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背部皮肤褶皱腔室中肿瘤血管生成与消退的活体显微镜检查:机制洞察与治疗策略的临床前测试

Intravital microscopy of tumor angiogenesis and regression in the dorsal skin fold chamber: mechanistic insights and preclinical testing of therapeutic strategies.

作者信息

Koehl Gudrun E, Gaumann Andreas, Geissler Edward K

机构信息

Department of Surgery, University of Regensburg, Franz-Josef-Strauss Allee 11, Regensburg, Germany.

出版信息

Clin Exp Metastasis. 2009;26(4):329-44. doi: 10.1007/s10585-008-9234-7. Epub 2009 Feb 4.

DOI:10.1007/s10585-008-9234-7
PMID:19190882
Abstract

Tumor angiogenesis is a major step in tumor progression to clinically symptomatic cancer and thus a potential target for cancer therapy. It is essential to understand the fundamental mechanisms of the angiogenic processes to provide a rational for testing inhibitory strategies for cancer treatment. The dorsal skin fold chamber provides a suitable (chronic) model for intravital microscopy to monitor the same tumor in time-lapse imaging series and in real-time functional analysis e.g., of blood flow. Adaptation of this model to several rodent species and tumor types has led to numerous physical and drug based therapy options. With modification of implantation techniques, motility and invasion of individual cells can be visualized, in addition to angiogenesis and microcirculation. Modern fluorescent techniques such as ex vivo labelling of specific cell populations and the introduction of stably fluorescent protein expressing cell lines further enhance the suitability of this technique. In addition, laser scanning and multiphoton microscopy in combination with genetically altered mouse strains and cell lines are making the DCSF even more attractive for mechanistic and interventional studies in cancer research. Here we review the preparation as well as the applications of the DCSF in tumor angiogenesis.

摘要

肿瘤血管生成是肿瘤发展为临床症状性癌症的关键步骤,因此是癌症治疗的潜在靶点。了解血管生成过程的基本机制对于测试癌症治疗的抑制策略至关重要。背部皮肤褶皱室为活体显微镜检查提供了一个合适的(慢性)模型,用于在延时成像系列中以及例如对血流进行实时功能分析时监测同一肿瘤。该模型对多种啮齿动物物种和肿瘤类型的适应性带来了众多基于物理和药物的治疗选择。通过改进植入技术,除了血管生成和微循环外,还可以观察单个细胞的运动和侵袭。现代荧光技术,如特定细胞群体的离体标记和稳定表达荧光蛋白的细胞系的引入,进一步提高了该技术的适用性。此外,激光扫描和多光子显微镜与基因改造的小鼠品系和细胞系相结合,使得背部皮肤褶皱室在癌症研究的机制和干预研究中更具吸引力。在此,我们综述了背部皮肤褶皱室在肿瘤血管生成中的制备及应用。

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本文引用的文献

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Dynamic imaging of cancer growth and invasion: a modified skin-fold chamber model.癌症生长和侵袭的动态成像:一种改良的皮褶腔室模型。
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双特异性抗体 CD20-TCB 将 T 细胞与 B 细胞淋巴瘤交联,在人源化小鼠模型中诱导 IFNγ/CXCL10 依赖性外周 T 细胞募集。
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Novel window for cancer nanotheranostics: non-invasive ocular assessments of tumor growth and nanotherapeutic treatment efficacy .癌症纳米诊疗的新窗口:肿瘤生长和纳米治疗效果的无创眼部评估
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Intravital third harmonic generation microscopy of collective melanoma cell invasion: Principles of interface guidance and microvesicle dynamics.黑色素瘤细胞集体侵袭的活体三次谐波产生显微镜检查:界面引导和微泡动力学原理
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PLoS One. 2017 Jun 1;12(6):e0178499. doi: 10.1371/journal.pone.0178499. eCollection 2017.
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Optimization of the dorsal skinfold window chamber model and multi-parametric characterization of tumor-associated vasculature.背部皮褶窗口室模型的优化及肿瘤相关脉管系统的多参数表征
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