Literature DB >> 31106909

Quantitative in vivo imaging of neuronal glucose concentrations with a genetically encoded fluorescence lifetime sensor.

Carlos Manlio Díaz-García1, Carolina Lahmann1, Juan Ramón Martínez-François1, Binsen Li1, Dorothy Koveal1, Nidhi Nathwani1, Mahia Rahman1, Jacob P Keller2, Jonathan S Marvin2, Loren L Looger2, Gary Yellen1.   

Abstract

Glucose is an essential source of energy for the brain. Recently, the development of genetically encoded fluorescent biosensors has allowed real time visualization of glucose dynamics from individual neurons and astrocytes. A major difficulty for this approach, even for ratiometric sensors, is the lack of a practical method to convert such measurements into actual concentrations in ex vivo brain tissue or in vivo. Fluorescence lifetime imaging provides a strategy to overcome this. In a previous study, we reported the lifetime glucose sensor iGlucoSnFR-TS (then called SweetieTS) for monitoring changes in neuronal glucose levels in response to stimulation. This genetically encoded sensor was generated by combining the Thermus thermophilus glucose-binding protein with a circularly permuted variant of the monomeric fluorescent protein T-Sapphire. Here, we provide more details on iGlucoSnFR-TS design and characterization, as well as pH and temperature sensitivities. For accurate estimation of glucose concentrations, the sensor must be calibrated at the same temperature as the experiments. We find that when the extracellular glucose concentration is in the range 2-10 mM, the intracellular glucose concentration in hippocampal neurons from acute brain slices is ~20% of the nominal external glucose concentration (~0.4-2 mM). We also measured the cytosolic neuronal glucose concentration in vivo, finding a range of ~0.7-2.5 mM in cortical neurons from awake mice.
© 2019 Wiley Periodicals, Inc.

Entities:  

Keywords:  energy metabolism; fluorescent biosensor; glucose metabolism

Year:  2019        PMID: 31106909      PMCID: PMC6565483          DOI: 10.1002/jnr.24433

Source DB:  PubMed          Journal:  J Neurosci Res        ISSN: 0360-4012            Impact factor:   4.164


  59 in total

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  21 in total

Review 1.  Fluorescent Biosensors for Neuronal Metabolism and the Challenges of Quantitation.

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5.  The distinct roles of calcium in rapid control of neuronal glycolysis and the tricarboxylic acid cycle.

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Review 10.  Glucose metabolic crosstalk and regulation in brain function and diseases.

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