Elastic fibers in the aortic valve spongiosa: A fresh perspective on its structure and role in overall tissue function

被引:48
作者
Tseng, H. [1 ]
Grande-Allen, K. J. [1 ]
机构
[1] Rice Univ, Dept Bioengn, Houston, TX 77251 USA
关键词
Elastic fibers; Scanning electron microscopy; Immunohistochemistry; Aortic valve; Material behavior; BIAXIAL MECHANICAL-PROPERTIES; INTERNAL SHEAR PROPERTIES; GLUTARALDEHYDE FIXATION; CARDIAC VALVES; MICROSTRUCTURE; CUSP; REPLACEMENT; EXPRESSION; COMPONENTS; XENOGRAFT;
D O I
10.1016/j.actbio.2011.01.022
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
This study characterizes the elastic fiber structure within the aortic valve spongiosa, the middle layer of the tri-laminate leaflet. The layer is rich in glycosaminoglycans and proteoglycans, through which it resists compression and lubricates shear between the outer layers. Elastin in this layer forms a fine, interweaving structure, yet it is unclear how this particular structure, which uses elasticity to preload the leaflet, assists spongiosa function. In this study, immunohistochemistry (IHC) and scanning electron microscopy (SEM) are used to characterize spongiosa elastin, as well as investigate regional differences in structure. IHC for elastin highlights an intermediate structure which varies in thickness and density between regions In particular, the spongiosa elastin is thicker in the hinge and coaptation region than in the belly. SEM of NaOH-digested leaflets shows a rectilinear pattern of elastic fibers in the hinge and coaptation region, as opposed to a radially oriented stripe pattern in the belly. In conclusion, elastic fibers in the spongiosa connect the two outer layers and vary regionally in structure, while possibly playing a role in responding to regionally specific loading patterns. (C) 2011 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:2101 / 2108
页数:8
相关论文
共 40 条
[1]   Biaxial mechanical properties of the natural and glutaraldehyde treated aortic valve cusp - Part I: Experimental results [J].
Billiar, KL ;
Sacks, MS .
JOURNAL OF BIOMECHANICAL ENGINEERING-TRANSACTIONS OF THE ASME, 2000, 122 (01) :23-30
[2]   CLINICAL USE OF HETEROGRAFTS FOR REPLACEMENT OF AORTIC VALVE [J].
BINET, JP ;
CARPENTIER, A ;
LANGLOIS, J .
JOURNAL OF THORACIC AND CARDIOVASCULAR SURGERY, 1968, 55 (02) :238-+
[3]   DETECTION AND GRADATION OF ORIENTED TEXTURE [J].
CHAUDHURI, BB ;
KUNDU, P ;
SARKAR, N .
PATTERN RECOGNITION LETTERS, 1993, 14 (02) :147-153
[4]  
Christov AM, 1999, PHOTOCHEM PHOTOBIOL, V69, P382, DOI 10.1562/0031-8655(1999)069<0382:LIFROT>2.3.CO
[5]  
2
[6]   Design and analysis of tissue engineering scaffolds that mimic soft tissue mechanical anisotropy [J].
Courtney, T ;
Sacks, MS ;
Stankus, J ;
Guan, J ;
Wagner, WR .
BIOMATERIALS, 2006, 27 (19) :3631-3638
[7]   Freeze drying of cardiac valves in preparation for cellular repopulation [J].
Curtil, A ;
Pegg, DE ;
Wilson, A .
CRYOBIOLOGY, 1997, 34 (01) :13-22
[8]   STRUCTURE, STRESS, AND TISSUE-REPAIR IN AORTIC-VALVE LEAFLETS [J].
DECK, JD ;
THUBRIKAR, MJ ;
SCHNEIDER, PJ ;
NOLAN, SP .
CARDIOVASCULAR RESEARCH, 1988, 22 (01) :7-16
[9]  
Doehring TC, 2005, J HEART VALVE DIS, V14, P679
[10]   Loss of chondroitin 6-sulfate and hyaluronan from failed porcine bioprosthetic valves [J].
Grande-Allen, KJ ;
Mako, WJ ;
Calabro, A ;
Shi, YL ;
Ratliff, NB ;
Vesely, I .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2003, 65A (02) :251-259