Bruce Bean

Bruce Palmer Bean, PhD

Robert Winthrop Professor of Neurobiology

Neuronal Excitability and Ion Channel Pharmacology

Neurons communicate with each other using electrical impulses. Information is encoded as patterns of “action potentials”, millisecond-long reversals of the voltage across the cell membrane. Different neurons in the brain fire action potentials with a variety of distinct patterns. The Bean lab seeks to understand these different patterns of firing in terms of the underlying molecular devices – tiny pores in the membrane known as ion channels.

In mammalian brains, each neuron possesses several dozen different types of ion channels. Most of these are closed when the neuron is at rest (electrically silent). It is the coordinated, transient opening, or “gating” of particular types of ion channels that underlies electrical signaling. To understand how different combinations of ion channels work together to generate the distinct patterns of action potential firing in different neurons, we make electrical recordings of these cells using patch clamp, voltage clamp and other electrophysiological approaches.

Our goal is to use knowledge of the particular ion channels in different kinds of neurons to find new drugs that can selectively inhibit or enhance electrical activity of specific type of neurons by targeting specific ion channels. In collaboration with Dr. Clifford Woolf’s laboratory, we are currently focused on finding new drugs to treat pain, itch, and cough. We are also seeking to identify new drugs to disrupt epileptic activity.

Publications View
A new Conus peptide ligand for mammalian presynaptic Ca2+ channels.
Authors: Authors: Hillyard DR, Monje VD, Mintz IM, Bean BP, Nadasdi L, Ramachandran J, Miljanich G, Azimi-Zoonooz A, McIntosh JM, Cruz LJ, et al.
Neuron
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P-type calcium channels in rat central and peripheral neurons.
Authors: Authors: Mintz IM, Adams ME, Bean BP.
Neuron
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Pharmacology and electrophysiology of ATP-activated ion channels.
Authors: Authors: Bean BP.
Trends Pharmacol Sci
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P-type calcium channels blocked by the spider toxin omega-Aga-IVA.
Authors: Authors: Mintz IM, Venema VJ, Swiderek KM, Lee TD, Bean BP, Adams ME.
Nature
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Whole-cell recording of calcium channel currents.
Authors: Authors: Bean BP.
Methods Enzymol
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Inhibition of N- and L-type Ca2+ channels by the spider venom toxin omega-Aga-IIIA.
Authors: Authors: Mintz IM, Venema VJ, Adams ME, Bean BP.
Proc Natl Acad Sci U S A
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Pharmacology of calcium channels in cardiac muscle, vascular muscle, and neurons.
Authors: Authors: Bean BP.
Am J Hypertens
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Ca2+ channels in rat central and peripheral neurons: high-threshold current resistant to dihydropyridine blockers and omega-conotoxin.
Authors: Authors: Regan LJ, Sah DW, Bean BP.
Neuron
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Calcium channels. Gating for the physiologist.
Authors: Authors: Bean B.
Nature
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Dual control by ATP and acetylcholine of inwardly rectifying K+ channels in bovine atrial cells.
Authors: Authors: Friel DD, Bean BP.
Pflugers Arch
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