Area of research
Cardiology and Cardiovascular Medicine · Molecular Biology
Research interest
Research interests include Cardiac electrophysiology and arrhythmias, Ion channel regulation and function, Cardiac Arrhythmias and Treatments, and Neuroscience and Neural Engineering.
Abstract Or202: Multiscale Platform Identifies Novel Therapeutic Targets for Fibrosis
The Piezo channel is a mechano-sensitive complex component in the mammalian inner ear hair cell
Atomistic mechanisms of the regulation of small-conductance Ca <sup>2+</sup> -activated K <sup>+</sup> channel (SK2) by PIP2
Abstract Mo062: Cpne5 is Necessary for Normal Sinoatrial Node Function
Abstract Tu100: Multiscale Drug Screening for Cardiac Fibrosis Identifies MD2 as a Therapeutic Target
Abstract P3050: <i>Cpne5</i> Is Necessary For Normal Murine Sinoatrial Node Function <i>In Vivo</i>
Disruption of mitochondria–sarcoplasmic reticulum microdomain connectomics contributes to sinus node dysfunction in heart failure
Abstract EC104: Mitochondrial Microdomain Disruption Results In Sinus Node Dysfunction In Heart Failure
Cooperativity of K <sub>v</sub> 7.4 channels confers ultrafast electromechanical sensitivity and emergent properties in cochlear outer hair cells
Potassium channels in the heart: structure, function and regulation
Potassium currents in the heart: functional roles in repolarization, arrhythmia and therapeutics
High‐fat diet induces protein kinase A and G‐protein receptor kinase phosphorylation of β<sub>2</sub>‐adrenergic receptor and impairs cardiac adrenergic reserve in animal hearts
Etiology of distinct membrane excitability in pre- and posthearing auditory neurons relies on activity of Cl <sup>−</sup> channel TMEM16A
Mechanochemotransduction During Cardiomyocyte Contraction Is Mediated by Localized Nitric Oxide Signaling
Progress toward the prevention and treatment of atrial fibrillation: A summary of the Heart Rhythm Society Research Forum on the Treatment and Prevention of Atrial Fibrillation, Washington, DC, December 9–10, 2013
Genetic, Cellular, and Functional Evidence for Ca<sup>2+</sup>Inflow through Ca<sub>v</sub>1.2 and Ca<sub>v</sub>1.3 Channels in Murine Spiral Ganglion Neurons
Adenylyl Cyclase Subtype–Specific Compartmentalization
Low-level vagus nerve stimulation upregulates small conductance calcium-activated potassium channels in the stellate ganglion