Klimchak, A.C., et al. 2020. Lipid treatment and goal attainment characteristics among persons with atherosclerotic cardiovascular disease in the United States. American Journal of Preventive Cardiology 1: 100010.
Article PubMed PubMed Central Google Scholar
Pahwa, R., and I. Jialal. 2023. Atherosclerosis StatPearls [Internet]. Treasure Island (FL): StatPearls Publishing.
Tsao, C.W., et al. 2023. Heart Disease and Stroke Statistics-2023 Update: A Report From the American Heart Association. Circulation 147 (8): 93–621.
National Heart, Lung, and Blood Institute. (2022). Atherosclerosis - What Is Atherosclerosis? Available from: https://www.nhlbi.nih.gov/health/atherosclerosis.
Ramella, M., G. Bertozzi, L. Fusaro, M. Talmon, M. Manfredi, M.C. Catoria, F. Casella, C.M. Porta, R. Boldorini, L.G. Fresu, E. Marengo, and F. Boccafoschi. 2019. Effect of Cyclic Stretch on Vascular Endothelial Cells and Abdominal Aortic Aneurysm (AAA): Role in the Inflammatory Response. International Journal of Molecular Sciences 20: 287.
Article PubMed PubMed Central Google Scholar
Wang, Y., C. Tang, J. Zhang, L. Li, J. Chen, and L. Wang. 2016. High shear stress induces atherosclerotic vulnerable plaque formation through angiogenesis. Regenerative Biomaterials 3 (4): 257–267.
Article PubMed PubMed Central Google Scholar
Caro, C.G., J.M. Fitz-Gerald, and R.C. Schroter. 1971. Atheroma and arterial wall shear: Observation, correlation and proposal of a shear-dependent mass transfer mechanism for atherogenesis. Proceedings of the Royal Society of London. Series B, Biological Sciences 177 (1046): 109–159.
Zhou, M., B. Liu, L. Wang, Y. Chen, J. Yang, and H. Liu. 2023. Wall shear stress and its role in atherosclerosis. Frontiers in Cardiovascular Medicine 10: 1083547.
Article CAS PubMed PubMed Central Google Scholar
Peiffer, V., S.J. Sherwin, and P.D. Weinberg. 2013. Does low and oscillatory wall shear stress correlate spatially with early atherosclerosis? A systematic review. Cardiovascular Research 99 (2): 242–250.
Article CAS PubMed Google Scholar
Jatwani, S., and I. Jialal. 2023. Vasculitis. StatPearls [Internet]. Treasure Island (FL): StatPearls Publishing.
Watts, R.A., D.G.I. Scott, P.A. Merkel, and S.Z. Aydin. 2022. Global epidemiology of vasculitis. Nature Reviews Rheumatology EpiHealth: Epidemiology for Health 18 (1): 22–34.
Shaw, P.M., and R.C. Gibbons. 2023. Abdominal Aortic Aneurysm. StatPearls [Internet]. Treasure Island (FL): StatPearls Publishing.
Jersey, A.M., and J.A. Freischlag. 2023. Cerebral Aneurysm StatPearls [Internet]. Treasure Island (FL): StatPearls Publishing.
Faiza, Z., & Suh, G. (2023). Thoracic Aorta Aneurysm. StatPearls [Internet]. Treasure Island (FL): StatPearls Publishing.
Dolan, J.M., J. Kolega, H. Meng, and A.E. Pender. 2014. High fluid shear stress and spatial shear stress gradients affect endothelial proliferation, survival, and alignment. Annals of Biomedical Engineering 39: 1620–1631.
Mitchell, P., Y. Lin, Z. Chen, and M. Walker. 2022. Engineering Vascular Bioreactor Systems to Closely Mimic Physiological Forces In Vitro. Tissue Engineering Part B: Reviews 28 (4): 254–272.
Rogal, J., M.K. Vickaryous, A. Bal-Price, S. Coecke, and P. Jennings. 2019. Stem-cell based organ-on-a-chip models for diabetes research. Advanced Drug Delivery Reviews 140: 101–128.
Article CAS PubMed Google Scholar
Chen, J., H. Lee, M. Kim, J. Park, and J. Han. 2022. Updated: Recent progress in in vitro models for atherosclerosis studies. Frontiers in Cardiovascular Medicine 8: 790529.
Article PubMed PubMed Central Google Scholar
Charoenphol, P., P.J. Oniskew, M. Carrasco-Teja, and O. Eniola-Adefeso. 2012. Particle-cell dynamics in human blood flow: Implications for vascular-targeted drug delivery. ClinicalKey.
Conde, C., Garcia, M., & Gurovich, A. (2021). Effects of exercise-induced endothelial cell shear stress on eNOS and nitrotyrosine expression in different sites of a bifurcated model. FASEB Journal 35.
Ji, J.Y., H. Jing, and S.L. Diamond. 2008. Hemodynamic regulation of inflammation at the endothelial-neutrophil interface. Annals of Biomedical Engineering 36 (4): 586–595.
