All cells in an animal collectively ensure, moment-to-moment, the survival of the whole organism in the face of environmental stressors(1,2). Physiology seeks to elucidate the intricate network of interactions that sustain life, which often span multiple organs, cell types, and timescales, but a major challenge lies in the inability to simultaneously record time-varying cellular activity throughout the entire body. We developed WHOLISTIC, a method to image second-timescale, time-varying intracellular dynamics across cell-types of the vertebrate body. By advancing and integrating volumetric fluorescence microscopy, machine learning, and pancellular transgenic expression of calcium sensors in transparent young Danio rerio (zebrafish) and adult Danionella, the method enables real-time recording of cellular dynamics across the organism. Calcium is a universal intracellular messenger, with a large array of cellular processes depending on changes in calcium concentration across varying time-scales, making it an ideal proxy of cellular activity(3). Using this platform to screen the dynamics of all cells in the body, we discovered unexpected responses of specific cell types to stimuli, such as chondrocyte reactions to cold, meningeal responses to ketamine, and state-dependent activity, such as oscillatory ependymal-cell activity during periods of extended motor quiescence. At the organ scale, the method uncovered pulsating traveling waves along the kidney nephron. At the multi-organ scale, we uncovered muscle synergies and independencies, as well as muscle-organ interactions. Integration with optogenetics allowed us to all-optically determine the causal direction of brain-body interactions. At the whole-organism scale, the method captured the rapid brainstem-controlled redistribution of blood flow across the body. Finally, we advanced Whole-Body Expansion Microscopy(4) to provide ground-truth molecular and ultrastructural anatomical context, explaining the spatiotemporal structure of activity captured by WHOLISTIC. Together, these innovations establish a new paradigm for systems biology, bridging cellular and organismal physiology, with broad implications for both fundamental research and drug discovery.
Imaging cellular activity simultaneously across all organs of a vertebrate reveals body-wide circuits.
同时对脊椎动物所有器官的细胞活动进行成像,可以揭示遍布全身的神经回路
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作者:Ruetten Virginia M S, Zheng Wei, Siwanowicz Igor, Mensh Brett D, Eddison Mark, Hu Amy, Chi Yunfeng, Lemire Andrew L, Guo Caiying, Kadobianskyi Mykola, Renz Marc, Lelek-Greskovic Sara, He Yisheng, Close Kari, Ihrke Gudrun, Dev Aparna, Petruncio Alyson, Wan Yinan, Engert Florian, Fishman Mark C, Judkewitz Benjamin, Rubinov Mikail, Keller Philipp J, Satou Chie, Yu Guoqiang, Tillberg Paul W, Sahani Maneesh, Ahrens Misha B
| 期刊: | bioRxiv | 影响因子: | 0.000 |
| 时间: | 2025 | 起止号: | 2025 Aug 22 |
| doi: | 10.1101/2025.08.20.670374 | 研究方向: | 神经科学、细胞生物学 |
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