, 1289–1367. [Google Scholar] [CrossRef] [PubMed]
- Tonino, P.A.L.; de Bruyne, B.; Pijls, N.H.J.; Siebert, U.; Ikeno, F.; van ‘t Veer, M.; Klauss, V.; Manoharan, G.; Engstrøm, T.; Oldroyd, K.G.; et al. Fractional Flow Reserve versus Angiography for Guiding Percutaneous Coronary Intervention. N. Engl. J. Med. 2009, 360, 213–224. [Google Scholar] [CrossRef] [PubMed]
- Boden, W.E.; O’Rourke, R.A.; Teo, K.K.; Hartigan, P.M.; Maron, D.J.; Kostuk, W.J.; Knudtson, M.; Dada, M.; Casperson, P.; Harris, C.L.; et al. Optimal Medical Therapy with or without PCI for Stable Coronary Disease. N. Engl. J. Med. 2007, 356, 1503–1516. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Fearon, W.F.; Zimmermann, F.M.; de Bruyne, B.; Piroth, Z.; van Straten, A.H.M.; Szekely, L.; Davidavičius, G.; Kalinauskas, G.; Mansour, S.; Kharbanda, R.; et al. Fractional Flow Reserve–Guided PCI as Compared with Coronary Bypass Surgery. N. Engl. J. Med. 2021, 386, 128–137. [Google Scholar] [CrossRef] [PubMed]
- Velazquez, E.J.; Lee, K.L.; Jones, R.H.; Al-Khalidi, H.R.; Hill, J.A.; Panza, J.A.; Michler, R.E.; Bonow, R.O.; Doenst, T.; Petrie, M.C.; et al. Coronary-Artery Bypass Surgery in Patients with Ischemic Cardiomyopathy. N. Engl. J. Med. 2016, 374, 1511–1520. [Google Scholar] [CrossRef]
- Giannopoulos, S.; Varcoe, R.L.; Lichtenberg, M.; Rundback, J.; Brodmann, M.; Zeller, T.; Schneider, P.A.; Armstrong, E.J. Balloon Angioplasty of Infrapopliteal Arteries: A Systematic Review and Proposed Algorithm for Optimal Endovascular Therapy. J. Endovasc. 2020, 27, 547–564. [Google Scholar] [CrossRef]
- Brodmann, M.; Holden, A.; Zeller, T. Safety and Feasibility of Intravascular Lithotripsy for Treatment of Below-the-Knee Arterial Stenoses. J. Endovasc. 2018, 25, 499–503. [Google Scholar] [CrossRef] [Green Version]
- Khalili, H.; Jeon-Slaughter, H.; Armstrong, E.J.; Baskar, A.; Tejani, I.; Shammas, N.W.; Prasad, A.; Abu-Fadel, M.; Brilakis, E.S.; Banerjee, S. Atherectomy in below-the-knee endovascular interventions: One-year outcomes from the XLPAD registry. Catheter. Cardiovasc. Interv. 2019, 93, 488–493. [Google Scholar] [CrossRef]
- Zeller, T.; Baumgartner, I.; Scheinert, D.; Brodmann, M.; Bosiers, M.; Micari, A.; Peeters, P.; Vermassen, F.; Landini, M.; Snead, D.B.; et al. Drug-Eluting Balloon Versus Standard Balloon Angioplasty for Infrapopliteal Arterial Revascularization in Critical Limb Ischemia: 12-Month Results From the IN.PACT DEEP Randomized Trial. J. Am. Coll Cardiol 2014, 64, 1568–1576. [Google Scholar] [CrossRef]
- Spiliopoulos, S.; Kitrou, P.M.; Brountzos, E.N. Revisiting endovascular treatment in below-the-knee disease. Are drug-eluting stents the best option? World J. Cardiol. 2018, 10, 196–200. [Google Scholar] [CrossRef]
- Fusaro, M.; Dalla Paola, L.; Biondi-Zoccai, G. Pedal-plantar loop technique for a challenging below-the-knee chronic total occlusion: A novel approach to percutaneous revascularization in critical lower limb ischemia. J. Invasive Cardiol. 2007, 19, E34–E37. [Google Scholar] [PubMed]
- Harnek, J.; Zoucas, E.; Carlemalm, E.; Cwikiel, W. Differences in Endothelial Injury After Balloon Angioplasty, Insertion of Balloon-Expanded Stents or Release of Self-Expanding Stents: An Electron Microscopic Experimental Study. CardioVascular Interv. Radiol. 1999, 22, 56–61. [Google Scholar] [CrossRef]
- Varcoe, R.L.; Thomas, S.D.; Lennox, A.F. Three-Year Results of the Absorb Everolimus-Eluting Bioresorbable Vascular Scaffold in Infrapopliteal Arteries. J. Endovasc. 2018, 25, 694–701. [Google Scholar] [CrossRef] [PubMed]
- 5-Year Results from the ABSORB BTK Study: Bioresorbable Scaffolds for the Treatment of Tibial Artery Stenosis. Available online: https://www.hmpgloballearningnetwork.com/site/vdm/content/5-year-results-absorb-btk-study-bioresorbable-scaffolds-treatment-tibial-artery-stenosis (accessed on 1 October 2022).
