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Titin-based force regulates cardiac myofilament structures mediating length-dependent activation.
Hessel, Anthony L; Kuehn, Michel N; Engels, Nichlas M; Nissen, Devin L; Freundt, Johanna K; Ma, Weikang; Irving, Thomas C; Linke, Wolfgang A.
Afiliação
  • Hessel AL; Institute of Physiology II, University of Muenster; Muenster, Germany.
  • Kuehn MN; Institute of Physiology II, University of Muenster; Muenster, Germany.
  • Engels NM; Department of Cellular and Molecular Medicine, University of Arizona; Tucson, AZ, USA.
  • Nissen DL; BioCAT, Department of Biology, Illinois Institute of Technology; Chicago, USA.
  • Freundt JK; Institute of Physiology II, University of Muenster; Muenster, Germany.
  • Ma W; BioCAT, Department of Biology, Illinois Institute of Technology; Chicago, USA.
  • Irving TC; BioCAT, Department of Biology, Illinois Institute of Technology; Chicago, USA.
  • Linke WA; Institute of Physiology II, University of Muenster; Muenster, Germany.
bioRxiv ; 2023 Nov 13.
Article em En | MEDLINE | ID: mdl-38014235
ABSTRACT
The Frank-Starling law states that the heart's stroke volume increases with greater preload due to increased venous return, allowing the heart to adapt to varying circulatory demands. Molecularly, increasing preload increases sarcomere length (SL), which alters sarcomere structures that are correlated to increased calcium sensitivity upon activation. The titin protein, spanning the half-sarcomere, acts as a spring in the I-band, applying a SL-dependent force suggested to pull against and alter myofilaments in a way that supports the Frank-Starling effect. To evaluate this, we employed the titin cleavage (TC) model, where a tobacco-etch virus protease recognition site is inserted into distal I-band titin and allows for rapid, specific cleavage of titin in an otherwise-healthy sarcomere. Here, we evaluated the atomic-level structures of amyopathic cardiac myofilaments following 50% titin cleavage under passive stretch conditions using small-angle X-ray diffraction, which measures these structures under near-physiological (functional) conditions. We report that titin-based forces in permeabilized papillary muscle regulate both thick and thin myofilament structures clearly supporting titin's role in the Frank-Starling mechanism.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article