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Author Spotlight: A Computational Approach to Decipher Amino Acid Preferences in Multispecific Protein-Protein Interactions
Published on: January 26, 2024
Linker Length and Composition within Disordered Binding Motifs modulates the Avidity and Reversibility of a
Kiran Sankar Chatterjee1, Maria A Martinez-Yamout1, H Jane Dyson1
1Department of Integrative Structural and Computational Biology and Skaggs Institute of Chemical Biology, Scripps Research Institute, 10550 North Torrey Pines Road, La Jolla, California 92037.
Abstract:
Intrinsically disordered proteins that mediate the cellular transcriptional response to hypoxia play important roles in turning on and turning off oxygen stress genes. In particular, the feedback inhibitor CITED2 operates a unidirectional switch that efficiently terminates the hypoxic response by displacing the C-terminal activation domain of the hypoxia-inducible factor HIF-1α from its complex with the TAZ1 domain of the transcriptional coactivators CBP and p300. Unidirectionality of the switch arises from subtle allosteric conformational changes in TAZ1 and from differences in the strength of thermodynamic coupling between the TAZ1-binding motifs in the multivalent HIF-1α and CITED2 activation domains. To investigate the role of binding cooperativity, we mutated a linker sequence in the HIF-1α activation domain to enhance or reduce the thermodynamic coupling between its TAZ1-binding motifs. An efficient native-gel assay shows that certain linker mutations enhance the affinity of HIF-1α for TAZ1, and fluorescence anisotropy competition and NMR measurements show that these mutants can compete with CITED2 for TAZ1 more effectively than wild-type HIF-1α. The wide range of mutants, which include insertion, deletion, replacement and scrambling of residues in the linker, provide insights into the molecular basis for the exquisite tuning of the hypoxic switch: the TAZ1 affinity and consequent CITED2 competition enhancement depends both on the flexibility of the linker sequence (particularly the presence of glycine residues) and the unfavorable electrostatic interactions of a highly conserved arginine side chain in the center of the linker with an electropositive surface of TAZ1.
Insights
Intrinsically disordered proteins regulate cellular responses to low oxygen (hypoxia). This study reveals how mutations in hypoxia-inducible factor 1-alpha (HIF-1α) fine-tune its interaction with coactivators, impacting the hypoxic switch.
Area of Science:
- Molecular Biology
- Biochemistry
- Cellular Biology
Background:
- Intrinsically disordered proteins control gene expression during hypoxia.
- CITED2 acts as a feedback inhibitor, terminating the hypoxic response by displacing HIF-1α from CBP/p300 coactivators.
- The unidirectional nature of this switch depends on allosteric changes and thermodynamic coupling.
Purpose of the Study:
- To investigate the role of binding cooperativity in the HIF-1α/TAZ1 interaction.
- To understand how linker mutations affect the thermodynamic coupling between HIF-1α's TAZ1-binding motifs.
- To elucidate the molecular basis for the precise tuning of the hypoxic switch.
Main Methods:
- Mutagenesis of the HIF-1α activation domain linker sequence.
- Native-gel electrophoresis to assess HIF-1α/TAZ1 binding affinity.
- Fluorescence anisotropy competition assays and Nuclear Magnetic Resonance (NMR) spectroscopy to measure CITED2 competition.
Main Results:
- Specific linker mutations enhanced HIF-1α's affinity for the TAZ1 domain.
- Mutant HIF-1α variants competed more effectively with CITED2 for TAZ1 binding than wild-type.
- Linker flexibility (glycine presence) and electrostatic interactions (arginine side chain) are critical for TAZ1 affinity and CITED2 competition.
Conclusions:
- The study provides molecular insights into the regulation of the hypoxic transcriptional response.
- Linker sequence modifications in HIF-1α can modulate its interaction with coactivators, affecting the hypoxic switch.
- Flexibility and electrostatic interactions within the HIF-1α linker are key determinants of TAZ1 binding and competitive displacement by CITED2.
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