The effect of pulse pressure on arterial wall remodeling has not been clearly defined. The objective of this study was to evaluate matrix remodeling in arteries under nonpulsatile and hyperpulsatile pressure as compared with arteries under normal pulsatile pressure. Porcine carotid arteries were cultured for 3 and 7 days under normal, nonpulsatile, and hyperpulsatile pressures with the same mean pressure and flow rate using an ex vivo organ culture model. Fenestrae in the internal elastic lamina, collagen, fibronectin, and gap junction protein connexin 43 were examined in these arteries using confocal microscopy, immunoblotting, and immunohistochemistry. Our results showed that after 7 days, the mean fenestrae size and the area fraction of fenestrae decreased significantly in nonpulsatile arteries (51% and 45%, respectively) and hyperpulsatile arteries (45% and 54%, respectively) when compared with normal pulsatile arteries. Fibronectin decreased (29.9%) in nonpulsatile arteries after 3 days but showed no change after 7 days, while collagen I levels increased significantly (106%) in hyperpulsatile arteries after 7 days. The expression of connexin 43 increased by 35.3% in hyperpulsatile arteries after 7 days but showed no difference in nonpulsatile arteries. In conclusion, our results demonstrated, for the first time, that an increase or a decrease in pulse pressure from its normal physiologic level stimulates structural changes in the arterial wall matrix. However, hyperpulsatile pressure has a more pronounced effect than the diminished pulse pressure. This effect helps to explain the correlation between increasing wall stiffness and increasing pulse pressure in vivo.
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October 2009
Research Papers
Alterations of Pulse Pressure Stimulate Arterial Wall Matrix Remodeling
Qingping Yao,
Qingping Yao
Department of Mechanical Engineering,
University of Texas at San Antonio
, San Antonio, TX 78249
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Danika M. Hayman,
Danika M. Hayman
Department of Mechanical Engineering,
University of Texas at San Antonio
, San Antonio, TX 78249; Biomedical Engineering Program, UTSA-UTHSCSA
, San Antonio, TX 78229
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Qiuxia Dai,
Qiuxia Dai
Department of Medicine/Cardiology,
University of Texas Health Science Center at San Antonio
, San Antonio, TX 78249
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Merry L. Lindsey,
Merry L. Lindsey
Department of Medicine/Cardiology,
University of Texas Health Science Center at San Antonio
; Biomedical Engineering Program, UTSA-UTHSCSA
, San Antonio, TX 78229
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Hai-Chao Han
Hai-Chao Han
Department of Mechanical Engineering,
haichao.han@utsa.edu
University of Texas at San Antonio
, San Antonio, TX 78249; Biomedical Engineering Program, UTSA-UTHSCSA
, San Antonio, TX 78229
Search for other works by this author on:
Qingping Yao
Department of Mechanical Engineering,
University of Texas at San Antonio
, San Antonio, TX 78249
Danika M. Hayman
Department of Mechanical Engineering,
University of Texas at San Antonio
, San Antonio, TX 78249; Biomedical Engineering Program, UTSA-UTHSCSA
, San Antonio, TX 78229
Qiuxia Dai
Department of Medicine/Cardiology,
University of Texas Health Science Center at San Antonio
, San Antonio, TX 78249
Merry L. Lindsey
Department of Medicine/Cardiology,
University of Texas Health Science Center at San Antonio
; Biomedical Engineering Program, UTSA-UTHSCSA
, San Antonio, TX 78229
Hai-Chao Han
Department of Mechanical Engineering,
University of Texas at San Antonio
, San Antonio, TX 78249; Biomedical Engineering Program, UTSA-UTHSCSA
, San Antonio, TX 78229haichao.han@utsa.edu
J Biomech Eng. Oct 2009, 131(10): 101011 (6 pages)
Published Online: September 10, 2009
Article history
Received:
November 15, 2008
Revised:
July 13, 2009
Published:
September 10, 2009
Citation
Yao, Q., Hayman, D. M., Dai, Q., Lindsey, M. L., and Han, H. (September 10, 2009). "Alterations of Pulse Pressure Stimulate Arterial Wall Matrix Remodeling." ASME. J Biomech Eng. October 2009; 131(10): 101011. https://doi.org/10.1115/1.3202785
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