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Examination of Contrast Mechanisms in Optoacoustic Imaging of Thermal Lesions

机译:热病变光声成像对比机制的研究

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Optoacoustic Imaging is based on the thermal expansion of tissue caused by a temperature rise due to absorption of short laser pulses. At constant laser fluence, optoacoustic image contrast is proportional to differences in optical absorption and the thermoacoustic efficiency, expressed by the Grueneisen parameter, Γ. Γ is proportional to the thermal expansion coefficient, the sound velocity squared and the inverse heat capacity at constant pressure. In thermal therapies, these parameters may be modified in the treated area. In this work experiments were performed to examine the influence of these parameters on image contrast. A Laser Optoacoustic Imaging System (LOIS, Fairway Medical Technologies, Houston, Texas) was used to image tissue phantoms comprised of cylindrical Polyvinyl Chloride Plastisol (PVCP) optical absorbing targets imbedded in either gelatin or PVCP as the background medium. Varying concentrations of Black Plastic Color (BPC) and titanium dioxide (TiO_2) were added to targets and background to yield desired tissue relevant optical absorption and effective scattering coefficients, respectively. In thermal therapy experiments, ex-vivo bovine liver was heated with laser fibres (805nm laser at 5 W for 600s) to create regions of tissue coagulation. Lesions formed in the liver tissue were visible using the LOIS system with reasonable correspondence to the actual region of tissue coagulation. In the phantom experiments, contrast could be seen with low optical absorbing targets (μ_a of 0.50cm~(-1) down to 0.13cm~(-1)) embedded in a gelatin background (μ_a = 0.13cm~(-1) and μ_s′ = 4.2cm~(-1)). Therefore, the data suggest that small objects (< 5mm) with low absorption coefficients (in the range < 1cm~(-1)) can be imaged using LOIS. PVCP-targets in gelatin were visible, even with the same optical properties as the gelatin, but different Γ. The enhanced contrast may also be caused by differences in the mechanical properties between the target and the surrounding medium. PVCP-targets imbedded in PVCP produced poorer image contrast than PVCP-targets in gelatin with comparable optical properties. The preliminary investigation in tissue equivalent phantoms indicates that in addition to tissue optical properties, differences in mechanical properties between heated and unheated tissues may be responsible for image contrast. Furthermore, thermal lesions in liver tissue, ex-vivo, can be visualized using an optoacoustic system.
机译:光声成像基于由短激光脉冲的吸收引起的温度升高引起的组织的热膨胀。在恒定激光器流量下,光声图像对比度与光学吸收和热声效率的差异成比例,由Grueneisen参数γ表示。 γ与热膨胀系数成比例,声速平方和恒定压力下的反向热容量。在热疗法中,可以在处理区域中修改这些参数。在该工作中,进行实验以检查这些参数对图像对比的影响。激光光声成像系统(LOIS,Fairway Medical Technologies,Houston,Texas)用于图像幽灵,其包括在明胶或PVCP中嵌入的圆柱形聚氯乙烯瓶(PVCP)光学吸收靶作为背景介质。将不同浓度的黑色塑料颜色(BPC)和二氧化钛(TiO_2)加入靶和背景中,以分别产生所需的组织相关光学吸收和有效散射系数。在热疗实验中,用激光纤维(5 W持续600瓦的805nm激光器)加热前体内牛肝脏,以产生组织凝固的区域。使用LOIS系统可见在肝组织中形成的病变,其具有合理对应于组织凝固的实际区域。在幻像实验中,可以用低光学吸收靶(μ_a为0.50cm〜(-1)〜0.13cm〜(-1))的对比度,嵌入明胶背景(μ_a= 0.13cm〜(-1)和μ_s'= 4.2cm〜(-1))。因此,数据表明,使用LOIS可以对具有低吸收系数的小对象(<5mm)(在<1cm〜(-1)范围内)。即使具有与明胶相同的光学性质,也可见明胶中的PVCP靶标。增强的对比度也可能是由靶和周围介质之间的机械性能的差异引起的。 PVCP嵌入的PVCP靶标产生比明胶中的PVCP靶标产生较差的图像对比,具有可比光学性质。组织当量模拟中的初步研究表明,除了组织光学性质之外,加热和未加热组织之间的机械性能的差异可能是对造影的负责。此外,可以使用光声系统可视化肝组织中的热病变。

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