使用光学相干弹性成像技术对血液凝固进行动态定量评估。

Dynamic and quantitative assessment of blood coagulation using optical coherence elastography.

作者信息

Xu Xiangqun, Zhu Jiang, Chen Zhongping

机构信息

College of Life Sciences, Zhejiang Sci-Tech University, Hangzhou, Zhejiang 310018, China.

Beckman Laser Institute, University of California, Irvine, Irvine, California 92612, USA.

出版信息

Sci Rep. 2016 Apr 19;6:24294. doi: 10.1038/srep24294.

Abstract

Reliable clot diagnostic systems are needed for directing treatment in a broad spectrum of cardiovascular diseases and coagulopathy. Here, we report on non-contact measurement of elastic modulus for dynamic and quantitative assessment of whole blood coagulation using acoustic radiation force orthogonal excitation optical coherence elastography (ARFOE-OCE). In this system, acoustic radiation force (ARF) is produced by a remote ultrasonic transducer, and a shear wave induced by ARF excitation is detected by the optical coherence tomography (OCT) system. During porcine whole blood coagulation, changes in the elastic property of the clots increase the shear modulus of the sample, altering the propagating velocity of the shear wave. Consequently, dynamic blood coagulation status can be measured quantitatively by relating the velocity of the shear wave with clinically relevant coagulation metrics, including reaction time, clot formation kinetics and maximum shear modulus. The results show that the ARFOE-OCE is sensitive to the clot formation kinetics and can differentiate the elastic properties of the recalcified porcine whole blood, blood added with kaolin as an activator, and blood spiked with fibrinogen.

摘要

在广泛的心血管疾病和凝血病治疗中,需要可靠的凝血诊断系统来指导治疗。在此,我们报告了使用声辐射力正交激发光学相干弹性成像(ARFOE-OCE)对全血凝固进行动态和定量评估的弹性模量非接触测量。在该系统中,远程超声换能器产生声辐射力(ARF),光学相干断层扫描(OCT)系统检测由ARF激发引起的剪切波。在猪全血凝固过程中,凝块弹性特性的变化会增加样品的剪切模量,改变剪切波的传播速度。因此,通过将剪切波速度与包括反应时间、凝块形成动力学和最大剪切模量在内的临床相关凝血指标相关联,可以定量测量动态血液凝固状态。结果表明,ARFOE-OCE对凝块形成动力学敏感,能够区分再钙化猪全血、添加高岭土作为激活剂的血液以及添加纤维蛋白原的血液的弹性特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/79f4/4836302/4c7417a3f133/srep24294-f1.jpg

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