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Cell Energy Budget Platform for Multiparametric Assessment of Cell and Tissue Metabolism

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Mitochondrial Medicine

Part of the book series: Methods in Molecular Biology ((MIMB,volume 2276))

Abstract

Specific bioenergetic signature reports on the current metabolic state of the cell, which may be affected by metabolic rearrangement, dysfunction or dysregulation of relevant signaling pathways, altered physiological condition or energy stress. A combined analysis of respiration , glycolytic flux, Krebs cycle activity, ATP levels, and total biomass allows informative initial assessment. Such simple, high-throughput, multiparametric methodology, called cell energy budget (CEB ) platform, is presented here and demonstrated with particular cell and tissue models. The CEB uses a commercial fluorescent lanthanide probe pH-Xtra™ to measure extracellular acidification (ECA) associated with lactate (L-ECA) and combined lactate/CO2 (T-ECA), a phosphorescent probe MitoXpress®-Xtra to measure oxygen consumption rate (OCR), a bioluminescent ATP kit, and an absorbance-based total protein assay. All the assays are performed on a standard multi-label reader. Using the same readouts, the CEB approach can be extended to more detailed mechanistic studies, by targeting specific pathways in cell bioenergetics and measuring other cellular parameters, such as NAD(P)H, Ca2+, mitochondrial pH, membrane potential, redox state, with conventional fluorescent or luminescent probes.

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Acknowledgments

Support of this work by the Science Foundation Ireland, grant 12/RC/2276_P2, is gratefully acknowledged.

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Correspondence to Dmitri B. Papkovsky .

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Papkovsky, D.B., Zhdanov, A.V. (2021). Cell Energy Budget Platform for Multiparametric Assessment of Cell and Tissue Metabolism. In: Weissig, V., Edeas, M. (eds) Mitochondrial Medicine . Methods in Molecular Biology, vol 2276. Springer, New York, NY. https://doi.org/10.1007/978-1-0716-1266-8_23

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  • DOI: https://doi.org/10.1007/978-1-0716-1266-8_23

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  • Publisher Name: Springer, New York, NY

  • Print ISBN: 978-1-0716-1265-1

  • Online ISBN: 978-1-0716-1266-8

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