Intravascular Ultrasound Characterization of a Tissue-Engineered Vascular Graft in an Ovine Model

被引:0
作者
Victoria K. Pepper
Elizabeth S. Clark
Cameron A. Best
Ekene A. Onwuka
Tadahisa Sugiura
Eric D. Heuer
Lilamarie E. Moko
Shinka Miyamoto
Hideki Miyachi
Darren P. Berman
Sharon L. Cheatham
Joanne L. Chisolm
Toshiharu Shinoka
Christopher K. Breuer
John P. Cheatham
机构
[1] Research Institute at Nationwide Children’s Hospital,Tissue Engineering Program
[2] Nationwide Children’s Hospital,Department of Pediatric Surgery
[3] The Ohio State University,College of Veterinary Medicine
[4] The Ohio State University Wexner Medical Center,Department of Surgery
[5] Texas Heart Institute at Baylor St. Luke’s Medical Center,Division of Cardiothoracic Transplant & Mechanical Circulatory Support
[6] Nationwide Children’s Hospital,The Heart Center
[7] Nationwide Children’s Hospital,Department of Cardiothoracic Surgery
来源
Journal of Cardiovascular Translational Research | 2017年 / 10卷
关键词
Tissue-engineered vascular graft; TEVG; Intravascular ultrasound; IVUS; Neotissue; Stenosis; Angiography;
D O I
暂无
中图分类号
学科分类号
摘要
Patients who undergo implantation of a tissue-engineered vascular graft (TEVG) for congenital cardiac anomalies are monitored with echocardiography, followed by magnetic resonance imaging or angiography when indicated. While these methods provide data regarding the lumen, minimal information regarding neotissue formation is obtained. Intravascular ultrasound (IVUS) has previously been used in a variety of conditions to evaluate the vessel wall. The purpose of this study was to evaluate the utility of IVUS for evaluation of TEVGs in our ovine model. Eight sheep underwent implantation of TEVGs either unseeded or seeded with bone marrow-derived mononuclear cells. Angiography, IVUS, and histology were directly compared. Endothelium, tunica media, and graft were identifiable on IVUS and histology at multiple time points. There was strong agreement between IVUS and angiography for evaluation of luminal diameter. IVUS offers a valuable tool to evaluate the changes within TEVGs, and clinical translation of this application is warranted.
引用
收藏
页码:128 / 138
页数:10
相关论文
共 197 条
  • [1] Hoffman JI(2002)The incidence of congenital heart disease Journal of the American College of Cardiology 39 1890-1900
  • [2] Kaplan S(2014)Pediatric inpatient hospital resource use for congenital heart defects Birth Defects Research. Part A, Clinical and Molecular Teratology 100 934-943
  • [3] Simeone RM(2005)Midterm clinical result of tissue-engineered vascular autografts seeded with autologous bone marrow cells Journal of Thoracic and Cardiovascular Surgery 129 1330-1338
  • [4] Oster ME(2010)Late-term results of tissue-engineered vascular grafts in humans Journal of Thoracic and Cardiovascular Surgery 139 431-436
  • [5] Cassell CH(2011)New imaging modalities in the catheterization laboratory Current Opinion in Cardiology 26 86-93
  • [6] Armour BS(2006)Virtual histology and color flow intravascular ultrasound in peripheral interventions Seminars in Vascular Surgery 19 155-162
  • [7] Gray DT(2006)Applications of intravascular ultrasound in the treatment of peripheral occlusive disease Seminars in Vascular Surgery 19 139-144
  • [8] Honein MA(2009)Using IVUS during EVAR and TEVAR: improving patient outcomes Seminars in Vascular Surgery 22 172-180
  • [9] Shin’oka T(2015)Intravascular ultrasound is a critical tool for accurate endograft sizing in the management of blunt thoracic aortic injury Journal of Vascular Surgery 61 630-635
  • [10] Matsumura G(2012)Intravascular ultrasound Seminars in Vascular Surgery 25 144-152