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In vivo imaging of spinal cord in contusion injury model mice by multi-photon microscopy

机译:多光子显微镜对挫伤模型小鼠脊髓的体内成像

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摘要

Fluorescent imaging technique is a promising method and has been developed for in vivo applications in cellular biology. In particular, nonlinear optical imaging technique, multi-photon microscopy has make it possible to analyze deep portion of tissues in living animals such as axons of spinal code. Traumatic spinal cord injuries (SCIs) are usually caused by contusion damages. Therefore, observation of spinal cord tissue after the contusion injury is necessary for understanding cellular dynamics in response to traumatic SCI and development of the treatment for traumatic SCI. Our goal is elucidation of mechanism for degeneration of axons after contusion injuries by establishing SCI model and chronic observation of injured axons in the living animals. Firstly we generated and observed acute SCI model by contusion injury. By using a multi-photon microscope, axons in dorsal cord were visualized approximately 140 micron in depth from the surface. Immediately after injury, minimal morphological change of spinal cord was observed. At 3 days after injury, spinal cord was swelling and the axons seem to be fragmented. At 7 days after injury, increased degradation of axons could be observed, although the image was blurred due to accumulation of the connective tissue, In the present study, we successfully observed axon degeneration after the contusion SCI in a living animal in vivo. Our final goal is to understand molecular mechanisms and cellular dynamics in response to traumatic SCIs in acute and chronic stage.
机译:荧光成像技术是一种有前途的方法,并且已经开发用于细胞生物学的体内应用。特别是,非线性光学成像技术,多光子显微镜技术使得分析活体动物深层组织(例如脊柱轴突)成为可能。创伤性脊髓损伤(SCI)通常是由挫伤造成的。因此,在挫伤性损伤后观察脊髓组织对于理解创伤性SCI的细胞动力学和发展创伤性SCI的治疗是必要的。我们的目标是通过建立SCI模型并长期观察活体动物中受伤的轴突来阐明挫伤后轴突变性的机制。首先,我们建立并观察了挫伤引起的急性SCI模型。通过使用多光子显微镜,可以观察到距表面约140微米深度的脊髓背轴突。受伤后立即观察到最小的脊髓形态变化。受伤后3天,脊髓肿胀,轴突似乎破裂。受伤后第7天,尽管由于结缔组织的积聚而使图像模糊,但可以观察到轴突降解的增加。在本研究中,我们成功地观察到活体动物体内挫伤SCI后轴突变性。我们的最终目标是了解在急性和慢性阶段应对SCI的分子机制和细胞动力学。

著录项

  • 来源
  • 会议地点 San Francisco CA(US)
  • 作者单位

    Translational Research Center, Ehime University Hospital, Department of Toon, Ehime, 791-0295, Japan,Molecular Medicine for Pathogenesis Ehime University Graduate School of Medicine, Toon, Ehime, 791-0295, Japan,Proteo-Science Center, Ehime University Shitukawa, Toon, Ehime, 791-0295, Japan;

    Orthopaedic Surgery, Ehime University Graduate School of Medicine, Toon, Ehime, 791-0295, Japan;

    Orthopaedic Surgery, Ehime University Graduate School of Medicine, Toon, Ehime, 791-0295, Japan;

    Molecular Medicine for Pathogenesis Ehime University Graduate School of Medicine, Toon, Ehime, 791-0295, Japan,Proteo-Science Center, Ehime University Shitukawa, Toon, Ehime, 791-0295, Japan;

    Translational Research Center, Ehime University Hospital, Department of Toon, Ehime, 791-0295, Japan,Orthopaedic Surgery, Ehime University Graduate School of Medicine, Toon, Ehime, 791-0295, Japan;

    Translational Research Center, Ehime University Hospital, Department of Toon, Ehime, 791-0295, Japan,Molecular Medicine for Pathogenesis Ehime University Graduate School of Medicine, Toon, Ehime, 791-0295, Japan,Proteo-Science Center, Ehime University Shitukawa, Toon, Ehime, 791-0295, Japan;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    multiphoton microscopy; spinal cord injury; in vivo imaging; fluoresce imaging; nonlinear optical imaging; SHG imaging;

    机译:多光子显微镜脊髓损伤;体内成像;荧光成像;非线性光学成像; SHG成像;
  • 入库时间 2022-08-26 13:47:40

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