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Aip1p Dynamics Are Altered by the R256H Mutation in Actin
Published on: July 30, 2014
MARCKS is a natively unfolded protein with an inaccessible actin-binding site: evidence for long-range intramolecular
Hazel Tapp1, Iman M Al-Naggar, Elena G Yarmola
1Department of Medicine, University of Florida College of Medicine, Gainesville, Florida 32610, USA.
Abstract:
Myristoylated alanine-rich C kinase substrate (MARCKS) is an unfolded protein that contains well characterized actin-binding sites within the phosphorylation site domain (PSD), yet paradoxically, we now find that intact MARCKS does not bind to actin. Intact MARCKS also does not bind as well to calmodulin as does the PSD alone. Myristoylation at the N terminus alters how calmodulin binds to MARCKS, implying that, despite its unfolded state, the distant N terminus influences binding events at the PSD. We show that the free PSD binds with site specificity to MARCKS, suggesting that long-range intramolecular interactions within MARCKS are also possible. Because of the unusual primary sequence of MARCKS with an overall isoelectric point of 4.2 yet a very basic PSD (overall charge of +13), we speculated that ionic interactions between oppositely charged domains of MARCKS were responsible for long-range interactions within MARCKS that sterically influence binding events at the PSD and that explain the observed differences between properties of the PSD and MARCKS. Consistent with this hypothesis, chemical modifications of MARCKS that neutralize negatively charged residues outside of the PSD allow the PSD to bind to actin and increase the affinity of MARCKS for calmodulin. Similarly, both myristoylation of MARCKS and cleavage of MARCKS by calpain are shown to increase the availability of the PSD so as to activate its actin-binding activity. Because abundant evidence supports the conclusion that MARCKS is an important protein in regulating actin dynamics, our data imply that post-translational modifications of MARCKS are necessary and sufficient to regulate actin-binding activity.
Insights
Myristoylated alanine-rich C kinase substrate (MARCKS) protein does not bind actin in its intact form. Post-translational modifications are key to regulating MARCKS
Area of Science:
- Biochemistry
- Cell Biology
- Molecular Biology
Background:
- Myristoylated alanine-rich C kinase substrate (MARCKS) is an unfolded protein with known actin-binding sites in its phosphorylation site domain (PSD).
- Intact MARCKS paradoxically does not bind actin, and its calmodulin binding differs from the isolated PSD.
Purpose of the Study:
- To investigate the intramolecular interactions within MARCKS that regulate its actin-binding activity.
- To understand how post-translational modifications influence MARCKS' interaction with actin and calmodulin.
Main Methods:
- Biochemical assays to test actin and calmodulin binding of intact MARCKS, isolated PSD, and modified MARCKS.
- Chemical modifications to neutralize charged residues and calpain cleavage to mimic post-translational modifications.
Main Results:
- Intact MARCKS does not bind actin; binding is restored upon chemical modification or cleavage.
- Myristoylation and PSD charge influence MARCKS' interaction with calmodulin.
- Ionic interactions between MARCKS domains likely cause steric hindrance of the PSD.
Conclusions:
- Long-range intramolecular interactions within MARCKS, influenced by charge and myristoylation, regulate PSD accessibility.
- Post-translational modifications of MARCKS are necessary and sufficient to control its actin-binding activity and regulate actin dynamics.
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