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Isabella R. Clemmer, Holden T. Rogers, Mallory C. Wilson, Zhan Gao, Hsin‐Ju Chan, Zachery R. Gregorich, Farhan Raza, Ying Ping Ge
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Proteoforms as the next Proteomics Currency
10.1126/science.aat1884 · 2018
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10.1038/nmeth.2369 · 2013
Progress in Top-Down Proteomics and the Analysis of Proteoforms
10.1146/annurev-anchem-071015-041550 · 2016
Deciphering Combinatorial Post-Translational Modifications by Top-down Mass Spectrometry
10.1016/j.cbpa.2022.102180 · 2022
Top-down Mass Spectrometry for the Analysis of Combinatorial Post-Translational Modifications
10.1002/mas.21348 · 2013
Peer Reviewed: Top-Down Proteomics
10.1021/ac0415657 · 2004
Top-Down Proteomics: Ready for Prime Time?
10.1021/acs.analchem.7b04747 · 2018
Top-down Proteomics
10.1038/s43586-024-00318-2 · 2024
Top Down Proteomics: Facts and Perspectives
10.1016/j.bbrc.2014.02.041 · 2014
Computational Analysis of Membrane Proteins: The Largest Class of Drug Targets
10.1016/j.drudis.2009.08.006 · 2009
Drugging Membrane Protein Interactions
10.1146/annurev-bioeng-092115-025322 · 2016
Integral Membrane Proteins and Bilayer Proteomics
10.1021/ac303064a · 2013
Integral Membrane Proteins: Bottom-up, Top-down and Structural Proteomics
10.1080/14789450.2017.1359545 · 2017
Tandem Mass Spectrometry of Integral Membrane Proteins for Top-down Proteomics
10.1016/j.trac.2005.04.010 · 2005
Novel Strategies to Address the Challenges in Top-Down Proteomics
10.1021/jasms.1c00099 · 2021
Exploring the Membrane Proteome─Challenges and Analytical Strategies
10.1016/j.jprot.2010.01.005 · 2010
Proteomics of Integral Membrane ProteinsTheory and Application
10.1021/cr068286z · 2007
Top-Down Proteomics of Endogenous Membrane Proteins Enabled by Cloud Point Enrichment and Multidimensional Liquid Chromatography–Mass Spectrometry
10.1021/acs.analchem.0c02533 · 2020
A Photocleavable Surfactant for Top-down Proteomics
10.1038/s41592-019-0391-1 · 2019
High-Throughput Proteomics Enabled by a Photocleavable Surfactant
10.1002/ange.201915374 · 2020
Comprehensive Characterization of Endogenous Phospholamban Proteoforms Enabled by Photocleavable Surfactant and Top-down Proteomics
10.1021/acs.analchem.3c01618 · 2023
Phospholamban: A Crucial Regulator of Cardiac Contractility
10.1038/nrm1151 · 2003
Phospholamban and Cardiac Contractility
10.3109/07853890008998837 · 2000
Phosphorylation of a 22,000-Dalton Component of the Cardiac Sarcoplasmic Reticulum by Adenosine 3′:5′-Monophosphate-Dependent Protein Kinase
10.1016/s0021-9258(19)41650-5 · 1975
Phosphorylation of Troponin I and Phospholamban during Catecholamine Stimulation of Rabbit Heart
10.1038/298182a0 · 1982
The Structural Basis for Phospholamban Inhibition of the Calcium Pump in Sarcoplasmic Reticulum
10.1074/jbc.m113.501585 · 2013
Phospholamban: A Prominent Regulator of Myocardial Contractility
10.1161/01.res.79.6.1059 · 1996
Modulation of Cardiac Contractility by the Phopholamban/SERCA2a Regulatome
10.1161/circresaha.111.259754 · 2012
Sequence Analysis of Phospholamban. Identification of Phosphorylation Sites and Two Major Structural Domains
10.1016/s0021-9258(18)69309-3 · 1986
Palmitoyl Acyltransferase Aph2 in Cardiac Function and the Development of Cardiomyopathy
10.1073/pnas.1518368112 · 2015
Dilated Cardiomyopathy and Heart Failure Caused by a Mutation in Phospholamban
10.1126/science.1081578 · 2003
