Small neutralizing molecules to inhibit actions of the chemokine CXCL12
Muriel Hachet-Haas1, Karl Balabanian, François Rohmer
1Institut Gilbert Laustriat Biomolécules, Biotechnologie, Innovation thérapeutique, Université Louis Pasteur, 67401 Illkirch, France.
Abstract:
The chemokine CXCL12 and the receptor CXCR4 play pivotal roles in normal vascular and neuronal development, in inflammatory responses, and in infectious diseases and cancer. For instance, CXCL12 has been shown to mediate human immunodeficiency virus-induced neurotoxicity, proliferative retinopathy and chronic inflammation, whereas its receptor CXCR4 is involved in human immunodeficiency virus infection, cancer metastasis and in the rare disease known as the warts, hypogammaglobulinemia, immunodeficiency, and myelokathexis (WHIM) syndrome. As we screened chemical libraries to find inhibitors of the interaction between CXCL12 and the receptor CXCR4, we identified synthetic compounds from the family of chalcones that reduce binding of CXCL12 to CXCR4, inhibit calcium responses mediated by the receptor, and prevent CXCR4 internalization in response to CXCL12. We found that the chemical compounds display an original mechanism of action as they bind to the chemokine but not to CXCR4. The highest affinity molecule blocked chemotaxis of human peripheral blood lymphocytes ex vivo. It was also active in vivo in a mouse model of allergic eosinophilic airway inflammation in which we detected inhibition of the inflammatory infiltrate. The compound showed selectivity for CXCL12 and not for CCL5 and CXCL8 chemokines and blocked CXCL12 binding to its second receptor, CXCR7. By analogy to the effect of neutralizing antibodies, this molecule behaves as a small organic neutralizing compound that may prove to have valuable pharmacological and therapeutic potential.
Insights
Researchers discovered chalcone compounds that inhibit the CXCL12-CXCR4 interaction, offering potential for treating inflammatory diseases and cancer by blocking immune cell migration.
Area of Science:
- Biochemistry
- Immunology
- Pharmacology
Background:
- The chemokine CXCL12 and its receptor CXCR4 are crucial in vascular/neuronal development, inflammation, infections, and cancer.
- CXCR4 is implicated in HIV infection, cancer metastasis, and WHIM syndrome.
- CXCL12 mediates neurotoxicity, retinopathy, and chronic inflammation.
Purpose of the Study:
- To identify inhibitors of the CXCL12-CXCR4 interaction using chemical library screening.
- To characterize the mechanism of action and therapeutic potential of identified inhibitors.
Main Methods:
- Screening of chemical libraries for CXCL12-CXCR4 inhibitors.
- Assessing compound effects on CXCL12 binding, calcium response, and receptor internalization.
- Evaluating ex vivo lymphocyte chemotaxis and in vivo allergic airway inflammation models.
- Testing compound selectivity against other chemokines and its effect on CXCR7 binding.
Main Results:
- Identified synthetic chalcone compounds that reduce CXCL12 binding to CXCR4.
- Compounds inhibit CXCL12-mediated calcium responses and CXCR4 internalization.
- Mechanism involves binding to CXCL12, not CXCR4.
- Highest affinity compound blocked lymphocyte chemotaxis ex vivo and reduced inflammation in vivo.
- Demonstrated selectivity for CXCL12 over CCL5/CXCL8 and inhibited binding to CXCR7.
Conclusions:
- Chalcone compounds act as small molecule neutralizers of CXCL12.
- These compounds exhibit therapeutic potential for inflammatory conditions and CXCL12-driven diseases.
- The novel mechanism of targeting the chemokine directly offers a new therapeutic strategy.
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