Fragment-based optimization of small molecule CXCL12 inhibitors for antagonizing the CXCL12/CXCR4 interaction
Joshua J Ziarek1, Yan Liu, Emmanuel Smith
1Department of Biochemistry, Medical College of Wisconsin, 8701 Watertown Plank Road, Milwaukee, WI 53226, USA.
Abstract:
The chemokine CXCL12 and its G protein-coupled receptor (GPCR) CXCR4 are high-priority clinical targets because of their involvement in metastatic cancers (also implicated in autoimmune disease and cardiovascular disease). Because chemokines interact with two distinct sites to bind and activate their receptors, both the GPCRs and chemokines are potential targets for small molecule inhibition. A number of chemokines have been validated as targets for drug development, but virtually all drug discovery efforts focus on the GPCRs. However, all CXCR4 receptor antagonists with the exception of MSX-122 have failed in clinical trials due to unmanageable toxicities, emphasizing the need for alternative strategies to interfere with CXCL12/CXCR4-guided metastatic homing. Although targeting the relatively featureless surface of CXCL12 was presumed to be challenging, focusing efforts at the sulfotyrosine (sY) binding pockets proved successful for procuring initial hits. Using a hybrid structure-based in silico/NMR screening strategy, we recently identified a ligand that occludes the receptor recognition site. From this initial hit, we designed a small fragment library containing only nine tetrazole derivatives using a fragment-based and bioisostere approach to target the sY binding sites of CXCL12. Compound binding modes and affinities were studied by 2D NMR spectroscopy, X-ray crystallography, molecular docking and cell-based functional assays. Our results demonstrate that the sY binding sites are conducive to the development of high affinity inhibitors with better ligand efficiency (LE) than typical protein-protein interaction inhibitors (LE ≤ 0.24). Our novel tetrazole-based fragment 18 was identified to bind the sY21 site with a K(d) of 24 μM (LE = 0.30). Optimization of 18 yielded compound 25 which specifically inhibits CXCL12-induced migration with an improvement in potency over the initial hit 9. The fragment from this library that exhibited the highest affinity and ligand efficiency (11: K(d) = 13 μM, LE = 0.33) may serve as a starting point for development of inhibitors targeting the sY12 site.
Insights
Researchers developed novel tetrazole-based compounds targeting the CXCL12 chemokine, a key player in cancer metastasis. These inhibitors show promise for developing new cancer therapies by blocking the CXCL12/CXCR4 pathway.
Area of Science:
- Medicinal Chemistry
- Molecular Biology
- Oncology
Background:
- The CXCL12/CXCR4 axis is crucial for cancer metastasis, autoimmune diseases, and cardiovascular conditions.
- Current drug discovery primarily targets the CXCR4 receptor, but antagonists have faced clinical trial failures due to toxicity.
- Alternative strategies are needed to inhibit the CXCL12/CXCR4 pathway, particularly targeting the CXCL12 chemokine itself.
Purpose of the Study:
- To identify novel small molecule inhibitors targeting the sulfotyrosine (sY) binding sites of the CXCL12 chemokine.
- To develop high-affinity ligands with improved ligand efficiency (LE) for potential therapeutic applications in metastatic cancers.
Main Methods:
- Employed a hybrid structure-based in silico/NMR screening strategy to identify initial hits.
- Designed and synthesized a small fragment library of nine tetrazole derivatives using fragment-based and bioisostere approaches.
- Characterized compound binding and affinity using 2D NMR spectroscopy, X-ray crystallography, molecular docking, and cell-based functional assays.
Main Results:
- Demonstrated that sY binding sites on CXCL12 are amenable to developing high-affinity inhibitors with excellent ligand efficiency (LE > 0.24).
- Identified tetrazole-based fragment 18 binding the sY21 site with K(d) = 24 μM and LE = 0.30.
- Optimized fragment 18 to compound 25, which specifically inhibits CXCL12-induced migration with enhanced potency; fragment 11 showed the highest affinity (K(d) = 13 μM, LE = 0.33).
Conclusions:
- The sulfotyrosine binding sites of CXCL12 represent a viable target for developing novel therapeutic agents.
- Tetrazole-based fragments demonstrate potential as starting points for designing potent and efficient inhibitors of the CXCL12/CXCR4 pathway.
- These findings offer a promising alternative strategy for interfering with CXCL12-guided metastatic homing in cancer treatment.
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