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Optical-resolution photoacoustic microscopy.

机译:光学分辨率光声显微镜。

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摘要

Optical microscopy, providing valuable biomedical insights at the cellular and organelle levels, has been widely recognized as an enabling technology. Mainstream optical microscopy technologies, including single-/multi-photon fluorescence microscopy and OCT, have demonstrated extraordinary sensitivities to fluorescence and optical scattering contrasts, respectively. However, the optical absorption contrast of biological tissues, which encodes essential physiological/pathological information, has not yet been fully assessable.;The emergence of biomedical photoacoustics has led to a new branch of optical microscopy---OR-PAM. As a valuable complement to existing optical microscopy technologies, OR-PAM detects optical absorption contrasts with exquisite sensitivity (i.e., 100%). Combining OR-PAM with fluorescence microscopy or optical-scattering-based OCT (or both) provides comprehensive optical properties of biological tissues. Moreover, OR-PAM encodes optical absorption into acoustic waves, in contrast to the pure optical processes in fluorescence microscopy and OCT, and thus provides background-free detection. The acoustic detection in OR-PAM mitigates the impacts of optical scattering on signal degradation and naturally eliminates possible interferences (i.e., crosstalks) between excitation and detection, which is a common problem in fluorescence microscopy due to the overlap between the excitation and fluorescence spectra and imperfect extinction of the filter. Unique for high-resolution imaging of optical absorption, OR-PAM has demonstrated broad biomedical applications in fields such as neurology, ophthalmology, vascular biology, and dermatology. My doctoral research focuses on developments and biomedical applications of OR-PAM.;The first part of my dissertation discusses the development of three generations of OR-PAM towards high-resolution, high-sensitivity, high-speed, and wide FOV in vivo imaging. In this section, I provide a comprehensive description of OR-PAM, including the principle, system design, system configuration, experimental procedures, laser safety, functional imaging scheme, and example biomedical applications at a variety of in vivo anatomical sites (i.e., skins, eyes and brains).;The second part of my dissertation focuses on the application of OR-PAM in vascular biology, with an emphasis on neovascularization. In this section, I demonstrate longitudinal OR-PAM monitoring of the morphological (i.e., vessel diameter, length, tortuosity and volume) and functional (i.e., sO2) changes of angiogenic microenvironment at the capillary level, in both a non-disease TetON-HIF-1 transgenic mouse model and a cancer xenograft model in mouse ear.;The last part of my dissertation focuses on the application of OR-PAM in neurology, with an emphasis on cortical stimulation, Alzheimer's disease, and ischemic stroke. In this section, I use label-free OR-PAM for both acute monitoring of microvascular responses to direct electrical stimulations of the mouse somatosensory cortex through a cranial opening and longitudinal monitoring of the morphological and functional changes of cortical vasculature in a transient middle cerebral artery occlusion mouse model. I also explore the potential of OR-PAM for transcranial monitoring of amyloid plaque growth in an AD mouse model.
机译:光学显微镜在细胞和细胞器水平上提供有价值的生物医学见解,已被广泛认为是一种使能技术。主流光学显微镜技术,包括单/多光子荧光显微镜和OCT,分别显示出对荧光和光学散射对比的非凡敏感性。然而,尚未完全评估编码基本生理/病理信息的生物组织的光吸收对比度。生物医学光声技术的出现导致了光学显微镜的新分支--- OR-PAM。作为现有光学显微镜技术的宝贵补充,OR-PAM可以以极高的灵敏度(即100%)检测光学吸收对比。将OR-PAM与荧光显微镜或基于光散射的OCT(或两者)结合使用可提供生物组织的全面光学特性。此外,与荧光显微镜和OCT中的纯光学过程相比,OR-PAM将光吸收编码为声波,从而提供了无背景检测。 OR-PAM中的声学检测可减轻光散射对信号衰减的影响,并自然消除激发和检测之间可能存在的干扰(即串扰),这是荧光显微镜中的常见问题,因为激发和荧光光谱之间存在重叠。过滤器不完全熄灭。 OR-PAM独特于光学吸收的高分辨率成像,在神经病学,眼科学,血管生物学和皮肤病学等领域已证明了广泛的生物医学应用。我的博士研究专注于OR-PAM的发展和生物医学应用。;论文的第一部分讨论了三代OR-PAM向高分辨率,高灵敏度,高速和宽视野的体内成像的发展。 。在本节中,我将对OR-PAM进行全面的描述,包括原理,系统设计,系统配置,实验程序,激光安全性,功能成像方案以及各种体内解剖部位(例如皮肤)的生物医学应用示例,眼睛和大脑)。;论文的第二部分重点研究OR-PAM在血管生物学中的应用,重点是新血管形成。在本节中,我展示了在非疾病性TetON-中,在毛细管水平上对血管生成微环境的形态学(即血管直径,长度,曲折度和体积)和功能性(即sO2)变化的纵向OR-PAM监测。 HIF-1转基因小鼠模型和小鼠耳癌异种移植模型。本文的最后一部分着眼于OR-PAM在神经病学中的应用,重点是皮层刺激,阿尔茨海默氏病和缺血性中风。在本部分中,我将使用无标签的OR-PAM来进行急性监测微血管反应(通过颅骨开口对小鼠体感皮层进行直接电刺激),以及纵向监测短暂性大脑中动脉的皮质脉管系统的形态和功能变化。咬合小鼠模型。我还探讨了OR-PAM在颅内监测AD小鼠模型中淀粉样斑块生长的潜力。

著录项

  • 作者

    Hu, Song.;

  • 作者单位

    Washington University in St. Louis.;

  • 授予单位 Washington University in St. Louis.;
  • 学科 Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 155 p.
  • 总页数 155
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:45:35

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