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Molecular-scale visualization of sarcomere contraction within native cardiomyocytes
by
Schneider, Jonathan
, Jasnin, Marion
, Scholze, Sarah
, Baumeister, Wolfgang
, Plitzko, Jürgen M.
, Böttcher, Ralph T.
, Schwille, Petra
, Burbaum, Laura
in
147/143
/ 631/535/1258/1260
/ 631/80/128/1276
/ 631/80/128/1675
/ Actin
/ Actin Cytoskeleton
/ Actins - metabolism
/ Actomyosin
/ Animals
/ Arrays
/ Cardiomyocytes
/ Filaments
/ Hexagonal lattice
/ Humanities and Social Sciences
/ Male
/ Mice
/ Mice, Inbred C57BL
/ Molecular structure
/ multidisciplinary
/ Muscle contraction
/ Muscle Contraction - physiology
/ Muscle, Skeletal - chemistry
/ Muscle, Striated
/ Muscles
/ Muscular function
/ Myocytes, Cardiac - physiology
/ Myocytes, Cardiac - ultrastructure
/ Myofibrils
/ Myosin
/ Neonates
/ Polarity
/ Rats
/ Rats, Wistar
/ Sarcomeres
/ Sarcomeres - physiology
/ Sarcomeres - ultrastructure
/ Science
/ Science (multidisciplinary)
/ Skeletal muscle
/ Sliding
/ Tomography
/ Visualization
2021
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Molecular-scale visualization of sarcomere contraction within native cardiomyocytes
by
Schneider, Jonathan
, Jasnin, Marion
, Scholze, Sarah
, Baumeister, Wolfgang
, Plitzko, Jürgen M.
, Böttcher, Ralph T.
, Schwille, Petra
, Burbaum, Laura
in
147/143
/ 631/535/1258/1260
/ 631/80/128/1276
/ 631/80/128/1675
/ Actin
/ Actin Cytoskeleton
/ Actins - metabolism
/ Actomyosin
/ Animals
/ Arrays
/ Cardiomyocytes
/ Filaments
/ Hexagonal lattice
/ Humanities and Social Sciences
/ Male
/ Mice
/ Mice, Inbred C57BL
/ Molecular structure
/ multidisciplinary
/ Muscle contraction
/ Muscle Contraction - physiology
/ Muscle, Skeletal - chemistry
/ Muscle, Striated
/ Muscles
/ Muscular function
/ Myocytes, Cardiac - physiology
/ Myocytes, Cardiac - ultrastructure
/ Myofibrils
/ Myosin
/ Neonates
/ Polarity
/ Rats
/ Rats, Wistar
/ Sarcomeres
/ Sarcomeres - physiology
/ Sarcomeres - ultrastructure
/ Science
/ Science (multidisciplinary)
/ Skeletal muscle
/ Sliding
/ Tomography
/ Visualization
2021
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Molecular-scale visualization of sarcomere contraction within native cardiomyocytes
by
Schneider, Jonathan
, Jasnin, Marion
, Scholze, Sarah
, Baumeister, Wolfgang
, Plitzko, Jürgen M.
, Böttcher, Ralph T.
, Schwille, Petra
, Burbaum, Laura
in
147/143
/ 631/535/1258/1260
/ 631/80/128/1276
/ 631/80/128/1675
/ Actin
/ Actin Cytoskeleton
/ Actins - metabolism
/ Actomyosin
/ Animals
/ Arrays
/ Cardiomyocytes
/ Filaments
/ Hexagonal lattice
/ Humanities and Social Sciences
/ Male
/ Mice
/ Mice, Inbred C57BL
/ Molecular structure
/ multidisciplinary
/ Muscle contraction
/ Muscle Contraction - physiology
/ Muscle, Skeletal - chemistry
/ Muscle, Striated
/ Muscles
/ Muscular function
/ Myocytes, Cardiac - physiology
/ Myocytes, Cardiac - ultrastructure
/ Myofibrils
/ Myosin
/ Neonates
/ Polarity
/ Rats
/ Rats, Wistar
/ Sarcomeres
/ Sarcomeres - physiology
/ Sarcomeres - ultrastructure
/ Science
/ Science (multidisciplinary)
/ Skeletal muscle
/ Sliding
/ Tomography
/ Visualization
2021
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Molecular-scale visualization of sarcomere contraction within native cardiomyocytes
Journal Article
Molecular-scale visualization of sarcomere contraction within native cardiomyocytes
2021
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Overview
Sarcomeres, the basic contractile units of striated muscle, produce the forces driving muscular contraction through cross-bridge interactions between actin-containing thin filaments and myosin II-based thick filaments. Until now, direct visualization of the molecular architecture underlying sarcomere contractility has remained elusive. Here, we use in situ cryo-electron tomography to unveil sarcomere contraction in frozen-hydrated neonatal rat cardiomyocytes. We show that the hexagonal lattice of the thick filaments is already established at the neonatal stage, with an excess of thin filaments outside the trigonal positions. Structural assessment of actin polarity by subtomogram averaging reveals that thin filaments in the fully activated state form overlapping arrays of opposite polarity in the center of the sarcomere. Our approach provides direct evidence for thin filament sliding during muscle contraction and may serve as a basis for structural understanding of thin filament activation and actomyosin interactions inside unperturbed cellular environments.
Sarcomeres, the building blocks of striated muscles, comprise ordered actomyosin arrays involved in force production. Here, the authors visualize sarcomere organization in neonatal cardiomyocytes with in situ cryo-electron tomography, revealing a reduced order of the thin filaments, their sliding and functional states enabling contraction.
Publisher
Nature Publishing Group UK,Nature Publishing Group,Nature Portfolio
Subject
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