Gary Yellen

Gary Yellen, Ph.D.

Dr. George Packer Berry Professor of Neurobiology, Harvard Medical School

LIVE - Gary Yellen - Faculty Profile by Neuro Coordinator

Gary Yellen, PhD

Title: Dr. George Packer Berry Professor of Neurobiology, Department of Neurobiology, Harvard Medical School

Email: gary_yellen@hms.harvard.edu
Website: yellen.hms.harvard.edu

The Goal

The Yellen lab studies how the brain uses energy and how this affects electrical activity in the brain.

The Impact

Our interest in the interplay between neural metabolism and excitability started with the ketogenic diet (a high-fat, low-carb diet found to calm overactive brain cells), but our studies now delve into the very basics of neural metabolism. We develop new tools for visualizing cell energy metabolism in real time. Understanding how neurons mobilize energy to meet their demands could help us understand and treat energy failure that could occur in neurodegenerative diseases.

A Closer Look

The Harvard Gazette, May 2012 – “Unraveling the secrets of the epilepsy diet”

Harvard researchers showed that tweaking a brain protein (BAD) can shift neurons to ketone-based metabolism, activate a protective potassium channel, and reduce seizures in mice — hinting at a drug that could mimic the ketogenic epilepsy diet without strict dieting.

Harvard Medical School / Dana-Farber Cancer Institute, May 2012 – “Reverse engineering epilepsy’s ‘miracle’ diet”

Gary’s research on the ketogenic diet, which protects against epileptic seizures, reveals a pathway that shows promise in the development of interventions which mimic the diet’s benefits without the need for adhering to strict regimens.

Publications View
Ketone bodies, glycolysis, and KATP channels in the mechanism of the ketogenic diet.
Authors: Authors: Yellen G.
Epilepsia
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Ketogenic diet metabolites reduce firing in central neurons by opening K(ATP) channels.
Authors: Authors: Ma W, Berg J, Yellen G.
J Neurosci
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Cooperative gating between single HCN pacemaker channels.
Authors: Authors: Dekker JP, Yellen G.
J Gen Physiol
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Reversal of HCN channel voltage dependence via bridging of the S4-S5 linker and Post-S6.
Authors: Authors: Prole DL, Yellen G.
J Gen Physiol
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Distinct populations of HCN pacemaker channels produce voltage-dependent and voltage-independent currents.
Authors: Authors: Proenza C, Yellen G.
J Gen Physiol
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Status of the intracellular gate in the activated-not-open state of shaker K+ channels.
Authors: Authors: del Camino D, Kanevsky M, Yellen G.
J Gen Physiol
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A perturbation-based method for calculating explicit likelihood of evolutionary co-variance in multiple sequence alignments.
Authors: Authors: Dekker JP, Fodor A, Aldrich RW, Yellen G.
Bioinformatics
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Intracellular gate opening in Shaker K+ channels defined by high-affinity metal bridges.
Authors: Authors: Webster SM, Del Camino D, Dekker JP, Yellen G.
Nature
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Inactivation in HCN channels results from reclosure of the activation gate: desensitization to voltage.
Authors: Authors: Shin KS, Maertens C, Proenza C, Rothberg BS, Yellen G.
Neuron
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Movements near the gate of a hyperpolarization-activated cation channel.
Authors: Authors: Rothberg BS, Shin KS, Yellen G.
J Gen Physiol
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