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卡哈尔技术利用度量几何来分析和整合单细胞形态学数据。

CAJAL enables analysis and integration of single-cell morphological data using metric geometry.

机构信息

Department of Genetics, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA, 19104, USA.

Department of Mathematics, School of Arts and Sciences, University of Pennsylvania, Philadelphia, PA, 19104, USA.

出版信息

Nat Commun. 2023 Jun 21;14(1):3672. doi: 10.1038/s41467-023-39424-2.

Abstract

High-resolution imaging has revolutionized the study of single cells in their spatial context. However, summarizing the great diversity of complex cell shapes found in tissues and inferring associations with other single-cell data remains a challenge. Here, we present CAJAL, a general computational framework for the analysis and integration of single-cell morphological data. By building upon metric geometry, CAJAL infers cell morphology latent spaces where distances between points indicate the amount of physical deformation required to change the morphology of one cell into that of another. We show that cell morphology spaces facilitate the integration of single-cell morphological data across technologies and the inference of relations with other data, such as single-cell transcriptomic data. We demonstrate the utility of CAJAL with several morphological datasets of neurons and glia and identify genes associated with neuronal plasticity in C. elegans. Our approach provides an effective strategy for integrating cell morphology data into single-cell omics analyses.

摘要

高分辨率成像技术极大地推动了对细胞在其空间背景下的研究。然而,总结组织中发现的复杂细胞形态的多样性,并推断与其他单细胞数据的关联仍然是一个挑战。在这里,我们提出了 CAJAL,这是一个用于分析和整合单细胞形态数据的通用计算框架。通过构建度量几何,CAJAL 推断细胞形态潜在空间,其中点之间的距离表示将一个细胞的形态改变为另一个细胞的形态所需的物理变形量。我们表明,细胞形态空间促进了单细胞形态数据在不同技术之间的整合,并推断了与其他数据(如单细胞转录组数据)的关系。我们使用神经元和神经胶质的几个形态数据集演示了 CAJAL 的实用性,并确定了与秀丽隐杆线虫神经元可塑性相关的基因。我们的方法为将细胞形态数据整合到单细胞组学分析中提供了一种有效的策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0bfe/10282047/4d194bafc784/41467_2023_39424_Fig1_HTML.jpg

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