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.

Bioorganic Chemistry
|September 24, 2021
PubMed

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.

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