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Characterization of blood storage lesions using photoacoustic technologies

Characterization of blood storage lesions using photoacoustic technologies
使用光声技术表征血液储存病变
批准号:
462315-2014
负责人:
Kolios, Michael
金额:
$5.34万
依托单位:
依托单位国家:
加拿大
项目类别:
Collaborative Health Research Projects
财政年份:
2015
资助国家:
加拿大
项目状态:
已结题
起止时间:
2015-01-01 至 2016-12-31

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中文摘要
翻译
临床上对用于输血的血液制品的需求很大。典型的临床情况,血液是 需要的包括创伤性或外科出血、贫血和影响血红蛋白产生的疾病。《加拿大人》 血液服务中心每年收集约850,000个单位的血液,供数千名患者使用。 血液通常保存约42天。越来越多的证据表明,结构发生了显著的变化 和红细胞(RBC)在此储存期间的功能,以及输注已经储存了 这段或更长的时间可能会增加患者的发病率和死亡率,特别是在脆弱的患者群体中。一个 一种可以快速表征储存红细胞适合性的技术可能会对临床产生重大影响 在开发新的血液储存方案时,不仅可以作为评估血液质量的工具,还可以作为一种工具。我们有 最近发现了一种快速表征红细胞的新技术,它可以分析红细胞的频率 当红细胞暴露在短脉冲激光下时产生的声波。在这项技术中,它基于 光声效应,传统的光学光谱学(它提供关于细胞的功能信息)是 结合超声射频光谱学(提供细胞的结构信息),评估 红细胞移植适宜性。这项新技术也可以用于研究其他形式的红细胞病理。 在这项工作中,我们建议开发允许快速表征血液产品的协议,这些血液产品是 输血。我们将通过将我们的分析技术的结果与所使用的标准进行比较来测试系统的适用性 并开发一个原型系统,使大量血液的快速表征成为可能 是RBC的。
英文摘要
There is a significant clinical need for blood products used in blood transfusions. Typical clinical situations where blood is needed include traumatic or surgical bleeding, anemias and diseases that affect hemoglobin production. The Canadian Blood Services collects approximately 850,000 units of blood that are administered to thousands of patients each year. Blood is typically stored for about 42 days. Increasing evidence suggests that significant alterations occur in the structure and function of red blood cells (RBC) during this storage period, and that the transfusion of RBC that have been stored for this or longer periods of time may increase patient morbidity and mortality, especially in vulnerable patient populations. A technique that could rapidly characterize the suitability of stored RBCs could potentially have a significant impact on clinical practise but also serve as a tool to assess the blood quality in the development of new blood storage protocols. We have recently discovered a new technique for the rapid characterization of red blood cells that analyzes the frequencies of the sound waves produced when red blood cells are exposed to short pulses of laser light. In this technique, which is based on the photoacoustic effect, conventional optical spectroscopy (which provides functional information about the cell) is combined with ultrasound radiofrequency spectroscopy (which provides structural information about the cell), to assess the RBC suitability for transplantation. This novel technique can also be adapted to study other forms of red blood cell pathology. In this work, we propose to develop protocols that will allow the rapid characterization of blood products that are required for blood transfusions. We will test the system suitability by comparing the results of our analytical techniques to standards used in the characterization of blood and develop a prototype system that will enable the rapid characterization of large numbers of RBC.
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Fundamental studies and novel approaches enabling the generation and characterization of ultrasound and photoacoustic contrast to probe the structure and function of cells, biomaterials and biological systems
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