The degeneration of biological cardiovascular prostheses under pro-calcific metabolic conditions in a small animal model

Biomaterials - Tập 35 - Trang 7416-7428 - 2014
Alexander Assmann1, Kai Zwirnmann1, Friederike Heidelberg1, Franziska Schiffer1, Kim Horstkötter1, Hiroshi Munakata1, Felix Gremse2, Mareike Barth1, Artur Lichtenberg1, Payam Akhyari1
1Department of Cardiovascular Surgery and Research Group for Experimental Surgery, Heinrich Heine University, Medical Faculty, Moorenstrasse 5, Duesseldorf 40225, Germany
2Department of Experimental Molecular Imaging, RWTH-Aachen University, Medical Faculty, Pauwelsstr. 30, Aachen D-52074, Germany

Tài liệu tham khảo

Schoen, 2005, Calcification of tissue heart valve substitutes: progress toward understanding and prevention, Ann Thorac Surg, 79, 1072, 10.1016/j.athoracsur.2004.06.033 Akhyari, 2010, In vivo functional performance and structural maturation of decellularised allogenic aortic valves in the subcoronary position, Eur J Cardiothorac Surg, 38, 539, 10.1016/j.ejcts.2010.03.024 Baraki, 2009, Orthotopic replacement of the aortic valve with decellularized allograft in a sheep model, Biomaterials, 30, 6240, 10.1016/j.biomaterials.2009.07.068 da Costa, 2010, The early and midterm function of decellularized aortic valve allografts, Ann Thorac Surg, 90, 1854, 10.1016/j.athoracsur.2010.08.022 Zehr, 2005, Aortic root replacement with a novel decellularized cryopreserved aortic homograft: postoperative immunoreactivity and early results, J Thorac Cardiovasc Surg, 130, 1010, 10.1016/j.jtcvs.2005.03.044 Schoen, 2008, Evolving concepts of cardiac valve dynamics: the continuum of development, functional structure, pathobiology, and tissue engineering, Circulation, 118, 1864, 10.1161/CIRCULATIONAHA.108.805911 Assmann, 2012, Development of a growing rat model for the in vivo assessment of engineered aortic conduits, J Surg Res, 176, 367, 10.1016/j.jss.2011.10.009 Assmann, 2013, Acceleration of autologous in vivo recellularization of decellularized aortic conduits by fibronectin surface coating, Biomaterials, 34, 6015, 10.1016/j.biomaterials.2013.04.037 Munakata, 2013, Aortic conduit valve-model with controlled moderate aortic regurgitation in rats: a technical modification to improve short- and long-term outcome and to increase the functional results, Circ J, 77, 2295, 10.1253/circj.CJ-12-1439 Tang, 2006, Hypercholesterolemia accelerates vascular calcification induced by excessive vitamin D via oxidative stress, Calcif Tissue Int, 79, 326, 10.1007/s00223-006-0004-8 Drolet, 2008, Development of aortic valve sclerosis or stenosis in rabbits: role of cholesterol and calcium, J Heart Valve Dis, 17, 381 Ngo, 2008, Vitamin D(2) supplementation induces the development of aortic stenosis in rabbits: interactions with endothelial function and thioredoxin-interacting protein, Eur J Pharmacol, 590, 290, 10.1016/j.ejphar.2008.05.051 Hoshina, 2012, Determinants of progression of aortic valve stenosis and outcome of adverse events in hemodialysis patients, J Cardiol, 59, 78 Linefsky, 2011, Association of serum phosphate levels with aortic valve sclerosis and annular calcification: the cardiovascular health study, J Am Coll Cardiol, 58, 291, 10.1016/j.jacc.2010.11.073 Kunjachan, 2013, Noninvasive optical imaging of nanomedicine biodistribution, ACS Nano, 7, 252, 10.1021/nn303955n Gremse, 2011, Qualitative and quantitative data analysis, 363 Wang, 2001, Expression of metalloproteinases and its inhibitor in later stage of rabbit neointima development, Int J Mol Med, 7, 105 Li, 1996, Increased expression of 72-kD type IV collagenase (MMP2) in human aortic atherosclerotic lesions, Am J Pathol, 148, 121 Loftus, 2000, Increased matrix metalloproteinase-9 activity in unstable carotid plaques. A potential role in acute plaque disruption, Stroke, 31, 40, 10.1161/01.STR.31.1.40 Krishnamurthy, 2012, Maladaptive matrix remodeling and regional biomechanical dysfunction in a mouse model of aortic valve disease, Matrix Biol, 31, 197, 10.1016/j.matbio.2012.01.001 Perrotta, 2011, New evidence for a critical role of elastin in calcification of native heart valves: immunohistochemical and ultrastructural study with literature review, Histopathology, 59, 504, 10.1111/j.1365-2559.2011.03977.x Hakuno, 2010, Periostin advances atherosclerotic and rheumatic cardiac valve degeneration by inducing angiogenesis and MMP production in humans and rodents, J Clin Invest, 120, 2292, 10.1172/JCI40973 Joghetaei, 2011, Extracellular matrix metalloproteinase inducer (CD147) and membrane type 1-matrix metalloproteinase are expressed on tissue macrophages in calcific aortic stenosis and induce transmigration in an artificial valve model, J Thorac Cardiovasc Surg, 142, 191, 10.1016/j.jtcvs.2010.09.051 Vyavahare, 2000, Inhibition of matrix metalloproteinase activity attenuates tenascin-C production and calcification of implanted purified elastin in rats, Am J Pathol, 157, 885, 10.1016/S0002-9440(10)64602-0 