- Kum, S.; Tan, Y.K.; Schreve, M.A.; Ferraresi, R.; Varcoe, R.L.; Schmidt, A.; Scheinert, D.; Mustapha, J.A.; Lim, D.M.; Ho, D.; et al. Midterm Outcomes From a Pilot Study of Percutaneous Deep Vein Arterialization for the Treatment of No-Option Critical Limb Ischemia. J. Endovasc. Ther. 2017, 24, 619–626. [Google Scholar] [CrossRef] [PubMed]
- Glikson, M.; Nielsen, J.C.; Kronborg, M.B.; Michowitz, Y.; Auricchio, A.; Barbash, I.M.; Barrabés, J.A.; Boriani, G.; Braunschweig, F.; Brignole, M.; et al. 2021 ESC Guidelines on cardiac pacing and cardiac resynchronization therapy: Developed by the Task Force on cardiac pacing and cardiac resynchronization therapy of the European Society of Cardiology (ESC) With the special contribution of the European Heart Rhythm Association (EHRA). Eur. Heart J. 2021, 42, 3427–3520. [Google Scholar] [CrossRef]
- Mehra, M.R.; Uriel, N.; Naka, Y.; Cleveland, J.C.; Yuzefpolskaya, M.; Salerno, C.T.; Walsh, M.N.; Milano, C.A.; Patel, C.B.; Hutchins, S.W.; et al. A Fully Magnetically Levitated Left Ventricular Assist Device—Final Report. N. Engl J. Med. 2019, 380, 1618–1627. [Google Scholar] [CrossRef] [PubMed]
- Heidenreich, P.A.; Bozkurt, B.; Aguilar, D.; Allen, L.A.; Byun, J.J.; Colvin, M.M.; Deswal, A.; Drazner, M.H.; Dunlay, S.M.; Evers, L.R.; et al. 2022 AHA/ACC/HFSA Guideline for the Management of Heart Failure: A Report of the American College of Cardiology/American Heart Association Joint Committee on Clinical Practice Guidelines. Circulation 2022, 145, e895–e1032. [Google Scholar] [CrossRef]
- Aboud, A.; Charitos, E.I.; Fujita, B.; Stierle, U.; Reil, J.-C.; Voth, V.; Liebrich, M.; Andreas, M.; Holubec, T.; Bening, C.; et al. Long-Term Outcomes of Patients Undergoing the Ross Procedure. J. Am. Coll. Cardiol. 2021, 77, 1412–1422. [Google Scholar] [CrossRef]
- El-Hamamsy, I.; Toyoda, N.; Itagaki, S.; Stelzer, P.; Varghese, R.; Williams, E.E.; Egorova, N.; Adams, D.H. Propensity-Matched Comparison of the Ross Procedure and Prosthetic Aortic Valve Replacement in Adults. J. Am. Coll. Cardiol. 2022, 79, 805–815. [Google Scholar] [CrossRef]
- Oeser, C.; Uyanik-Uenal, K.; Kocher, A.; Laufer, G.; Andreas, M. The Ross procedure in adult patients: A single-centre analysis of long-term results up to 28 years. Eur. J. Cardiothorac. Surg. 2022, 62, ezac379. [Google Scholar] [CrossRef]
- Makkar, R.R.; Thourani, V.H.; Mack, M.J.; Kodali, S.K.; Kapadia, S.; Webb, J.G.; Yoon, S.-H.; Trento, A.; Svensson, L.G.; Herrmann, H.C.; et al. Five-Year Outcomes of Transcatheter or Surgical Aortic-Valve Replacement. N. Engl. J. Med. 2020, 382, 799–809. [Google Scholar] [CrossRef] [PubMed]
