切换至 "中华医学电子期刊资源库"

中华医学超声杂志(电子版) ›› 2019, Vol. 16 ›› Issue (12) : 972 -975. doi: 10.3877/cma.j.issn.1672-6448.2019.12.017

所属专题: 文献

综述

超声评价早期动脉粥样硬化的研究进展
邓岚1, 尹立雪2,()   
  1. 1. 637000 南充,川北医学院
    2. 610072 成都,四川省医学科学院 四川省人民医院超声医学研究所
  • 收稿日期:2019-03-05 出版日期:2019-12-01
  • 通信作者: 尹立雪

Progress in ultrasound evaluation of early atherosclerosis

Lan Deng1, Lixue Yin2()   

  • Received:2019-03-05 Published:2019-12-01
  • Corresponding author: Lixue Yin
引用本文:

邓岚, 尹立雪. 超声评价早期动脉粥样硬化的研究进展[J]. 中华医学超声杂志(电子版), 2019, 16(12): 972-975.

Lan Deng, Lixue Yin. Progress in ultrasound evaluation of early atherosclerosis[J]. Chinese Journal of Medical Ultrasound (Electronic Edition), 2019, 16(12): 972-975.

[1]
Lozano R, Naghavi M, Foreman K, et al. Global and regional mortality from 235 causes of death for 20 age groups in 1990 and 2010: a systematic analysis for the Global Burden of Disease Study 2010 [J].Lancet, 2012, 380(9859): 2095-2128.
[2]
Herrington W, Lacey B, Sherliker P, et al.Epidemiology of Atherosclerosis and the Potential to Reduce the Global Burden of Atherothrombotic Disease [J]. Circ Res, 2016, 118(4): 535-546.
[3]
程大艳,吴美平. 血管平滑肌细胞表型对动脉硬化类疾病的影响 [J]. 现代中西医结合杂志, 2018, 27(13): 1474-1478.
[4]
Cancel LM, Ebong EE, Mensah S, et al. Endothelial glycocalyx, apoptosis and inflammation in an atherosclerotic mouse model [J]. Atherosclerosis, 2016, 252: 136-146.
[5]
李锵,张琦珺,关欣, 等. 基于改进模糊C均值算法的颈动脉超声图像分割 [J]. 天津大学学报(自然科学与工程技术版), 2018, 51(1): 95-102.
[6]
Ring M, Eriksson MJ, Jogestrand T, et al. Ultrasound measurements of carotid intima-media thickness by two semi-automated analysis systems [J]. Clin Physiol Funct Imaging, 2016, 36(5): 389-395.
[7]
Meiburger KM, Molinari F, Wong J, et al. Validation of the Carotid Intima-Media Thickness Vari-ability: Can Manual Segmentations Be Trusted as Ground Truth? [J]. Ultrasound Med Biol, 2016,42(7): 1598-1611.
[8]
Luca S, Sumit KB, Harman SS, et al. Accurate cloud-based smart IMT measurement, its valida-tion and stroke risk stratification in carotid ultrasound: A web-based point-of-care tool for multicenter clinical trial [J]. Comput Biol Med, 2016, 75: 217-234.
[9]
Benoy NS, Navtej SC, Jaspal SK, et al.Contrast-enhanced ultrasonography vs B-mode ultrasound for visualization of intima-media thickness and detection of plaques in human carotid arteries [J]. Echocardiography, 2017, 34(5): 723-730.
[10]
Herrmann J, Lerman LO, Rodriguez-Porcel M, et al.Coronary vasa vasorum neovascularization precedes epicardial endothelial dysfunction in experimental hypercholesterolemia [J]. Cardiovasc Res, 2001, 51(4): 762-766.
[11]
Li XY, Zhang RY, Li ZM, et al.Contrast-Enhanced Ultrasound Imaging Quantification of Adventi-tial Vasa Vasorum in a Rabbit Model of Varying Degrees of Atherosclerosis [J]. Scientific Reports, 2017, 7(1): 7032.
[12]
Markus J, Jorma SAV, Tomi L, et al. Interrelations between brachial endothelial function and carotid intima-media thickness in young adults: the cardiovascular risk in young Finns study [J]. Circulation, 2004,110(18): 2918-2923.
[13]
Schutte AE, Botha S, Fourie CMT, et al.Recent advances in understanding hypertension devel-opment in sub-Saharan Africa [J]. J Hum Hypertens, 2017, 31(8): 491-500.
[14]
