Michael Greenberg

About Michael Greenberg

Michael Greenberg, With an exceptional h-index of 27 and a recent h-index of 18 (since 2020), a distinguished researcher at Washington University in St. Louis, specializes in the field of Molecular motors, muscle, single molecule biophysics, mechanobiology, cardiomyopathies.

His recent articles reflect a diverse array of research interests and contributions to the field:

Assessing Cardiac Contractility From Single Molecules to Whole Hearts

Structural dynamics of the intrinsically disordered linker region of cardiac troponin

Skeletal muscle actin mutation R256H causes cardiac hypocontractility by disrupting multiple actin functions demonstrated through multi-scale analysis

Deciphering the molecular mechanism of the small molecule myotrope danicamtiv

CRISPR Activation Reverses Haploinsufficiency and Functional Deficits Caused by TTN Truncation Variants

Harnessing molecular mechanism for precision medicine in dilated cardiomyopathy caused by a mutation in troponin T

Dilated cardiomyopathy-associated skeletal muscle actin (ACTA1) mutation R256H disrupts actin structure and function and causes cardiomyocyte hypocontractility

Insights into post-translational regulation of skeletal muscle contractile function by the acetyltransferases, p300 and CBP

Michael Greenberg Information

University

Position

___

Citations(all)

1900

Citations(since 2020)

1164

Cited By

1103

hIndex(all)

27

hIndex(since 2020)

18

i10Index(all)

36

i10Index(since 2020)

34

Email

University Profile Page

Google Scholar

Michael Greenberg Skills & Research Interests

Molecular motors

muscle

single molecule biophysics

mechanobiology

cardiomyopathies

Top articles of Michael Greenberg

Assessing Cardiac Contractility From Single Molecules to Whole Hearts

2024/3/1

Structural dynamics of the intrinsically disordered linker region of cardiac troponin

Biophysical Journal

2024/2/8

Skeletal muscle actin mutation R256H causes cardiac hypocontractility by disrupting multiple actin functions demonstrated through multi-scale analysis

Biophysical Journal

2024/2/8

Deciphering the molecular mechanism of the small molecule myotrope danicamtiv

Biophysical Journal

2024/2/8

CRISPR Activation Reverses Haploinsufficiency and Functional Deficits Caused by TTN Truncation Variants

Circulation

2024/1/18

Harnessing molecular mechanism for precision medicine in dilated cardiomyopathy caused by a mutation in troponin T

bioRxiv

2024

Dilated cardiomyopathy-associated skeletal muscle actin (ACTA1) mutation R256H disrupts actin structure and function and causes cardiomyocyte hypocontractility

bioRxiv

2024

Insights into post-translational regulation of skeletal muscle contractile function by the acetyltransferases, p300 and CBP

bioRxiv

2024

Multiscale biophysical models of cardiomyopathies reveal complexities challenging existing dogmas

Biophysical Journal

2023/12/19

Abstract EC. 06: Skeletal Muscle Actin Mutation R256H Disrupts Actin Polymerization And Cardiomyocyte Contractility: A Multi-scale Study Of Genetic Dilated Cardiomyopathy

Circulation Research

2023/8/4

Ankit Garg
Ankit Garg

H-Index: 1

Michael Greenberg
Michael Greenberg

H-Index: 16

Divergent Molecular Phenotypes in Point Mutations at the Same Residue in Beta-Myosin Heavy Chain Lead to Distinct Cardiomyopathies

bioRxiv

2023/7/3

Single-molecule mechanics and kinetics of cardiac myosin interacting with regulated thin filaments

Biophysical Journal

2023/6/20

Distinct effects of two hearing loss–associated mutations in the sarcomeric myosin MYH7b

Journal of Biological Chemistry

2023/5/1

Functional assays reveal the pathogenic mechanism of a de novo tropomyosin variant identified in patient with dilated cardiomyopathy

Journal of Molecular and Cellular Cardiology

2023/3/1

The nutritional supplement taurine activates p53-dependent and independent tumor suppressor mechanisms in various cellular models of ovarian cancer

Biorxiv: the Preprint Server for Biology

2023/2/27

Cardiac myosin's mechanics and load dependent kinetics are not altered by the thin-filament proteins

Biophysical Journal

2023/2/10

Establishment of an in vivo human engineered heart tissue platform to model iron overload cardiomyopathy

Biophysical Journal

2023/2/10

Drug specificity and affinity are encoded in the probability of cryptic pocket opening in myosin motor domains

Elife

2023/1/27

Functional divergence of the sarcomeric myosin, MYH7b, supports species-specific biological roles

Journal of Biological Chemistry

2023/1/1

Abstract P1059: Establishing The Mechanistic Basis Of Dilated Cardiomyopathy Associated With The Skeletal Muscle Actin Mutation R256H

Circulation Research

2022/8/5

Ankit Garg
Ankit Garg

H-Index: 1

Kory Lavine
Kory Lavine

H-Index: 29

Michael Greenberg
Michael Greenberg

H-Index: 16

See List of Professors in Michael Greenberg University(Washington University in St. Louis)

Co-Authors

academic-engine