Gary Yellen

Gary Yellen, PhD

George Packer Berry Professor of Neurobiology

Neuronal Metabolism and Excitability; Fluorescent Biosensor Imaging; K-ATP Channels and Anti-epilepsy Mechanisms

A major research focus of our lab was inspired by a remarkably effective but poorly understood therapy for epilepsy: the ketogenic diet. Used mainly for the many patients with drug-resistant epilepsy, this high fat, very low carbohydrate diet produces a dramatic reduction or elimination in seizures for most patients. We are investigating the possible role of metabolically-sensitive Kchannels (KATP channels) in the mechanism of the diet, and learning about their basic role in neuronal firing. We have discovered that a change in fuel supply to brain cells, or in their genetic preference for certain fuels, can produce opening of KATP channels in various central neurons.  Opening of these channels slows action potential firing and may contribute to the anticonvulsant mechanism.

To investigate the metabolic events that lead to seizure resistance, and also to study the fundamental features of neural metabolism, we have developed a series of fluorescent biosensors of metabolism. These sensors allow us to visualize the local and time-varying changes of important molecules (like ATP or NADH) in living cells. We target these sensors to individual brain cells to learn how they respond dynamically to rapid changes in energy demand during brain activity, and how these responses change with variations in fuel supply and other alterations in metabolism. We use fluorescence lifetime imaging (FLIM) to get a quantitative readout of the sensors in acute brain slices or in vivo in the mouse brain.

Publications View
BAD and KATP channels regulate neuron excitability and epileptiform activity.
Authors: Authors: Martínez-François JR, Fernández-Agüera MC, Nathwani N, Lahmann C, Burnham VL, Danial NN, Yellen G.
Elife
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BAD knockout provides metabolic seizure resistance in a genetic model of epilepsy with sudden unexplained death in epilepsy.
Authors: Authors: Foley J, Burnham V, Tedoldi M, Danial NN, Yellen G.
Epilepsia
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Live cell imaging of cytosolic NADH/NAD+ ratio in hepatocytes and liver slices.
Authors: Authors: Masia R, McCarty WJ, Lahmann C, Luther J, Chung RT, Yarmush ML, Yellen G.
Am J Physiol Gastrointest Liver Physiol
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Akt regulation of glycolysis mediates bioenergetic stability in epithelial cells.
Authors: Authors: Hung YP, Teragawa C, Kosaisawe N, Gillies TE, Pargett M, Minguet M, Distor K, Rocha-Gregg BL, Coloff JL, Keibler MA, Stephanopoulos G, Yellen G, Brugge JS, Albeck JG.
Elife
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Neuronal Stimulation Triggers Neuronal Glycolysis and Not Lactate Uptake.
Authors: Authors: Díaz-García CM, Mongeon R, Lahmann C, Koveal D, Zucker H, Yellen G.
Cell Metab
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Cytosolic NADH-NAD(+) Redox Visualized in Brain Slices by Two-Photon Fluorescence Lifetime Biosensor Imaging.
Authors: Authors: Mongeon R, Venkatachalam V, Yellen G.
Antioxid Redox Signal
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The leak channel NALCN controls tonic firing and glycolytic sensitivity of substantia nigra pars reticulata neurons.
Authors: Authors: Lutas A, Lahmann C, Soumillon M, Yellen G.
Elife
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Corrigendum: A PKA activity sensor for quantitative analysis of endogenous GPCR signaling via 2-photon FRET-FLIM imaging.
Authors: Authors: Chen Y, Saulnier JL, Yellen G, Sabatini BL.
Front Pharmacol
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Variants in KCNJ11 and BAD do not predict response to ketogenic dietary therapies for epilepsy.
Authors: Authors: Schoeler NE, Leu C, White J, Plagnol V, Ellard S, Matarin M, Yellen G, Thiele EA, Mackay M, McMahon JM, Scheffer IE, Sander JW, Cross JH, Sisodiya SM.
Epilepsy Res
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Quantitative two-photon imaging of fluorescent biosensors.
Authors: Authors: Yellen G, Mongeon R.
Curr Opin Chem Biol
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