Bailey, 2004, Involvement of matrix metalloproteinases and tenascin-C in elastin calcification, Cardiovasc Pathol, 13, 146, 10.1016/S1054-8807(04)00009-2 Rajamannan, 2010, Mechanisms of aortic valve calcification: the LDL-density-radius theory: a translation from cell signaling to physiology, Am J Physiol Heart Circ Physiol, 298, H5, 10.1152/ajpheart.00824.2009 Togashi, 2008, Comparative study of calcified changes in aortic valvular diseases, J Nippon Med Sch, 75, 138, 10.1272/jnms.75.138 Kennedy, 2009, Inhibition of calcifying nodule formation in cultured porcine aortic valve cells by nitric oxide donors, Eur J Pharmacol, 602, 28, 10.1016/j.ejphar.2008.11.029 Sverdlov, 2012, Determinants of aortic sclerosis progression: implications regarding impairment of nitric oxide signalling and potential therapeutics, Eur Heart J, 33, 2419, 10.1093/eurheartj/ehs171 Ross, 1999, Atherosclerosis–an inflammatory disease, N Engl J Med, 340, 115, 10.1056/NEJM199901143400207 Zhang, 2008, Mechanisms of intimal hyperplasia learned from a murine carotid artery ligation model, Curr Vasc Pharmacol, 6, 37, 10.2174/157016108783331321 New, 2013, Macrophage-derived matrix vesicles: an alternative novel mechanism for microcalcification in atherosclerotic plaques, Circ Res, 113, 72, 10.1161/CIRCRESAHA.113.301036 Hjortnaes, 2010, Arterial and aortic valve calcification inversely correlates with osteoporotic bone remodelling: a role for inflammation, Eur Heart J, 31, 1975, 10.1093/eurheartj/ehq237 Coté, 2013, Inflammation is associated with the remodeling of calcific aortic valve disease, Inflammation, 36, 573, 10.1007/s10753-012-9579-6 O'Brien, 1996, Apolipoproteins B, and E accumulate in the morphologically early lesion of 'degenerative' valvular aortic stenosis, Arterioscler Thromb Vasc Biol, 16, 523, 10.1161/01.ATV.16.4.523 Shuvy, 2008, Uraemic hyperparathyroidism causes a reversible inflammatory process of aortic valve calcification in rats, Cardiovasc Res, 79, 492, 10.1093/cvr/cvn088 Hekimian, 2009, High-cholesterol + vitamin D2 regimen: a questionable in-vivo experimental model of aortic valve stenosis, J Heart Valve Dis, 18, 152 Butcher, 2008, Mechanobiology of the aortic heart valve, J Heart Valve Dis, 17, 62 Gould, 2013, Hemodynamic and cellular response feedback in calcific aortic valve disease, Circ Res, 113, 186, 10.1161/CIRCRESAHA.112.300154 Lehoux, 2006, Molecular mechanisms of the vascular responses to haemodynamic forces, J Intern Med, 259, 381, 10.1111/j.1365-2796.2006.01624.x Brockbank, 2004, Morphological analyses of ice-free and frozen cryopreserved heart valve explants, J Heart Valve Dis, 13, 297 Ikonen, 2000, Multidimensional assessment of graft vascular disease (GVD) in aortic grafts by serial intravascular ultrasound in rhesus monkeys, Transplantation, 70, 420, 10.1097/00007890-200008150-00006 Hopkins, 2009, Decellularization reduces calcification while improving both durability and 1-year functional results of pulmonary homograft valves in juvenile sheep, J Thorac Cardiovasc Surg, 137, 907, 10.1016/j.jtcvs.2008.12.009 Martin, 2005, In vivo behavior of decellularized vein allograft, J Surg Res, 129, 17, 10.1016/j.jss.2005.06.037 Takagi, 2006, In vivo recellularization of plain decellularized xenografts with specific cell characterization in the systemic circulation: histological and immunohistochemical study, Artif Organs, 30, 233, 10.1111/j.1525-1594.2006.00210.x Legare, 2000, Cryopreservation of rat aortic valves results in increased structural failure, Circulation, 102, III75, 10.1161/01.CIR.102.suppl_3.III-75 Flameng, 2011, Calcification of allograft and stentless xenograft valves for right ventricular outflow tract reconstruction: an experimental study in adolescent sheep, J Thorac Cardiovasc Surg, 141, 1513, 10.1016/j.jtcvs.2010.08.082 Hoekstra, 1998, Immunogenic human leukocyte antigen class II antigens on human cardiac valves induce specific alloantibodies, Ann Thorac Surg, 66, 2022, 10.1016/S0003-4975(98)01058-3 Hogan, 1996, Human aortic valve allografts elicit a donor-specific immune response, J Thorac Cardiovasc Surg, 112, 1260, 10.1016/S0022-5223(96)70139-3 Cebotari, 2011, Use of fresh decellularized allografts for pulmonary valve replacement may reduce the reoperation rate in children and young adults: early report, Circulation, 124, S115, 10.1161/CIRCULATIONAHA.110.012161 Burch, 2010, Clinical performance of decellularized cryopreserved valved allografts compared with standard allografts in the right ventricular outflow tract, Ann Thorac Surg, 90, 1301, 10.1016/j.athoracsur.2010.05.024 Ruzmetov, 2012, Decellularized versus standard cryopreserved valve allografts for right ventricular outflow tract reconstruction: a single-institution comparison, J Thorac Cardiovasc Surg, 143, 543, 10.1016/j.jtcvs.2011.12.032 Tavakkol, 2005, Superior durability of SynerGraft pulmonary allografts compared with standard cryopreserved allografts, Ann Thorac Surg, 80, 1610, 10.1016/j.athoracsur.2005.04.017