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YBX1-interacting small RNAs and RUNX2 can be blocked in primary bone cancer using CADD522
Darrell Green1, Archana Singh2, Victoria L Tippett3
1Biomedical Research Centre, Norwich Medical School, University of East Anglia, Norwich, UK.
Abstract:
Primary bone cancer (PBC) comprises several subtypes each underpinned by distinctive genetic drivers. This driver diversity produces novel morphological features and clinical behaviour that serendipitously makes PBC an excellent metastasis model. Here, we report that some transfer RNA-derived small RNAs termed tRNA fragments (tRFs) perform as a constitutive tumour suppressor mechanism by blunting a potential pro-metastatic protein-RNA interaction. This mechanism is reduced in PBC progression with a gradual loss of tRNAGlyTCC cleavage into 5' end tRF-GlyTCC when comparing low-grade, intermediate-grade and high-grade patient tumours. We detected recurrent activation of miR-140 leading to upregulated RUNX2 expression in high-grade patient tumours. Both tRF-GlyTCC and RUNX2 share a sequence motif in their 3' ends that matches the YBX1 recognition site known to stabilise pro-metastatic mRNAs. Investigating some aspects of this interaction network, gain- and loss-of-function experiments using small RNA mimics and antisense LNAs, respectively, showed that ectopic tRF-GlyTCC reduced RUNX2 expression and dispersed 3D micromass architecture in vitro. iCLIP sequencing revealed YBX1 physical binding to the 3' UTR of RUNX2. The interaction between YBX1, tRF-GlyTCC and RUNX2 led to the development of the RUNX2 inhibitor CADD522 as a PBC treatment. CADD522 assessment in vitro revealed significant effects on PBC cell behaviour. In xenograft mouse models, CADD522 as a single agent without surgery significantly reduced tumour volume, increased overall and metastasis-free survival and reduced cancer-induced bone disease. Our results provide insight into PBC molecular abnormalities that have led to the identification of new targets and a new therapeutic.
Insights
Transfer RNA-derived fragments (tRFs) act as tumor suppressors in primary bone cancer (PBC) by inhibiting pro-metastatic interactions. Loss of tRF-GlyTCC correlates with PBC progression, leading to a new therapeutic strategy targeting RUNX2.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Primary bone cancer (PBC) exhibits diverse genetic drivers influencing its metastatic potential.
- tRNA-derived fragments (tRFs) are emerging as critical regulators in cancer, with potential tumor-suppressive roles.
- Understanding the molecular mechanisms of PBC metastasis is crucial for developing effective treatments.
Purpose of the Study:
- To elucidate the role of tRFs in primary bone cancer progression and metastasis.
- To investigate the interaction between tRFs, RUNX2, and the protein YBX1 in PBC.
- To identify novel therapeutic targets and strategies for PBC treatment.
Main Methods:
- Comparative analysis of tRF expression in low-grade, intermediate-grade, and high-grade PBC tumors.
- Gain- and loss-of-function experiments using small RNA mimics and antisense LNAs.
- iCLIP sequencing to identify protein-RNA interactions.
- In vitro and in vivo (xenograft mouse models) assessment of the RUNX2 inhibitor CADD522.
Main Results:
- A specific tRF, tRF-GlyTCC, acts as a tumor suppressor by inhibiting pro-metastatic RNA-protein interactions.
- tRF-GlyTCC levels decrease with increasing PBC grade, correlating with RUNX2 upregulation.
- YBX1 binds to the 3' UTR of RUNX2, stabilizing pro-metastatic mRNAs.
- The RUNX2 inhibitor CADD522 significantly reduced tumor volume, improved survival, and decreased bone disease in preclinical models.
Conclusions:
- tRF-GlyTCC loss contributes to PBC progression and metastasis.
- The YBX1-tRF-GlyTCC-RUNX2 axis represents a novel regulatory network in PBC.
- CADD522 demonstrates significant therapeutic potential as a targeted treatment for primary bone cancer.
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