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Specificity Analysis of Protein Lysine Methyltransferases Using SPOT Peptide Arrays
Published on: November 29, 2014
Molecular Dynamics Simulation Reveals Correlated Inter-Lobe Motion in Protein Lysine Methyltransferase SMYD2
Nicholas Spellmon1, Xiaonan Sun1, Nualpun Sirinupong2
1Department of Biochemistry and Molecular Biology, Wayne State University School of Medicine, Detroit, Michigan, United States of America.
Abstract:
SMYD proteins are an exciting field of study as they are linked to many types of cancer-related pathways. Cardiac and skeletal muscle development and function also depend on SMYD proteins opening a possible avenue for cardiac-related treatment. Previous crystal structure studies have revealed that this special class of protein lysine methyltransferases have a bilobal structure, and an open-closed motion may regulate substrate specificity. Here we use the molecular dynamics simulation to investigate the still-poorly-understood SMYD2 dynamics. Cross-correlation analysis reveals that SMYD2 exhibits a negative correlated inter-lobe motion. Principle component analysis suggests that this correlated dynamic is contributed to by a twisting motion of the C-lobe with respect to the N-lobe and a clamshell-like motion between the lobes. Dynamical network analysis defines possible allosteric paths for the correlated dynamics. There are nine communities in the dynamical network with six in the N-lobe and three in the C-lobe, and the communication between the lobes is mediated by a lobe-bridging β hairpin. This study provides insight into the dynamical nature of SMYD2 and could facilitate better understanding of SMYD2 substrate specificity.
Insights
This study reveals SMYD2 protein dynamics, showing linked N-lobe and C-lobe movements crucial for understanding cancer pathways and muscle development. These insights may aid in developing new cardiac treatments.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- SMYD proteins are implicated in cancer pathways and muscle development.
- SMYD proteins are protein lysine methyltransferases with a bilobal structure.
- Open-closed motion in SMYD proteins may regulate substrate specificity.
Purpose of the Study:
- To investigate the poorly understood dynamics of SMYD2 using molecular dynamics simulations.
- To elucidate the inter-lobe motion and its contribution to SMYD2 dynamics.
- To identify potential allosteric pathways within SMYD2.
Main Methods:
- Molecular dynamics simulations.
- Cross-correlation analysis.
- Principle component analysis.
- Dynamical network analysis.
Main Results:
- SMYD2 exhibits negatively correlated inter-lobe motion.
- A combination of twisting and clamshell-like motions between the N-lobe and C-lobe drives correlated dynamics.
- Dynamical network analysis identified nine communities and a lobe-bridging β hairpin mediating inter-lobe communication.
Conclusions:
- The study provides novel insights into the dynamical nature of SMYD2.
- Understanding SMYD2 dynamics can enhance comprehension of its substrate specificity.
- These findings could inform the development of targeted therapies for cancer and cardiac conditions.
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