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Prospects for in vivo blood velocimetry using acoustic resolution photoacoustic Doppler

机译:使用声学分辨率光声多普勒在体内血液系速的前景

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Acoustic resolution photoacoustic Doppler flowmetry (AR-PAF) is a technique that has the potential to overcome the spatial resolution and depth penetration limitations of current blood flow measuring methods. Previous work has shown the potential of the technique using blood-mimicking phantoms, but it has proved difficult to make accurate measurements in blood, and thus in vivo application has not yet been possible. One explanation for this difficulty is that whole blood is insufficiently heterogeneous. Through experimental measurements in red blood cell suspensions of different concentrations, as well as in whole blood, we provide new insight and evidence that refutes this assertion. We show that the velocity measurement accuracy is influenced by bandlimiting not only due to the detector frequency response, but also due to spatial averaging of absorbers within the detector field-of-view. hi addition, there is a detrimental effect of limited light penetration, but this can be mitigated by selecting less attenuated wavelengths of light, and also by employing range-gating signal processing. By careful choice of these parameters as well as the detector centre frequency, bandwidth and field-of-view, it is possible to make AR-PAF measurements in whole blood using transducers with bandwidths in the tens of MHz range. These findings have profound implications for the prospects of making deep tissue measurements of blood flow relevant to the study of microcirculatory abnormalities associated with cancer, diabetes, atherosclerosis and other conditions.
机译:声分辨率光声多普勒流量(AR-PAF)是一种技术,具有克服当前血流测量方法的空间分辨率和深度穿透限制。以前的工作表明了使用血模杀素的技术的潜力,但证明难以在血液中进行准确测量,因此在体内应用尚未实现。这种困难的一个解释是整个血液都是不均匀的。通过对不同浓度的红细胞悬浮液中的实验测量,以及全血,我们提供了新的洞察力和证据,反驳这种断言。我们表明,由于探测器频率响应,速度测量精度不仅受到带状的影响,而且由于探测器内的吸收器的空间平均,而且还受到探测器的空间平均。嗨,由于采用范围门控信号处理,可以通过选择较少的衰减波长,并且还通过采用范围门控信号处理,存在有害光穿透的有害渗透性的效果。通过仔细选择这些参数以及检测器中心频率,带宽和视野,可以使用带宽在数十MHz范围内使用带宽的传感器来制作AR-PAF测量。这些调查结果对制备与癌症,糖尿病,动脉粥样硬化和其他条件相关的微循环异常相关的血流进行深度组织测量的前景。

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