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Published on: October 9, 2016
Allosteric regulation in STAT3 interdomains is mediated by a rigid core: SH2 domain regulation by CCD in D170A
Tingting Zhao1, Nischal Karki1, Brian D Zoltowski1
1Department of Chemistry, Southern Methodist University, Dallas, Texas, United States of America.
Abstract:
Signal Transducer and Activator of Transcription 3 (STAT3) plays a crucial role in cancer development and thus is a viable target for cancer treatment. STAT3 functions as a dimer mediated by phosphorylation of the SRC-homology 2 (SH2) domain, a key target for therapeutic drugs. While great efforts have been employed towards the development of compounds that directly target the SH2 domain, no compound has yet been approved by the FDA due to a lack of specificity and pharmacologic efficacy. Studies have shown that allosteric regulation of SH2 via the coiled-coil domain (CCD) is an alternative drug design strategy. Several CCD effectors have been shown to modulate SH2 binding and affinity, and at the time of writing at least one drug candidate has entered phase I clinical trials. However, the mechanism for SH2 regulation via CCD is poorly understood. Here, we investigate structural and dynamic features of STAT3 and compare the wild type to the reduced function variant D170A in order to delineate mechanistic differences and propose allosteric pathways. Molecular dynamics simulations were employed to explore conformational space of STAT3 and the variant, followed by structural, conformation, and dynamic analysis. The trajectories explored show distinctive conformational changes in the SH2 domain for the D170A variant, indicating long range allosteric effects. Multiple analyses provide evidence for long range communication pathways between the two STAT3 domains, which seem to be mediated by a rigid core which connects the CCD and SH2 domains via the linker domain (LD) and transmits conformational changes through a network of short-range interactions. The proposed allosteric mechanism provides new insight into the understanding of intramolecular signaling in STAT3 and potential pharmaceutical control of STAT3 specificity and activity.
Insights
Signal Transducer and Activator of Transcription 3 (STAT3) is a cancer target. We explored STAT3
Area of Science:
- Biochemistry and Molecular Biology
- Cancer Research
- Drug Discovery
Background:
- Signal Transducer and Activator of Transcription 3 (STAT3) is crucial in cancer development and a therapeutic target.
- Directly targeting the STAT3 SRC-homology 2 (SH2) domain has yielded limited success due to specificity and efficacy issues.
- Allosteric regulation of the SH2 domain via the coiled-coil domain (CCD) presents a promising alternative drug design strategy, though its mechanism is poorly understood.
Purpose of the Study:
- To investigate the structural and dynamic features of STAT3.
- To delineate mechanistic differences between wild-type STAT3 and the reduced function D170A variant.
- To propose allosteric pathways for STAT3 regulation.
Main Methods:
- Utilized molecular dynamics simulations to explore the conformational space of STAT3 and its D170A variant.
- Performed structural, conformational, and dynamic analyses on simulation trajectories.
- Investigated communication pathways between STAT3 domains.
Main Results:
- Distinct conformational changes were observed in the SH2 domain of the D170A variant, suggesting long-range allosteric effects.
- Evidence for long-range communication pathways between STAT3 domains was identified.
- A rigid core connecting the CCD and SH2 domains via the linker domain (LD) appears to mediate these pathways.
Conclusions:
- A novel allosteric mechanism for STAT3 regulation involving long-range communication between domains has been proposed.
- This mechanism provides new insights into intramolecular signaling within STAT3.
- Understanding these pathways could lead to improved pharmaceutical control of STAT3 specificity and activity.
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