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用于研究和可视化人类肿瘤细胞转移的鸡胚绒毛尿囊膜模型系统

Chick embryo chorioallantoic membrane model systems to study and visualize human tumor cell metastasis.

作者信息

Deryugina Elena I, Quigley James P

机构信息

The Scripps Research Institute, La Jolla, CA 92037, USA.

出版信息

Histochem Cell Biol. 2008 Dec;130(6):1119-30. doi: 10.1007/s00418-008-0536-2. Epub 2008 Nov 13.

Abstract

Since their introduction almost a century ago, chick embryo model systems involving the technique of chorioallantoic grafting have proved invaluable in the in vivo studies of tumor development and angiogenesis and tumor cell dissemination. The ability of the chick embryo's chorioallantoic membrane (CAM) to efficiently support the growth of inoculated xenogenic tumor cells greatly facilitates analysis of human tumor cell metastasis. During spontaneous metastasis, the highly vascularized CAM sustains rapid tumor formation within several days following cell grafting. The dense capillary network of the CAM also serves as a repository of aggressive tumor cells that escaped from the primary tumor and intravasated into the host vasculature. This spontaneous metastasis setting provides a unique experimental model to study in vivo the intravasation step of the metastatic cascade. During experimental metastasis when tumor cells are inoculated intravenously, the CAM capillary system serves as a place for initial arrest and then, for tumor cell extravasation and colonization. The tissue composition and accessibility of the CAM for experimental interventions makes chick embryo CAM systems attractive models to follow the fate and visualize microscopically the behavior of grafted tumor cells in both spontaneous and experimental metastasis settings.

摘要

自从近一个世纪前引入以来,涉及绒毛尿囊膜移植技术的鸡胚模型系统在肿瘤发生、血管生成以及肿瘤细胞播散的体内研究中已被证明具有极高的价值。鸡胚绒毛尿囊膜(CAM)有效支持接种的异种肿瘤细胞生长的能力极大地促进了对人类肿瘤细胞转移的分析。在自发转移过程中,高度血管化的CAM在细胞移植后的几天内就能支持肿瘤快速形成。CAM密集的毛细血管网络还充当了侵袭性肿瘤细胞的储存库,这些细胞从原发肿瘤逃逸并侵入宿主脉管系统。这种自发转移的情况为在体内研究转移级联反应的血管内侵入步骤提供了一个独特的实验模型。在实验性转移中,当肿瘤细胞通过静脉接种时,CAM毛细血管系统充当了肿瘤细胞最初滞留的场所,随后则是肿瘤细胞外渗和定植的场所。CAM的组织构成以及便于进行实验干预的特性,使得鸡胚CAM系统成为在自发和实验性转移情况下追踪移植肿瘤细胞命运并在显微镜下观察其行为的有吸引力的模型。

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