Completed Cells, Biochemistry & Physiology Heart, Stroke & Blood

An integrated approach to the muscle Z-disk: from atomic structure to human disease

In plain English

AI plain-English summary

Every human heartbeat and muscle movement depends on a microscopic scaffold called the Z-disk, a protein mesh that anchors contracting filaments inside muscle cells. This project will build the first atomic-level picture of how the Z-disk is assembled, how it withstands mechanical stress, and how it senses and signals when something goes wrong. Mutations in Z-disk genes are a major cause of inherited heart conditions such as dilated and hypertrophic cardiomyopathy, left-ventricular non-compaction, and skeletal muscle diseases like myofibrillar myopathy. Current methods cannot resolve the Z-disk’s structure at the scale needed to understand how these mutations disrupt its function. By taking a bottom-up molecular approach—reconstructing the Z-disk from its purified components—the researchers aim to reveal exactly how architectural, mechanical, and signalling roles are coordinated from the atomic to the cellular level. If successful, this work will directly improve the interpretation of disease-causing mutations in Z-disk genes, enabling more accurate genetic diagnoses for patients with inherited cardiomyopathies and myopathies. It will also provide a structural framework for understanding how mechanical forces are sensed in muscle, a fundamental biological question with no immediate practical application but with potential long-term relevance for designing therapies that target mechanosignalling pathways.

View original technical description
Contraction of heart and skeletal muscles relies on the highly regular assembly of two main contractile protein filaments, actin and myosin, into sarcomeres. Actin and myosin are cross-linked in transverse planes in parallel arrays of interdigitating filaments, enabling their sliding motion to generate force. Antiparallel actin filaments are cross-linked at the Z-disk, requiring the coordinated action of the cross-linker α-actinin and the sarcomeric blueprint titin. Z-disks are stable yet flexible tensegrity networks acting possibly not only as mechanical integrators, but also as mechanosignalling platforms via protein kinases, phosphatases and adaptor proteins, sensing and relaying information on biomechanical stress. The Z-disk is extremely hard to analyse by conventional top-down ultrastructural methods, and we will hence pursue a bottom-up molecular approach. Mutations in Z-disk protein genes and those controlling its turnover are emerging as major causes of dilated and hypertrophic cardiomyopathy (DCM, HCM), left-ventricular non-compaction (LVNC), myofibrillar myopathy (MFM) and others. Our work will unravel how Z-disk mechanical, architectural and signalling functions operate from the atomic to the cellular and physiological level and how it is disrupted by cardiomyopathy mutations. This insight will allow better understanding of novel disease-causing mutations in Z-disk genes and reiteratively drive the fidelity of variant interpretation.

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Researchers

Katja Gehmlich (EPMC Awardee)Mathias Gautel (EPMC Awardee)Perry Elliott (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Understanding the role of Z-disc proteins in cardiomyopathy: from structure to function
Structure and function of filamentous actin in the cardiac thin filament and in activating platelets, and its role in cardiac disease
Cryo-Electron microscopy of cardiac thin filaments: Heart disease on a molecular level
Understanding the molecular origins of cardiomyopathy using a single molecule imaging approach
Cardiac myosin binding protein-C (cMyBP-C): C-terminal segment and its interaction with titin in healthy and diseased heart

Original classification

Collaborative Award in Science

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