The molecular bases of the Frank-Starling law of the heart and of its cellular counterpart, the length dependent activation (LDA), are largely unknown. However, the recent discovery of the thick filament activation, a second pathway beside the well-known calcium mediated thin filament activation, is promising for elucidating these mechanisms. The thick filament activation is mediated by the tension acting on it through the mechano-sensing (MS) mechanism and can be related to the LDA via the titin passive tension. Here, we propose a mechanism to explain the higher maximum tension at longer sarcomere lengths generated by a maximally activated muscle and test it in-silico with a single fiber and a ventricle model. The active tension distributi...
AbstractLength-dependent activation (LDA) is a prominent feature of cardiac muscle characterized by ...
AbstractMyofilament length-dependent activation is a universal property of striated muscle, yet the ...
AbstractIn striated muscle thin filament activation is initiated by Ca2+ binding to troponin C and a...
Recent experimental evidence in skeletal muscle demonstrated the existence of a thick-filament mecha...
Recent experimental evidence in skeletal muscle demonstrated the existence of a thick-filament mecha...
Purpose: The aim of this study was to extend current half-sarcomere models by involving a recently f...
The Frank–Starling Law dictates that the heart is able to match ejection to the dynamic changes occu...
Contraction in striated muscle is classically described as regulated by calcium-mediated structural ...
A dual regulation of contraction operates in both skeletal and cardiac muscles. The first mechanism,...
The Frank-Starling mechanism of the heart 1-3 can be described as the relationship between force and...
International audienceThe Frank-Starling law is an important regulatory mechanism of the heart that ...
International audienceThe Frank-Starling law is an important regulatory mechanism of the heart that ...
International audienceThe Frank-Starling law is an important regulatory mechanism of the heart that ...
Almost 60 years ago Andrew Huxley with his seminal paper (Huxley, 1957) laid the foundation of moder...
The cellular basis of the Frank-Starling "Law of the Heart" is the length-dependence of activation, ...
AbstractLength-dependent activation (LDA) is a prominent feature of cardiac muscle characterized by ...
AbstractMyofilament length-dependent activation is a universal property of striated muscle, yet the ...
AbstractIn striated muscle thin filament activation is initiated by Ca2+ binding to troponin C and a...
Recent experimental evidence in skeletal muscle demonstrated the existence of a thick-filament mecha...
Recent experimental evidence in skeletal muscle demonstrated the existence of a thick-filament mecha...
Purpose: The aim of this study was to extend current half-sarcomere models by involving a recently f...
The Frank–Starling Law dictates that the heart is able to match ejection to the dynamic changes occu...
Contraction in striated muscle is classically described as regulated by calcium-mediated structural ...
A dual regulation of contraction operates in both skeletal and cardiac muscles. The first mechanism,...
The Frank-Starling mechanism of the heart 1-3 can be described as the relationship between force and...
International audienceThe Frank-Starling law is an important regulatory mechanism of the heart that ...
International audienceThe Frank-Starling law is an important regulatory mechanism of the heart that ...
International audienceThe Frank-Starling law is an important regulatory mechanism of the heart that ...
Almost 60 years ago Andrew Huxley with his seminal paper (Huxley, 1957) laid the foundation of moder...
The cellular basis of the Frank-Starling "Law of the Heart" is the length-dependence of activation, ...
AbstractLength-dependent activation (LDA) is a prominent feature of cardiac muscle characterized by ...
AbstractMyofilament length-dependent activation is a universal property of striated muscle, yet the ...
AbstractIn striated muscle thin filament activation is initiated by Ca2+ binding to troponin C and a...