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Published on: December 16, 2021
Steered molecular dynamic simulations reveal Marfan syndrome mutations disrupt fibrillin-1 cbEGF domain
Stephen J Haller1, Adrian E Roitberg2, Andrew T Dudley3
1Holland Regenerative Medicine Program, Department of Genetics, Cell Biology and Anatomy, University of Nebraska Medical Center, 985965 NE Medical Center, 6064 DRCII, Omaha, NE, 68198-5965, USA.
Abstract:
Marfan syndrome (MFS) is a highly variable genetic connective tissue disorder caused by mutations in the calcium binding extracellular matrix glycoprotein fibrillin-1. Patients with the most severe form of MFS (neonatal MFS; nMFS) tend to have mutations that cluster in an internal region of fibrillin-1 called the neonatal region. This region is predominantly composed of eight calcium-binding epidermal growth factor-like (cbEGF) domains, each of which binds one calcium ion and is stabilized by three highly conserved disulfide bonds. Crucially, calcium plays a fundamental role in stabilizing cbEGF domains. Perturbed calcium binding caused by cbEGF domain mutations is thus thought to be a central driver of MFS pathophysiology. Using steered molecular dynamics (SMD) simulations, we demonstrate that cbEGF domain calcium binding decreases under mechanical stress (i.e. cbEGF domains are mechanosensitive). We further demonstrate the disulfide bonds in cbEGF domains uniquely orchestrate protein unfolding by showing that MFS disulfide bond mutations markedly disrupt normal mechanosensitive calcium binding dynamics. These results point to a potential mechanosensitive mechanism for fibrillin-1 in regulating extracellular transforming growth factor beta (TGFB) bioavailability and microfibril integrity. Such mechanosensitive "smart" features may represent novel mechanisms for mechanical hemostasis regulation in extracellular matrix that are pathologically activated in MFS.
Insights
Marfan syndrome (MFS) is linked to fibrillin-1 mutations affecting calcium binding. Mechanical stress disrupts this binding, revealing a potential mechanosensitive pathway in MFS.
Area of Science:
- Biochemistry
- Genetics
- Biophysics
Background:
- Marfan syndrome (MFS) is a genetic connective tissue disorder caused by mutations in fibrillin-1.
- Severe MFS forms often involve mutations in the neonatal region of fibrillin-1, rich in calcium-binding epidermal growth factor-like (cbEGF) domains.
Purpose of the Study:
- To investigate the role of calcium binding in cbEGF domains under mechanical stress.
- To understand how MFS-associated mutations affect calcium binding dynamics and fibrillin-1 function.
Main Methods:
- Steered molecular dynamics (SMD) simulations were employed to model mechanical stress on cbEGF domains.
- Analysis focused on calcium binding affinity and the influence of disulfide bonds on protein stability.
Main Results:
- cbEGF domain calcium binding decreases under mechanical stress, indicating mechanosensitivity.
- Disulfide bonds are crucial for stabilizing cbEGF domains; MFS mutations disrupt mechanosensitive calcium binding dynamics.
- These findings suggest a mechanosensitive mechanism for fibrillin-1 in regulating TGF-beta bioavailability and microfibril integrity.
Conclusions:
- Fibrillin-1 cbEGF domains exhibit mechanosensitive calcium binding.
- MFS mutations impair this mechanosensitivity, potentially driving disease pathophysiology.
- This highlights a novel mechanosensitive pathway in extracellular matrix regulation relevant to Marfan syndrome.
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