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Updated: Oct 19, 2025

Murine Model of CD40-activation of B cells
Published on: March 5, 2010
A novel method to produce synthetic murine CXCL10 for efficient screening of functional variants
Jérémie Decalf1, Jeffrey Tom2, Elaine Mai3
1Department of Cancer Immunology, Genentech Inc., 1 DNA Way, South San Francisco, CA 94080, USA.
Abstract:
Antitumor immune responses depend on the infiltration of solid tumors by effector T cells, a process guided by chemokines. In particular, the chemokine CXCL10 has been shown to play a critical role in mediating recruitment of CXCR3 + cytolytic T and NK cells in tumors, though its use as a therapeutic agent has not been widely explored. One of the limitations is due to the rapid inactivation of CXCL10 by dipeptidyl peptidase 4 (DPP4), a broadly expressed enzyme that is active in plasma and other bodily fluids. In the present study, we describe a novel method to produce synthetic CXCL10 that is resistant to DPP4 N-terminal truncation. Using a Fmoc solid-phase peptide synthesis approach, synthetic murine WT CXCL10 was produced, showing similar biochemical and biological properties to the recombinant protein. This synthesis method supported production of natural (amino acid substitution, insertion or deletion) and non-natural (chemical modifications) variants of CXCL10. In association with a functional screening cascade that assessed DPP4-mediated cleavage, CXCR3 signaling potency and chemotactic activity, we successfully generated 20 murine CXCL10 variants. Among those, two non-natural variants with N-methylated Leu3 (MeLeu3) and a reduced amide bond between Pro2 and Leu3 (rLeu3), respectively, showed resistance to DPP4 truncation but decreased CXCR3 signaling and chemotactic activity. Interestingly, MeLeu3 and rLeu3 CXCL10 behaved as DPP4 inhibitors, preventing the truncation of WT CXCL10. This study highlights the potential of using Fmoc solid-phase chemistry in association with biochemical and biological characterization to rapidly identify CXCL10 variants with desired properties. These novel methods unlock the opportunity to develop DPP4 resistant CXCL10 variants, as well as other chemokine substrates, while maintaining chemotactic properties.
Insights
Researchers developed a novel method to create synthetic CXCL10 resistant to DPP4 enzyme inactivation. This breakthrough enables the development of more effective chemokine-based cancer immunotherapies by overcoming a key limitation in their therapeutic application.
Area of Science:
- Immunology
- Biochemistry
- Medicinal Chemistry
Background:
- Antitumor immune responses rely on effector T cell infiltration into solid tumors, a process regulated by chemokines.
- CXCL10 is crucial for recruiting CXCR3+ T and NK cells to tumors, but its therapeutic use is limited by rapid inactivation by dipeptidyl peptidase 4 (DPP4).
Purpose of the Study:
- To develop a novel method for producing synthetic CXCL10 resistant to DPP4-mediated inactivation.
- To generate and characterize CXCL10 variants with enhanced stability and preserved or improved therapeutic properties.
Main Methods:
- Utilized Fmoc solid-phase peptide synthesis to produce synthetic murine wild-type (WT) CXCL10 and its variants.
- Employed a functional screening cascade to assess DPP4 cleavage resistance, CXCR3 signaling potency, and chemotactic activity.
- Generated 20 murine CXCL10 variants, including natural and non-natural modifications.
Main Results:
- Successfully produced synthetic WT CXCL10 with properties similar to recombinant protein.
- Identified two non-natural variants (MeLeu3 and rLeu3) resistant to DPP4 truncation but with reduced signaling and chemotactic activity.
- Observed that MeLeu3 and rLeu3 CXCL10 variants act as DPP4 inhibitors, protecting WT CXCL10 from truncation.
Conclusions:
- Fmoc solid-phase chemistry combined with biochemical and biological characterization is effective for rapidly identifying chemokine variants.
- Developed methods to create DPP4-resistant CXCL10 variants with potential for improved therapeutic applications in cancer immunotherapy.
- This approach can be extended to develop stabilized variants of other chemokines for therapeutic purposes.

