Related Experiment Video
Updated: Sep 13, 2025

Isolating Myofibrils from Skeletal Muscle Biopsies and Determining Contractile Function with a Nano-Newton Resolution Force Transducer
Published on: May 7, 2020
Various challenges in understanding the thick filaments, within and outside skeletal and cardiac muscles
1Laboratoire de Biologie at Ecole Centrale Paris, 92295 Châtenay-Malabry Cedex, France.
Insights
The relationship between the interacting-heads motif (IHM) and the super-relaxed state (SRX state) in muscle thick filaments is complex and debated. Recent research questions their close coupling due to differing experimental conditions and overlooked factors.
Area of Science:
- Muscle physiology
- Molecular biology
- Biophysics
Background:
- Thick filaments, primarily composed of Myosin II, are crucial for muscle contraction.
- The interacting-heads motif (IHM) and super-relaxed state (SRX state) are observed structures within these filaments.
- Historically, the IHM and SRX state were considered closely related phenomena.
Discussion:
- The traditional IHM is observed in isolated filaments, while the SRX state is seen in situ within muscle fibers.
- Macromolecular crowding, present in situ but not in isolated filament studies, may influence these states.
- Conflicting findings in recent studies highlight the difficulty in establishing a direct relationship between IHM and SRX state.
Key Insights:
- The coupling between the IHM and SRX state is increasingly questioned.
- Experimental conditions, including macromolecular crowding, significantly impact observations.
- Overlooked factors like cell-associated water and electrical charges may explain contradictory results.
Outlook:
- Further research is needed to reconcile conflicting data on thick filament behavior.
- Investigating the influence of cell-associated water and electrical charges is crucial for accurate interpretation.
- A nuanced understanding of thick filament dynamics, beyond simple models, is emerging.
Abstract:
Thick filaments isolated from various sources, most frequently skeletal and cardiac muscles, have been studied, but several aspects of their behavior remain to be clarified. Myosin II is the principal component of these filaments. A "traditional" interacting-heads motif (IHM) has been observed in isolated thick filaments. In this motif, the two heads of the myosin II molecule interact and are stuck to the backbone of the filaments. Another aspect, the super-relaxed state (SRX state), has been described in situ, in relaxed demembranated muscle fibers and myofibrils. It has frequently been claimed that the IHM and the SRX state are closely related. Some authors still consider this relationship valid, but this view is now broadly called into question. These two phenomena occur in very different conditions, making it difficult to determine if and how they are related. For example, macromolecular crowding is a characteristic feature in situ (regardless of interfilament spacing), but not in the conditions in which the "traditional" IHM has been observed. Recent studies in situ have attempted to resolve this problem, but some of the reported findings conflict. Moreover, the association of other proteins with the myosin filaments in situ increases thick filament complexity. Experimental conditions may affect the results obtained but the consideration of long-overlooked data would help to prevent erroneous interpretations. For instance, neither the absence (EM studies) or presence (in situ studies) of cell-associated water nor electrical charges are taken into account in any of the published studies in this domain and the omission of these two parameters could lead to contradictory conclusions. My principal objective here is to provide a brief overview (with a limited number of illustrative references) of the increasing complexity of our understanding of thick filaments over the years, particularly as concerns the weak coupling or absence of coupling between the IHM and the SRX state (recent findings that may be difficult to interpret).
More Related Videos
Related Concept Videos
The Sarcomere
Each...
Actin and Myosin in Muscle Contraction
Studying the Cytoskeleton
Skeletal Muscle Anatomy
Microscopic Anatomy of Skeletal Muscles
The muscle sarcolemma is a plasma membrane enclosing each muscle cell that conducts electrical signals called action potentials. The sarcolemma extends into the cell to form T-tubules, ensuring the neural impulses are uniformly distributed across the entire muscle...
Overview of Skeletal Muscle

