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Updated: May 20, 2026

RNA Interference in Ticks
Published on: January 20, 2011
The tick-derived inhibitor Ixolaris prevents tissue factor signaling on tumor cells
T C Carneiro-Lobo1, F Schaffner, J Disse
1Department of Immunology and Microbial Science, The Scripps Research Institute, La Jolla CA, USA.
Background:
Tissue factor (TF) is frequently overexpressed in cancer cells and correlated with more aggressive tumor phenotypes and poor prognosis. In addition to promoting coagulation-dependent metastasis and cancer-associated thrombosis, tumor cell-expressed TF mediates direct cell signaling involving the protease-activated receptor (PAR) 2. Ixolaris is a tick-derived inhibitor of the TF-factor (F)VIIa-Xa coagulation initiation complex which blocks primary tumor growth and angiogenesis in glioblastoma and melanoma models.
Methods:
In this study we address the anti-tumor effects of Ixolaris in TF-VIIa-PAR2 signaling-dependent breast cancer models, a xenograft model of highly aggressive human MDA-MB-231 mfp cells and a syngeneic model of PAR2-deficient and replete PyMT mouse mammary carcinoma cells.
Results:
Ixolaris potently inhibited the procoagulant activity of human MDA-MB-231mfp or murine PyMT breast cancer cells. Ixolaris blocked signaling by the ternary TF-FVIIa-FXa complex, and, surprisingly, at higher concentrations also the binary TF-FVIIa complex on MDA-MB-231 cells. We show that Ixolaris interacts with certain residues in the human VIIa protease domain that are involved in PAR2 cleavage. In contrast to human VIIa, Ixolaris was a poor inhibitor of murine TF-FVIIa signaling and did not attenuate PAR2-dependent tumor growth in a syngeneic mouse model of breast cancer progression.
Conclusion:
These data show that Ixolaris inhibits PAR2 cleavage specifically by human TF signaling complexes and suggest that Ixolaris may block tumor growth of human cell models with ectopic FVIIa expression through inhibition of direct TF-FVIIa-PAR2 signaling as well as its anticoagulant activity.
Insights
Ixolaris effectively inhibits human breast cancer growth by blocking tissue factor (TF)-factor VIIa (FVIIa)-protease-activated receptor 2 (PAR2) signaling. However, it shows limited efficacy in mouse models, highlighting species-specific interactions.
Area of Science:
- Oncology
- Biochemistry
- Pharmacology
Background:
- Tissue factor (TF) overexpression correlates with aggressive cancer and poor prognosis.
- Tumor cell TF promotes metastasis and thrombosis via coagulation and direct cell signaling through protease-activated receptor (PAR) 2.
- Ixolaris, a tick-derived inhibitor, targets the TF-FVIIa-FXa complex, showing anti-tumor effects in preclinical models.
Purpose of the Study:
- To investigate the anti-tumor effects of Ixolaris in breast cancer models dependent on TF-FVIIa-PAR2 signaling.
- To evaluate Ixolaris's efficacy in human xenograft and syngeneic mouse models with varying PAR2 expression.
Main Methods:
- Utilized human MDA-MB-231 mfp xenograft and syngeneic PAR2-deficient/replete PyMT mouse mammary carcinoma models.
- Assessed Ixolaris's inhibition of procoagulant activity and TF-FVIIa-FXa complex signaling.
- Investigated Ixolaris interaction with human FVIIa protease domain residues critical for PAR2 cleavage.
Main Results:
- Ixolaris potently inhibited procoagulant activity in human and murine breast cancer cells.
- Ixolaris blocked ternary TF-FVIIa-FXa and, at higher concentrations, binary TF-FVIIa signaling in human cells.
- Ixolaris demonstrated poor inhibition of murine TF-FVIIa signaling and did not reduce PAR2-dependent tumor growth in syngeneic models.
Conclusions:
- Ixolaris specifically inhibits PAR2 cleavage by human TF signaling complexes.
- Ixolaris may impede human tumor growth by inhibiting TF-FVIIa-PAR2 signaling and anticoagulant activity.
- Species-specific differences in Ixolaris efficacy warrant further investigation for therapeutic applications.
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