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一种基于 2D 测量估计 3D 细胞迁移轨迹的智能体方法:量化与比较 T 细胞与 CAR-T 细胞的 3D 迁移

英文原题:An agent-based method to estimate 3D cell migration trajectories from 2D measurements: Quantifying and comparing T vs CAR-T 3D cell migration.

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An agent-based method to estimate 3D cell migration trajectories from 2D measurements: Quantifying and comparing T vs CAR-T 3D cell migration.

PubMed 2024/07/19(内容时间) Comput Methods Programs Biomed Q1 · IF 6.4(JCR 2025)

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研究概要

该框架表明,3D 轨迹的 2D 投影可能无法准确代表真实的迁移模式。此外,它提供了一种从 2D 实验数据估计 3D 迁移模式的工具,这些数据可以通过自动量化算法轻松获得。这种方法有助于减少实验室对复杂且昂贵的显微镜设备的需求,以及减少生成和分析 3D 实验数据所涉及的计算负担。

研究思路结论见上方概要

免疫细胞迁移是使免疫细胞能够发现入侵病原体、控制组织损伤并消除原发性发展肿瘤的关键特征之一。嵌合抗原受体(CAR)T细胞疗法是对抗多种癌症的一种新策略。它在治疗血液系统肿瘤方面已取得成功,但在实体瘤方面仍面临许多挑战。在这项工作中,我们评估了T细胞和CAR-T 细胞在致密胶原基水凝胶内的三维(3D)迁移能力。量化三维(3D)细胞迁移需要显微镜技术,而这些技术可能并不容易获得。因此,我们引入了一个简明的数学模型,旨在从二维(2D)细胞轨迹推断细胞的3D轨迹。

我们开发了一个基于3D智能体的模型(ABM),利用逆变换采样方法模拟迁移方向的时间变化。然后,我们提出了一种优化方法,以精确地随时间定向细胞迁移,从而再现来自2D实验细胞轨迹的细胞迁移。利用该模型,我们模拟了在含有不同浓度I型胶原的水凝胶下,在微流控装置中进行的T细胞和CAR-T 细胞的细胞迁移实验,并用光片显微镜验证了我们的3D细胞迁移预测。

我们的研究结果表明,CAR-T 细胞迁移对胶原浓度增加的敏感性高于T细胞,导致其侵袭性下降更为明显。此外,我们的计算模型揭示了T细胞与CAR-T 细胞在三维运动模式上的显著差异。T细胞在三维空间中表现出迁移行为,而CAR-T 细胞主要在XY平面内移动,在Z方向上的运动有限。然而,在引入CXCL12化学梯度后,CAR-T 细胞呈现出与T细胞极为相似的迁移模式。

展开英文摘要原文

Immune cell migration is one of the key features that enable immune cells to find invading pathogens, control tissue damage, and eliminate primary developing tumors. Chimeric antigen receptor (CAR) T-cell therapy is a novel strategy in the battle against various cancers. It has been successful in treating hematological tumors, yet it still faces many challenges in the case of solid tumors. In this work, we evaluate the three-dimensional (3D) migration capacity of T and CAR-T cells within dense collagen-based hydrogels. Quantifying three-dimensional (3D) cell migration requires microscopy techniques that may not be readily accessible. Thus, we introduce a straightforward mathematical model designed to infer 3D trajectories of cells from two-dimensional (2D) cell trajectories.

We develop a 3D agent-based model (ABM) that simulates the temporal changes in the direction of migration with an inverse transform sampling method. Then, we propose an optimization procedure to accurately orient cell migration over time to reproduce cell migration from 2D experimental cell trajectories. With this model, we simulate cell migration assays of T and CAR-T cells in microfluidic devices conducted under hydrogels with different concentrations of type I collagen and validate our 3D cell migration predictions with light-sheet microscopy.

Our findings indicate that CAR-T cell migration is more sensitive to collagen concentration increases than T cells, resulting in a more pronounced reduction in their invasiveness. Moreover, our computational model reveals significant differences in 3D movement patterns between T and CAR-T cells. T cells exhibit migratory behavior in 3D whereas that CAR-T cells predominantly move within the XY plane, with limited movement in the Z direction. However, upon the introduction of a CXCL12 chemical gradient, CAR-T cells present migration patterns that closely resemble those of T cells.

This framework demonstrates that 2D projections of 3D trajectories may not accurately represent real migration patterns. Moreover, it offers a tool to estimate 3D migration patterns from 2D experimental data, which can be easily obtained with automatic quantification algorithms. This approach helps reduce the need for sophisticated and expensive microscopy equipment required in laboratories, as well as the computational burden involved in producing and analyzing 3D experimental data.

论文信息

作者
Camacho-Gomez D、Movilla N、Borau C、Martin A、Oñate Salafranca C、Pardo J、Gomez-Benito MJ、Garcia-Aznar JM
第一作者单位
Department of Mechanical Engineering, Multiscale in Mechanical and Biological Engineering (M2BE), Aragon Institute of Engineering Research (I3A), University of Zaragoza, Zaragoza, Spain.Spain
通讯作者单位
Department of Mechanical Engineering, Multiscale in Mechanical and Biological Engineering (M2BE), Aragon Institute of Engineering Research (I3A), University of Zaragoza, Zaragoza, Spain. Electronic address: jmgaraz@unizar.es.Spain
文献类型
对照研究
期刊
Computer methods and programs in biomedicine2024 Oct
原文标识
PubMed 39068872 · DOI 10.1016/j.cmpb.2024.108331