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Updated: Oct 11, 2025

Protein Purification-free Method of Binding Affinity Determination by Microscale Thermophoresis
Published on: August 15, 2013
Structural exploration with AlphaFold2-generated STAT3α structure reveals selective elements in STAT3α-GRIM-19
Seema Mishra1, Santosh Kumar2, Kesaban Sankar Roy Choudhuri2
1Department of Biochemistry, School of Life Sciences, University of Hyderabad, Hyderabad, 500046, India. seema_uoh@yahoo.com.
Abstract:
STAT3, an important transcription factor constitutively activated in cancers, is bound specifically by GRIM-19 and this interaction inhibits STAT3-dependent gene expression. GRIM-19 is therefore, considered as an inhibitor of STAT3 and may be an effective anti-cancer therapeutic target. While STAT3 exists in a dimeric form in the cytoplasm and nucleus, it is mostly present in a monomeric form in the mitochondria. Although GRIM-19-binding domains of STAT3 have been identified in independent experiments, yet the identified domains are not the same, and hence, discrepancies exist. Human STAT3-GRIM-19 complex has not been crystallised yet. Dictated by fundamental biophysical principles, the binding region, interactions and effects of hotspot mutations can provide us a clue to the negative regulatory mechanisms of GRIM-19. Prompted by the very nature of STAT3 being a challenging molecule, and to understand the structural basis of binding and interactions in STAT3α-GRIM-19 complex, we performed homology modelling and ab-initio modelling with evolutionary information using I-TASSER and avant-garde AlphaFold2, respectively, to generate monomeric, and subsequently, dimeric STAT3α structures. The dimeric form of STAT3α structure was observed to potentially exist in an anti-parallel orientation of monomers. We demonstrate that during the interactions with both unphosphorylated and phosphorylated STAT3α, the NTD of GRIM-19 binds most strongly to the NTD of STAT3α, in direct contrast to the earlier works. Key arginine residues at positions 57, 58 and 68 of GRIM-19 are mainly involved in the hydrogen-bonded interactions. An intriguing feature of these arginine residues is that these display a consistent interaction pattern across unphosphorylated and phosphorylated monomers as well as unphosphorylated dimers in STAT3α-GRIM-19 complexes. MD studies verified the stability of these complexes. Analysing the binding affinity and stability through free energy changes upon mutation, we found GRIM-19 mutations Y33P and Q61L and among GRIM-19 arginines, R68P and R57M, to be one of the top-most major and minor disruptors of binding, respectively. The proportionate increase in average change in binding affinity upon mutation was inclined more towards GRIM-19 mutants, leading to the surmise that GRIM-19 may play a greater role in the complex formation. These studies propound a novel structural perspective of STAT3α-GRIM-19 binding and inhibitory mechanisms in both the monomeric and dimeric forms of STAT3α as compared to that observed from the earlier experiments, these experimental observations being inconsistent among each other.
Insights
GRIM-19 inhibits STAT3 (Signal Transducer and Activator of Transcription 3) by binding to its N-terminal domain (NTD), offering a potential anti-cancer therapy. This study reveals novel structural insights into their interaction, crucial for understanding cancer progression.
Area of Science:
- Biochemistry
- Structural Biology
- Cancer Research
Background:
- Signal Transducer and Activator of Transcription 3 (STAT3) is a transcription factor constitutively activated in many cancers.
- GRIM-19 is known to bind STAT3 and inhibit its gene expression, making it a potential anti-cancer therapeutic target.
- Previous studies identified STAT3-GRIM-19 binding domains with discrepancies, and the human complex has not been crystallized.
Purpose of the Study:
- To elucidate the structural basis of STAT3α-GRIM-19 binding and interactions.
- To understand the negative regulatory mechanisms of GRIM-19 on STAT3.
- To investigate the binding of GRIM-19 to monomeric and dimeric forms of STAT3α.
Main Methods:
- Homology modeling and ab-initio modeling using I-TASSER and AlphaFold2 to generate STAT3α structures.
- Molecular Dynamics (MD) studies to verify complex stability.
- Analysis of binding affinity and stability through free energy changes upon mutation.
Main Results:
- GRIM-19's N-terminal domain (NTD) binds most strongly to STAT3α's NTD in both unphosphorylated and phosphorylated states, contrasting previous findings.
- Key arginine residues (57, 58, 68) in GRIM-19 are crucial for hydrogen-bonded interactions.
- Mutations Y33P and Q61L in GRIM-19, and R68P and R57M, were identified as major and minor disruptors of binding, respectively.
Conclusions:
- This study provides a novel structural perspective on STAT3α-GRIM-19 binding and inhibition mechanisms.
- GRIM-19 plays a significant role in the formation of the STAT3-GRIM-19 complex.
- The findings offer a basis for developing GRIM-19 as an anti-cancer therapeutic agent.
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