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1 , 30 who received sclera and 38 who received pericardium).
2 rated a higher diagnostic yield (38.7%) than pericardium.
3 rial and pacemaker cardiomyocytes as well as pericardium.
4 e to reintervention compared with autologous pericardium.
5 t the proximal coronary artery and enter the pericardium.
6 eter electrosurgery to exit the aorta to the pericardium.
7 r, skeletal muscle, myocardium, and visceral pericardium.
8 a hiatus hernia, which had fistulated to the pericardium.
9 to provide excellent anatomic detail of the pericardium.
10 ificantly longer than non-crosslinked bovine pericardium.
11 nces from neighboring cells, such as the epi/pericardium.
12 copically, no patient had an entirely normal pericardium.
13 ation of surgical procedures that remove the pericardium.
14 rug as result of a reservoir function of the pericardium.
15 l by attaching it to the edges of the opened pericardium.
16 in non-skeletal tissues including liver and pericardium.
17 inputs from thoracic structures, such as the pericardium.
18 ardiography cannot reliably detect thickened pericardium.
19 86% specific for the detection of thickened pericardium.
20 be used to distinguish diseased from normal pericardium.
22 ers of degranulating mast cells (MCs) in the pericardium (26.6 to 45.9%, P < 0.01), increased histami
23 semble into a functional unit, including the pericardium, a mesothelial sac that supports movement, h
24 e the myocardium, valves, coronary arteries, pericardium, also to assess cardiac structure and functi
25 theter valve scaffolds (1) acellular porcine pericardium and (2) mesenchymal stem cell-seeded acellul
26 ead in the anterior mediastinum, outside the pericardium and circulatory system have been completed.
27 his review aims to elucidate the role of the pericardium and its interaction with the remainder of th
28 ved from mesothelial cells lining the lungs, pericardium and peritoneum, and are often associated wit
29 rosslinked materials with crosslinked bovine pericardium and porcine dermis materials exhibiting a hi
30 dogs expressed IL-8 mRNA (in the synovia and pericardium), and three dogs had TNF-alpha mRNA in tribu
32 dermis, large arterial vessels, epicardium, pericardium, and heart valves at various stages of roden
33 for IL-8 mRNA in multiple tissues (synovia, pericardium, and peritoneum), and 10 dogs expressed TNF-
34 eratrial or interventricular septal defects, pericardium, and site and size of the great veins (IVC a
35 organs or tissues, such as arteries, nerves, pericardium, and the walls of the organs of the gastroin
37 evaluation of the ejection fraction, aorta, pericardium, and valves all without the inherent risks o
39 embrane) ECM niche of antigen-removed bovine pericardium (AR-BP) scaffolds influence human aortic end
43 have focused on generation of unfixed bovine pericardium (BP) extracellular matrix (ECM) for clinical
46 yde-fixed heterograft tissue, such as bovine pericardium (BP), are widely used for treating heart val
47 the large vessels and the heart, within the pericardium, can result in cardiac arrhythmia suppressio
48 ending aortic bypass graft via the posterior pericardium (CoA bypass) allows simultaneous intracardia
51 l fluid (effusion), blood, pus or air in the pericardium, compressing the heart chambers and leading
52 ibution of FALCs was heterogeneous, with the pericardium containing large numbers of these clusters.
53 hes, with the serous surface (i.e., parietal pericardium) containing basement membrane components (e.
55 more severe around the base of the heart and pericardium, corresponding to sites of marked infiltrati
59 operties of genipin (GE) cross-linked equine pericardium (EP) using optical imaging techniques in tan
62 shown to reduce injury to the myocardium and pericardium, favour resolution of the inflammation and p
63 nance imaging sequences used to evaluate the pericardium, followed by exploring the main clinical app
68 cross-linked porcine aortic valves or bovine pericardium frequently causes the clinical failure of th
70 lthough constriction with a normal-thickness pericardium has been demonstrated clinically by noninvas
72 annulus or reconstruction of the valve using pericardium in disease that primarily affects the valve.
73 model of subcutaneous implantation of bovine pericardium in rats and the model of xenograft aortic va
74 1) with the pericardium intact, 2) with the pericardium intact and inotropic support, and 3) with th
75 artery (RCA) under 3 conditions: 1) with the pericardium intact, 2) with the pericardium intact and i
76 t baseline and following volume loading with pericardium intact, acutely following pericardiotomy, an
78 extra-anatomic CoA bypass via the posterior pericardium is an excellent single-stage approach for pa
80 ardial substrate, and energy delivery in the pericardium is limited by penetration through epicardial
81 on with acute RV dilatation within an intact pericardium is partly attributable to impaired LV systol
83 stion assay revealed that crosslinked bovine pericardium materials resisted enzymatic degradation sig
84 on in HIV, which involves the myocardium and pericardium, may explain the high rate of myocardial fib
86 icardial observations in an open-chest, open-pericardium model of swine VF indicate that blood flows
91 al restraint limited LV dilatation; with the pericardium opened, moderate MR accompanied LV dilatatio
95 r artery), tumor against a tissue (e.g., the pericardium or wall of any gastrointestinal tract organ)
97 ants of PV anterograde velocities in an open-pericardium, paced (70 and 90 beats/min) pig model in wh
100 ymph-node rupture, and acute mediastinitis), pericardium (pneumopericardium in patients with lung tum
101 dermal implants (porcine aortic cusps/bovine pericardium) pretreated with TGA demonstrated significan
102 epta and vessels, as well as other heart and pericardium procedures, from January 1, 2008, to Decembe
106 n normal open-chest animal preparations, the pericardium restrains LV filling when central blood volu
107 pport structures and chamber, as well as the pericardium, right and left atrial appendages, the junct
108 ing the degradation of decellularized bovine pericardium scaffolds under conditions mimicking the imm
109 n short-axis DHE sequences by contouring the pericardium, selecting normal septal myocardium as a ref
112 aging to have a longer residence time in pig pericardium than a low-molecular-weight (0.5 kDa) analog
113 ts expected location through a defect in the pericardium that is congenital, traumatic, or iatrogenic
114 athway is involved in the development of the pericardium, the sinus horn myocardium, and the alignmen
124 was performed in 75% of cases and autologous pericardium was the material used to patch this incision
127 senchymal stem cell-seeded acellular porcine pericardium were compared to native porcine aortic valve
128 acking Robo1 revealed partial absence of the pericardium, whereas Robo1/2 double mutants additionally
129 ardiac chamber (including the myocardium and pericardium) which relaxes quickly and fills to a large
130 the heart valves, the conduction system, and pericardium, which may take years to manifest clinically
134 mary pericardial schwannoma of the posterior pericardium with concerns for compression of the left at