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bioRxiv · 10.1101/285908

Optical Imaging of Metabolic Dynamics in Animals

Abstract

Direct visualization of metabolic dynamics in living tissues with high spatial and temporal resolution is essential to understanding many biological processes. Here we introduce a platform that combines deuterium oxide (D2O) probing with stimulated Raman scattering microscopy (DO-SRS) to image in situ metabolic activities. Enzymatic incorporation of D2O-derived deuterium into macromolecules generates carbon-deuterium (C-D) bonds, which track biosynthesis in tissues and can be imaged by SRS in situ. Within the broad vibrational spectra of C-D bonds, we discovered lipid-, protein-, and DNA-specific Raman shifts and developed spectral unmixing methods to obtain C-D signals with macromolecular selectivity. DO-SRS enabled us to probe de novo lipogenesis in animals, image protein biosynthesis without tissue bias, and simultaneously visualize lipid and protein metabolism and reveal their different dynamics. DO-SRS, being noninvasive, universally applicable, and cost-effective, can be adapted to a broad range of biological systems to study development, tissue homeostasis, aging, and tumor heterogeneity.

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Shi, L., Zheng, C., Shen, Y., Chen, Z., Silveira, E. S., Zhang, L., Wei, M., Liu, C., de Sena-Tomas, C., Targoff, K., Min, W.. 2018-03-22. Optical Imaging of Metabolic Dynamics in Animals. https://doi.org/10.1101/285908

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