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Updated: Aug 28, 2025

Author Spotlight: Integrating Organoid Models with Single-Cell and Spatial Transcriptomics Technologies
Published on: March 29, 2024
Single-cell transcriptome reveals cellular hierarchies and guides p-EMT-targeted trial in skull base chordoma
Qilin Zhang1,2, Lijiang Fei3, Rui Han1,2
1Department of Neurosurgery, Huashan Hospital, Shanghai Medical College, Fudan University, Shanghai, China.
Abstract:
Skull base chordoma (SBC) is a bone cancer with a high recurrence rate, high radioresistance rate, and poorly understood mechanism. Here, we profiled the transcriptomes of 90,691 single cells, revealed the SBC cellular hierarchies, and explored novel treatment targets. We identified a cluster of stem-like SBC cells that tended to be distributed in the inferior part of the tumor. Combining radiated UM-Chor1 RNA-seq data and in vitro validation, we further found that this stem-like cell cluster is marked by cathepsin L (CTSL), a gene involved in the packaging of telomere ends, and may be responsible for radioresistance. Moreover, signatures related to partial epithelial-mesenchymal transition (p-EMT) were found to be significant in malignant cells and were related to the invasion and poor prognosis of SBC. Furthermore, YL-13027, a p-EMT inhibitor that acts through the TGF-β signaling pathway, demonstrated remarkable potency in inhibiting the invasiveness of SBC in preclinical models and was subsequently applied in a phase I clinical trial that enrolled three SBC patients. Encouragingly, YL-13027 attenuated the growth of SBC and achieved stable disease with no serious adverse events, underscoring the clinical potential for the precision treatment of SBC with this therapy. In summary, we conducted the first single-cell RNA sequencing of SBC and identified several targets that could be translated to the treatment of SBC.
Insights
This study reveals stem-like skull base chordoma (SBC) cells, marked by cathepsin L (CTSL), drive radioresistance. A novel p-EMT inhibitor shows promise for SBC precision treatment.
Area of Science:
- Oncology
- Genomics
- Molecular Biology
Background:
- Skull base chordoma (SBC) is an aggressive bone cancer characterized by high recurrence and radioresistance.
- The underlying mechanisms of SBC progression and treatment resistance remain poorly understood.
Purpose of the Study:
- To profile SBC at single-cell resolution to identify cellular hierarchies and novel therapeutic targets.
- To investigate the role of specific cell populations and molecular pathways in SBC radioresistance and invasion.
Main Methods:
- Single-cell RNA sequencing (scRNA-seq) of 90,691 cells from SBC tumors.
- In vitro validation and analysis of RNA-seq data from radiated cell lines.
- Preclinical testing of a partial epithelial-mesenchymal transition (p-EMT) inhibitor (YL-13027).
Main Results:
- Identified a stem-like SBC cell cluster associated with cathepsin L (CTSL) expression, linked to radioresistance.
- Discovered significant partial epithelial-mesenchymal transition (p-EMT) signatures correlating with invasion and poor prognosis.
- YL-13027 demonstrated potent inhibition of SBC invasiveness in preclinical models and showed efficacy in a Phase I clinical trial.
Conclusions:
- This is the first scRNA-seq study of SBC, revealing key cellular drivers of the disease.
- CTSL-positive stem-like cells and p-EMT pathways are critical targets for SBC therapy.
- YL-13027 represents a promising targeted therapy for precision treatment of skull base chordoma.

