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Electrophysiology / Muscular system / Cardiac dysrhythmia / Integral membrane proteins / Ventricular action potential / Action potential / Ion channel / Calcium in biology / Ventricular fibrillation / Biology / Physiology / Cardiac electrophysiology


Population of human ventricular cell models calibrated with in vivo measurements unravels ionic mechanisms of cardiac alternans by
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Document Date: 2013-07-30 06:28:23


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City

London / Oxford / /

Company

Industrial Partnership / Intel / /

Country

United Kingdom / /

Facility

University of Oxford / Pier Lambiase3 / Oxford Centre / Oxford Supercomputing Centre / King Abdullah University of Science / Collaborative Applied Mathematics Mathematical Institute / UK4The Heart Hospital / University of Oxford Wolfson Building / UK3University College / UK5Queensland University of Technology / /

IndustryTerm

step protocol / open source simulation software / /

NaturalFeature

Ks channel / Na channel / Ca channel / Kr channel / /

Organization

Oxford Supercomputing Centre / Department of Computer Science / UK3University College London / UK4The Heart Hospital / UK2Oxford Centre for Collaborative Applied Mathematics / UK5Queensland University of Technology / University of Oxford / /

Person

Jeffrey Robinson Mann Owen / Oliver Baker Waters / Van Ammel Lu / John Walmsley / Oliver J. Britton / Xin Zhou / Michele Orini Ben Hanson Martin / Kevin Burrage Blanca Rodriguez / Huang Menon Russell / Britton Bueno-Orovio Van Ammel / Knox Wilson Duffy McKee / Hanson Martin Haywood Peter / Bruna Chapman / Wilson Duffy / Alfonso Bueno-Orovio Michele / Ben Hanson Martin Haywood / Xin Zhou Alfonso / Martin Haywood Peter Taggart Pier Lambiase Kevin / Russell Toga Vella / Zhu Gu Liu / /

Position

King / MP / /

ProgrammingLanguage

OCCAM / /

ProvinceOrState

Queensland / /

PublishedMedium

PLoS ONE / PLoS Computational Biology / /

Technology

step protocol / Gene Expression / simulation / /

URL

www.maths.ox.ac.uk/occam / /

SocialTag