Deep Learning and 3D Imaging Reveal Whole-Body Alterations in Obesity

Doris Kaltenecker, Izabela Horvath, Rami Al-Maskari, Zeynep Ilgin Kolabas, Ying Chen, Luciano Hoeher, Mihail Todorov, Saketh Kapoor, Mayar Ali, Florian Kofler, Pauline Morigny, Julia Geppert, Denise Jeridi, Carolina Cigankova, Victor Miro Kolenic, Nilsu Gur, Chenchen Pan, Marie Piraud, Daniel Rueckert, Maria Rohm, Farida Hellal, Markus Elsner, Harsharan Singh Bhatia, Bjorn H Menze, Stephan Herzig, Johannes Christian Paetzold, Mauricio Berriel Diaz, Ali Erturk
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Abstract

Many diseases, such as obesity, have systemic effects that impact multiple organ systems throughout the body. However, tools for comprehensive, high-resolution analysis of disease-associated changes at the whole-body scale have been lacking. Here, we developed a suite of deep learning-based image analysis algorithms (MouseMapper) and integrated it with tissue clearing and light-sheet microscopy to enable a comprehensive analysis of diseases impacting diverse systems across the mouse body. This approach enables the quantitative analysis of cellular and structural changes across the entire mouse body at unprecedented resolution and scale, including tracking nerves over several centimeters in whole animal bodies. To demonstrate its power, we applied MouseMapper to study nervous and immune systems in high-fat diet induced obesity. We uncovered widespread changes in both immune cell distribution and nerve structures, including alterations in the trigeminal nerve characterized by a reduced number of nerve endings in obese mice. These structural abnormalities were associated with functional deficits of whisker sensing and proteomic changes in the trigeminal ganglion, primarily affecting pathways related to axon growth and the complement system. Additionally, we found heterogeneity in obesity-induced whole-body inflammation across different tissues and organs. Our study demonstrates MouseMapper's capability to discover and quantify pathological alterations at the whole-body level, offering a powerful approach for investigating the systemic impacts of various diseases.
深度学习和三维成像揭示肥胖症的全身变化
许多疾病,如肥胖症,都会对全身多个器官系统产生系统性影响。然而,目前还缺乏在全身范围内对疾病相关变化进行全面、高分辨率分析的工具。在这里,我们开发了一套基于深度学习的图像分析算法(MouseMapper),并将其与组织清除和光片显微镜技术相结合,以实现对影响小鼠全身不同系统的疾病的全面分析。这种方法能以前所未有的分辨率和规模对整个小鼠身体的细胞和结构变化进行定量分析,包括追踪整个动物身体几厘米长的神经。为了证明 MouseMapper 的强大功能,我们应用 MouseMapper 研究了高脂饮食诱发肥胖症的神经和免疫系统。我们发现了免疫细胞分布和神经结构的广泛变化,包括肥胖小鼠三叉神经的改变,其特点是神经末梢数量减少。这些结构异常与三叉神经节的胡须感知功能缺陷和蛋白质组变化有关,主要影响轴突生长和补体系统的相关通路。此外,我们还发现肥胖诱导的全身炎症在不同组织和器官间存在异质性。我们的研究证明了 MouseMapper 在全身水平发现和量化病理改变的能力,为研究各种疾病的全身影响提供了一种强有力的方法。
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