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天然小鼠胸腺的活体双光子显微镜检查。

Intravital two-photon microscopy of the native mouse thymus.

作者信息

Seyedhassantehrani Negar, Burns Christian S, Verrinder Ruth, Okafor Victoria, Abbasizadeh Nastaran, Spencer Joel A

机构信息

Quantitative and Systems Biology Graduate Program, University of California Merced, Merced, California, United States of America.

NSF-CREST Center for Cellular and Biomolecular Machines, University of California Merced, Merced, California, United States of America.

出版信息

PLoS One. 2024 Aug 1;19(8):e0307962. doi: 10.1371/journal.pone.0307962. eCollection 2024.

Abstract

The thymus, a key organ in the adaptive immune system, is sensitive to a variety of insults including cytotoxic preconditioning, which leads to atrophy, compression of the blood vascular system, and alterations in hemodynamics. Although the thymus has innate regenerative capabilities, the production of T cells relies on the trafficking of lymphoid progenitors from the bone marrow through the altered thymic blood vascular system. Our understanding of thymic blood vascular hemodynamics is limited due to technical challenges associated with accessing the native thymus in live mice. To overcome this challenge, we developed an intravital two-photon imaging method to visualize the native thymus in vivo and investigated functional changes to the vascular system following sublethal irradiation. We quantified blood flow velocity and shear rate in cortical blood vessels and identified a subtle but significant increase in vessel leakage and diameter ~24 hrs post-sublethal irradiation. Ex vivo whole organ imaging of optically cleared thymus lobes confirmed a disruption of the thymus vascular structure, resulting in an increase in blood vessel diameter and vessel area, and concurrent thymic atrophy. This novel two-photon intravital imaging method enables a new paradigm for directly investigating the thymic microenvironment in vivo.

摘要

胸腺是适应性免疫系统中的关键器官,对包括细胞毒性预处理在内的多种损伤敏感,这会导致萎缩、血管系统受压以及血流动力学改变。尽管胸腺具有先天再生能力,但T细胞的产生依赖于淋巴祖细胞从骨髓通过改变的胸腺血管系统进行迁移。由于在活体小鼠中获取天然胸腺存在技术挑战,我们对胸腺血管血流动力学的了解有限。为了克服这一挑战,我们开发了一种活体双光子成像方法,以在体内可视化天然胸腺,并研究亚致死剂量照射后血管系统的功能变化。我们量化了皮质血管中的血流速度和剪切速率,并确定在亚致死剂量照射后约24小时,血管渗漏和直径有细微但显著的增加。对光学清除的胸腺叶进行的离体全器官成像证实了胸腺血管结构的破坏,导致血管直径和血管面积增加,同时伴有胸腺萎缩。这种新颖的双光子活体成像方法为直接在体内研究胸腺微环境提供了一种新的范例。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c761/11293686/a162c36a8432/pone.0307962.g001.jpg

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