Vozzi, F., M. Flaibani, A. Ahluwalia, and F. Boccafoschi. 2018. Computing of low shear stress-driven endothelial gene network involved in early stages of atherosclerotic process. BioMed Research International 2018: 5359830.
Article PubMed PubMed Central Google Scholar
Oweis, G.F. 2019. An in vitro flow model for cardiovascular inflammation. IEEE.
Amaya, R., A. Pierides, and J.M. Tarbell. 2015. The interaction between fluid wall shear stress and solid circumferential strain affects endothelial gene expression. PLoS ONE 10 (7): 1–18.
Chen, R., C. Wu, Y. Li, J. Liu, J. Huang, and W. Zhang. 2019. Gelatin-based perfusable, endothelial carotid artery model for the study of atherosclerosis. Biomedical Engineering Online 18 (1): 87.
Article PubMed PubMed Central Google Scholar
Jung, J.S., H.S. Park, J.K. Seo, and D.H. Shin. 2011. Analysis of pulsatile and nonpulsatile blood flow effects in different degrees of stenotic vasculature. Artificial Organs 35 (11): 1118–1123.
Ha, H., and S. Lee. 2014. Effect of pulsatile swirling flow on stenosed arterial blood flow. Medical Engineering & Physics 36 (9): 1106–1114.
Trigui, A., R. Faguer, Z. Bouzerda, and S. Sadok. 2021. Experimental and numerical investigation of pulsed flows in a severe aortic stenosed model. Medical Engineering & Physics 90: 33–42.
Seime, T., M. van Wanrooij, E. Karlöf, M. Kronqvist, S. Johansson, L. Matic, T.C. Gasser, and U. Hedin. 2022. Biomechanical Assessment of Macro-Calcification in Human Carotid Atherosclerosis and Its Impact on Smooth Muscle Cell Phenotype. Cells 11 (20): 3279.
Article CAS PubMed PubMed Central Google Scholar
Li, Y., S. Liu, Z. Zhang, Q. Xu, F. Xie, J. Wang, S. Ping, C. Li, Z. Wang, M. Zhang, J. Huang, D. Chen, L. Hu, and C. Li. 2012. RAGE Mediates Accelerated Diabetic Vein Graft Atherosclerosis Induced by Combined Mechanical Stress and AGEs via Synergistic ERK Activation. PLoS ONE 7 (4): e35016.
Article CAS PubMed PubMed Central Google Scholar
Gu, X., S. Xie, D. Hong, and Y. Ding. 2019. An in vitro model of foam cell formation induced by a stretchable microfluidic device. Scientific Reports 9 (1): 7461.
Article PubMed PubMed Central Google Scholar
Sivarapatna, A., et al. 2015. Arterial specification of endothelial cells derived from human induced pluripotent stem cells in a biomimetic flow bioreactor. Biomaterials 53: 621–633.
Article CAS PubMed PubMed Central Google Scholar
Hynes, W.F., M. Pepona, C. Robertson, J. Alvarado, K. Dubbin, M. Triplett, J.J. Adorno, A. Randles, and M.L. Moya. 2020. Examining metastatic behavior within 3D bioprinted vasculature for the validation of a 3D computational flow model. Science Advances 6: eabb3308.
Article CAS PubMed PubMed Central Google Scholar
Pisacano, N., McAdoo, S. P., Guck, J., Pusey, C. D., Chilvers, E. R., Cowburn, A. S., Lodge, K. M., & Prendecki, M. F. (2020). Biomechanical phenotype of circulating neutrophils is altered in ANCA associated vasculitis. Proceedings of Imperial College London.
Hentzen, E.R., S. Neelamegham, G.S. Kansas, J.A. Benanti, L.V. McIntire, C.W. Smith, and S.I. Simon. 2000. Sequential binding of CD11a/CD18 and CD11b/CD18 defines neutrophil capture and stable adhesion to intercellular adhesion molecule-1. Blood 95 (3): 911–920.
Article CAS PubMed Google Scholar
Hamik, A., Z. Lin, A. Kumar, M. Balcells, S. Sinha, J. Katz, M.W. Feinberg, R.E. Gerszten, E.R. Edelman, and M.K. Jain. 2007. Kruppel-like Factor 4 Regulates Endothelial Inflammation. The Journal of Biological Chemistry 282 (18): 13769–13779.
Article CAS PubMed Google Scholar
Itoh, M., K. Nakayama, R. Noguchi, K. Kamohara, K. Furukawa, K. Uchihashi, S. Toda, J. Oyama, K. Node, and S. Morita. 2015. Scaffold-Free Tubular Tissues Created by a Bio-3D Printer Undergo Remodeling and Endothelialization when Implanted in Rat Aortae. PLoS ONE 10 (9): e0136681.
Article PubMed PubMed Central Google Scholar
Maschhoff, P., S. Heene, A. Lavrentieva, T. Hentrop, C. Leibold, M.-N. Wahalla, N. Stanislawski, H. Blume, T. Scheper, and C. Blume. 2017. An intelligent bioreactor system for the cultivation of a bioartificial vascular graft. Engineering in Life Sciences 17 (5): 567–578.
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