A Mutation in the Human Phospholamban Gene, Deleting Arginine 14, Results in Lethal, Hereditary Cardiomyopathy
10.1073/pnas.0510519103 · 2006
Arrhythmogenic Cardiomyopathy
10.1161/circresaha.117.309345 · 2017
HRS Expert Consensus Statement on Evaluation, Risk Stratification, and Management of Arrhythmogenic Cardiomyopathy
10.1016/j.hrthm.2019.05.007 · 2019
Sensitive Top-Down Proteomics Analysis of a Low Number of Mammalian Cells Using a Nanodroplet Sample Processing Platform
10.1021/acs.analchem.0c00467 · 2020
Digital Microfluidics and Magnetic Bead-Based Intact Proteoform Elution for Quantitative Top-down Nanoproteomics of Single C. Elegans Nematodes
10.1002/anie.202301969 · 2023
High Sensitivity Top–down Proteomics Captures Single Muscle Cell Heterogeneity in Large Proteoforms
10.1073/pnas.2222081120 · 2023
MASH Native: A Unified Solution for Native Top-down Proteomics Data Processing
10.1093/bioinformatics/btad359 · 2023
Aberrant PLN-R14del Protein Interactions Intensify SERCA2a Inhibition, Driving Impaired Ca2+ Handling and Arrhythmogenesis
10.3390/ijms23136947 · 2022
Reduced Ca(2+)-Sensitivity of SERCA 2a in Failing Human Myocardium Due to Reduced Serin-16 Phospholamban Phosphorylation
10.1006/jmcc.1998.0897 · 1999
Distinct Hypertrophic Cardiomyopathy Genotypes Result in Convergent Sarcomeric Proteoform Profiles Revealed by Top-down Proteomics
10.1073/pnas.2006764117 · doi-reference
Global Proteoform Alterations Across Multiple Cellular Compartments Underlie Obstructive Hypertrophic Cardiomyopathy
10.1161/circheartfailure.125.012899 · doi-reference
Biomarkers in Transplantation Team; NCE CECR PROOF Centre of Excellence. Molecular Signatures of End-Stage Heart Failure
10.1016/j.cardfail.2011.07.001 · doi-reference
Defining the Sarcomeric Proteoform Landscape in Ischemic Cardiomyopathy by Top-Down Proteomics
10.1021/acs.jproteome.2c00729 · doi-reference
Endomyocardial Biopsy in the Clinical Context: Current Indications and Challenging Scenarios
10.1007/s10741-022-10247-5 · doi-reference
Heart Failure Association of the ESC, Heart Failure Society of America and Japanese Heart Failure Society Position Statement on Endomyocardial Biopsy
10.1002/ejhf.2190 · doi-reference
Ultraviolet Photodissociation Mass Spectrometry for Analysis of Biological Molecules
10.1021/acs.chemrev.9b00440 · doi-reference
Complete Protein Characterization Using Top-Down Mass Spectrometry and Ultraviolet Photodissociation
10.1021/ja4029654 · doi-reference
The Role of Electron Transfer Dissociation in Modern Proteomics
10.1021/acs.analchem.7b04810 · doi-reference
The Impact of Phosphorylation on Electron Capture Dissociation of Proteins: A Top-down Perspective
10.1007/s13361-017-1710-3 · doi-reference
Localization of Labile Posttranslational Modifications by Electron Capture Dissociation: The Case of γ-Carboxyglutamic Acid
10.1021/ac990684x · doi-reference
Electron Capture Dissociation of Multiply Charged Protein Cations. A Nonergodic Process
10.1021/ja973478k · doi-reference
CAMKII REGULATION OF PHOSPHOLAMBAN AND SR Ca2+ LOAD
10.1016/j.hrthm.2010.11.035 · doi-reference
14–3-3 Binding Creates a Memory of Kinase Action by Stabilizing the Modified State of Phospholamban
10.1126/scisignal.aaz1436 · doi-reference
Comparison of the Structure and Function of Phospholamban and the Arginine-14 Deficient Mutant Associated with Dilated Cardiomyopathy
10.1371/journal.pone.0106746 · doi-reference
Lethal, Hereditary Mutants of Phospholamban Elude Phosphorylation by Protein Kinase A
10.1074/jbc.m112.382713 · doi-reference