- Hamid, N.; Ranard, L.S.; Khalique, O.K.; Hahn, R.T.; Nazif, T.M.; George, I.; Ng, V.; Leon, M.B.; Kodali, S.K.; Vahl, T.P. Commissural Alignment After Transfemoral Transcatheter Aortic Valve Replacement With the JenaValve Trilogy System. JACC Cardiovasc. Interv. 2021, 14, 2079–2081. [Google Scholar] [CrossRef] [PubMed]
- Andreas, M.; Mach, M.; Bartunek, A.; Goliasch, G.; Kellermair, J.; Grund, M.; Simon, P.; Damian, I.; Kerbel, T.; Zierer, A. Interventioneller Mitralklappenersatz. Med. Klin Intensiv. Notfmed. 2022, 117, 187–190. [Google Scholar] [CrossRef] [PubMed]
- Werner, P.; Russo, M.; Laufer, G.; Hengstenberg, C.; Kastner, J.; Andreas, M. Transcatheter mitral valve-in-valve implantation: Advanced intraprocedural imaging in challenging hybrid procedures. Multimed. Man. Cardiothorac. Surg. 2019, 2019. [Google Scholar] [CrossRef]
- Polanczyk, A.; Piechota-Polanczyk, A.; Huk, I.; Neumayer, C.; Balcer, J.; Strzelecki, M. Computational Fluid Dynamic Technique for Assessment of How Changing Character of Blood Flow and Different Value of Hct Influence Blood Hemodynamic in Dissected Aorta. Diagnostics 2021, 11, 1866. [Google Scholar] [CrossRef]
- Tyrrell, C.S.B.; Mytton, O.T.; Gentry, S.V.; Thomas-Meyer, M.; Allen, J.L.Y.; Narula, A.A.; McGrath, B.; Lupton, M.; Broadbent, J.; Ahmed, A.; et al. Managing intensive care admissions when there are not enough beds during the COVID-19 pandemic: A systematic review. Thorax 2021, 76, 302. [Google Scholar] [CrossRef]
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Wadowski, P.P.; Piechota-Polańczyk, A.; Andreas, M.; Kopp, C.W. Cardiovascular Disease Management in the Context of Global Crisis. Int. J. Environ. Res. Public Health 2023, 20, 689. https://doi.org/10.3390/ijerph20010689
Wadowski PP, Piechota-Polańczyk A, Andreas M, Kopp CW. Cardiovascular Disease Management in the Context of Global Crisis. International Journal of Environmental Research and Public Health. 2023; 20(1):689. https://doi.org/10.3390/ijerph20010689
Chicago/Turabian StyleWadowski, Patricia P., Aleksandra Piechota-Polańczyk, Martin Andreas, and Christoph W. Kopp. 2023. "Cardiovascular Disease Management in the Context of Global Crisis" International Journal of Environmental Research and Public Health 20, no. 1: 689. https://doi.org/10.3390/ijerph20010689
APA StyleWadowski, P. P., Piechota-Polańczyk, A., Andreas, M., & Kopp, C. W. (2023). Cardiovascular Disease Management in the Context of Global Crisis. International Journal of Environmental Research and Public Health, 20(1), 689. https://doi.org/10.3390/ijerph20010689