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Updated: May 23, 2025

Determination of Protein-ligand Interactions Using Differential Scanning Fluorimetry
Published on: September 13, 2014
Negative cooperativity regulates ligand activation of DIAPH1 and other diaphanous related formins
G G Theophall1, A Premo1, S Reverdatto1
1Department of Chemistry, State University of New York at Albany, Albany, NY, USA.
Abstract:
DIAPH1 is a member of the family of Diaphanous Related Formins (DRFs) implicated in cell migration and cytokinesis. DRFs are maintained in an autoinhibited state by the intramolecular association between diaphanous inhibitory (DID) and diaphanous autoregulatory (DAD) domains. Actin polymerization requires the binding of activated RhoA to the GTPase binding domain (GBD) of DIAPH1 and the dissociation of DAD. In the presence of excess RhoA, actin polymerization is only partially activated. Using monomeric domain constructs of DIAPH1, the sequential binding affinities of RhoA and DAD to GBD-DID were characterized. Binding of RhoA and DAD were negatively cooperative requiring a 100-fold greater concentration of DAD to achieve saturation when RhoA binding site was occupied. The unimolecular architecture of full length DIAPH1 establishes an effective concentration of DAD in the micromolar range, which is 100-fold larger than the intrinsic affinity of DAD for DID. The effective concentration is large enough to maintain DIAPH1 autoinhibition, yet small enough to permit partial activation of DIAPH1 after RhoA binding. By exploiting negative cooperativity, DIAPH1 maintains a reserve of inactivated molecules enabling gradual responses to cellular processes that require prolonged and sustained regulation. The proposed mechanism is extended to other DIAPH1 activating ligands and broadly applicable to all DRFs.
Insights
Diaphanous-related formin 1 (DIAPH1) autoinhibition is regulated by negative cooperativity between RhoA and its inhibitory DAD domain. This mechanism allows for gradual cellular responses, crucial for sustained regulation.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Diaphanous-related formins (DRFs) regulate cell migration and cytokinesis.
- DRFs, including DIAPH1, are autoinhibited via intramolecular interactions between their DID and DAD domains.
- Activation involves RhoA binding to DIAPH1's GBD, releasing DAD and enabling actin polymerization.
Purpose of the Study:
- To characterize the sequential binding affinities of RhoA and DAD to DIAPH1's GBD-DID domains.
- To elucidate the mechanism of DIAPH1 autoinhibition and activation.
- To understand how DIAPH1 achieves gradual cellular responses.
Main Methods:
- Utilized monomeric domain constructs of DIAPH1.
- Characterized sequential binding affinities of RhoA and DAD to GBD-DID.
- Investigated the role of negative cooperativity in DIAPH1 regulation.
Main Results:
- RhoA and DAD binding to GBD-DID exhibit negative cooperativity.
- A 100-fold higher DAD concentration is required for saturation when RhoA is bound.
- Full-length DIAPH1's architecture creates an effective DAD concentration maintaining autoinhibition while allowing partial activation by RhoA.
Conclusions:
- Negative cooperativity is key to DIAPH1's autoinhibition and gradual activation.
- DIAPH1 maintains a reserve of inactivated molecules for sustained cellular regulation.
- The proposed mechanism is applicable to other DIAPH1 activators and all DRFs.
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