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运动模糊显微镜:全血流中细胞黏附动力学的体外成像。

Motion blur microscopy: in vitro imaging of cell adhesion dynamics in whole blood flow.

机构信息

Department of Mechanical and Aerospace Engineering, Case Western Reserve University, Cleveland, OH, USA.

Department of Physics, Case Western Reserve University, Cleveland, OH, USA.

出版信息

Nat Commun. 2024 Aug 16;15(1):7058. doi: 10.1038/s41467-024-51014-4.

Abstract

Imaging and characterizing the dynamics of cellular adhesion in blood samples is of fundamental importance in understanding biological function. In vitro microscopy methods are widely used for this task but typically require diluting the blood with a buffer to allow for transmission of light. However, whole blood provides crucial signaling cues that influence adhesion dynamics, which means that conventional approaches lack the full physiological complexity of living microvasculature. We can reliably image cell interactions in microfluidic channels during whole blood flow by motion blur microscopy (MBM) in vitro and automate image analysis using machine learning. MBM provides a low cost, easy to implement alternative to intravital microscopy, for rapid data generation where understanding cell interactions, adhesion, and motility is crucial. MBM is generalizable to studies of various diseases, including cancer, blood disorders, thrombosis, inflammatory and autoimmune diseases, as well as providing rich datasets for theoretical modeling of adhesion dynamics.

摘要

在理解生物学功能方面,对血液样本中细胞黏附的动态进行成像和特征分析至关重要。体外显微镜方法广泛用于这项任务,但通常需要用缓冲液稀释血液,以允许光的传输。然而,全血提供了影响黏附动力学的关键信号,这意味着传统方法缺乏活体微血管的完整生理复杂性。我们可以通过体外的运动模糊显微镜(MBM)在全血流中可靠地对微流道中的细胞相互作用进行成像,并使用机器学习自动进行图像分析。MBM 提供了一种低成本、易于实现的替代方案,可用于快速数据生成,在这种情况下,了解细胞相互作用、黏附和迁移至关重要。MBM 可推广到各种疾病的研究,包括癌症、血液疾病、血栓形成、炎症和自身免疫性疾病,并为黏附动力学的理论建模提供了丰富的数据集。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/76c4/11329636/24c654a195a5/41467_2024_51014_Fig1_HTML.jpg

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