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Oxygen sensing for in-vivo imaging by photoacoustic lifetime probing

机译:通过光声寿命探测对体内成像中的氧气进行感应

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We have developed a new method to perform local measurements of fluorophore excited state lifetimes in turbid media without collecting the fluorescence emission. The method is based on a double pulse illumination where a first laser pulse excites the dye and then a second laser is used for photoacoustic probing of the transient absorption. The photoacoustic response generated by the probe pulse is recorded by an ultrasound receiver. Varying the time delay between excitation and probing allows for tracking the relaxation dynamics of the excited state. The method was validated by measuring the lifetime of an oxygen sensitive dye (Pt(II) octaethylporphine) solution at different concentrations of dissolved oxygen. The dye was excited with a 532 nm pulsed laser and the transient absorption at 740 nm was probed using a second pulsed laser system. The photoacoustics based results coincide with those obtained from simultaneous time-resolved fluorescent measurements. The method can be extended to photoacoustic lifetime imaging by using a receiver array instead of a single receiver. This opens unique possibilities for non-invasive, clinical functional imaging. For example, combined with oxygen sensitive dye, 3D imaging of tissue oxygenation could be developed for accurate diagnosis of cancer tumors, better planning of radiation therapy, and monitoring efficacy of treatment. Other potential applications include: in-vivo mapping of ion (e.g. Ca) concentration and dynamics and imaging of enzymes activity and metabolic functions, as well as environmental studies in turbid media
机译:我们已经开发出一种新方法,可以在不收集荧光发射的情况下,对混浊介质中的荧光团激发态寿命进行局部测量。该方法基于双脉冲照明,其中第一激光脉冲激发染料,然后第二激光用于瞬态吸收的光声探测。由探测脉冲产生的光声响应由超声接收器记录。在激发和探测之间改变时间延迟允许跟踪激发态的弛豫动力学。通过测量在不同浓度的溶解氧下的氧敏感性染料(Pt(II)八乙基卟啉)溶液的寿命来验证该方法。用532 nm脉冲激光激发染料,并使用第二个脉冲激光系统探测740 nm的瞬态吸收。基于光声的结果与从同时进行时间分辨荧光测量获得的结果一致。通过使用接收器阵列而不是单个接收器,该方法可以扩展到光声寿命成像。这为无创临床功能成像开辟了独特的可能性。例如,结合氧敏感染料,可以开发组织氧合的3D成像,以准确诊断癌症肿瘤,更好地规划放射治疗并监测治疗效果。其他潜在的应用包括:体内离子浓度(例如Ca)的作图以及酶活性和代谢功能的动态成像以及在混浊介质中的环境研究

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