Maruhashi T, Soga J, Fujimura N, et al. Endothelial Dysfunction, Increased Arterial Stiffness, and Cardiovascular Risk Prediction in Patients With Coronary Artery Disease: FMD-J (Flow-Mediated Dilation Japan) Study A [J]. J Am Heart Assoc, 2018, 7(14).
[15]
Hasan O, Stéphane L, Nikos S, et al. Numerical assessment and comparison of pulse wave veloci-ty methods aiming at measuring aortic stiffness [J]. Physiol Meas, 2017, 38(11): 1953-1967.
[16]
Wang Z, Yang Y, Yuan LJ, et al. Noninvasive Method for Measuring Local Pulse Wave Velocity by Dual Pulse Wave Doppler: In Vitro and In Vivo Studies [J]. PLoS One, 2015, 10(3): e0120482.
[17]
Collette M, Palombo C, Morizzo C, et al. Carotid-Femoral Pulse Wave Velocity Assessed by Ultrasound: A Study with Echotracking Technology [J]. Ultrasound Med Biol, 2017, 43(6): 1187-1194.
[18]
Apostolakis IZ, Nauleau P, Papadacci C, et al.Feasibility and Validation of 4-D Pulse Wave Im-aging in Phantoms and In Vivo [J]. IEEE Trans Ultrason Ferroelectr Freq Control, 2017, 64(9): 1305-1317.
[19]
Laurent S, Marais L, Boutouyrie P. The Noninvasive Assessment of Vascular Aging [J]. Can J Cardiol, 2016, 32(5): 669-679.
[20]
Couade M, Pernot M, Prada C, et al.Quantitative assessment of arterial wall biomechanical prop-erties using shear wave imaging [J]. Ultrasound Med Biol, 2010, 36(10): 1662-1676.
[21]
Ramnarine KV, Garrard JW, Kanber B, et al. Shear wave elastography imaging of carotid plaques: feasible, reproducible and of clinical potential [J]. Cardiovasc Ultrasound, 2014, 12: 49.
[22]
Widman E, Maksuti E, Amador C, et al. Shear Wave Elastography Quantifies Stiffness in Ex Vivo Porcine Artery with Stiffened Arterial Region [J]. Ultrasound Med Biol, 2016, 42(10): 2423-2435.
[23]
谢君,张慷. 速度向量成像技术对正常成人颈总动脉弹性特点的初步研究 [J]. 临床超声医学杂志, 2016, 18(11): 745-748.
[24]
Yang WI, Shim CY, Bang WD, et al. Asynchronous arterial systolic expansion as a marker of vascular aging: assessment of the carotid artery with velocity vector imaging [J]. J Hypertens, 2011, 29(12): 2404-2412.
[25]
Iino H, Okano T, Daimon M, et al. Usefulness of Carotid Arterial Strain Values for Evaluating the Arteriosclerosis [J]. J Atheroscler Thromb, 2019, 26(5): 476-487.
[26]
Kocijancic M, Cubranic Z, Vujicic B, et al.Soluble intracellular adhesion molecule-1 and omen-tin-1 as potential biomarkers of subclinical atherosclerosis in hemodialysis patients [J]. Int Urol Nephrol, 2016, 48(7): 1145-1154.
[27]
Motawi T, Shaker O, Taha N, et al. Genetic variations in E-selectin and ICAM-1: relation to ath-erosclerosis [J]. Med Sci Monit, 2012, 18(6): CR381-CR389.
[28]
Curaj A, Wu ZJ, Rix A, et al. Molecular Ultrasound Imaging of Junctional Adhesion Molecule A Depicts Acute Alterations in Blood Flow and Early Endothelial Dysregulation [J]. Arterioscler Thromb Vasc Biol, 2018, 38(1): 40-48.
[29]
Sun RY, Tian J, Zhang J, et al. Monitoring inflammation injuries in the progression of athero-sclerosis with contrast enhanced ultrasound molecular imaging [J]. PLoS One, 2017, 12(10): e0186155.
[30]
Koczera P, Appold L, Shi Y, et al. PBCA-based polymeric microbubbles for molecular imaging and drug delivery [J]. J Control Release, 2017, 259: 128-135.
[31]
Yan F, Sun Y, Mao Y, et al. Ultrasound Molecular Imaging of Atherosclerosis for Early Diagno-sis and Therapeutic Evaluation through Leucocyte-like Multiple Targeted Microbubbles [J]. Theranostics, 2018, 8(7): 1879-1891.
No related articles found!
阅读次数
全文


摘要