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Updated: Apr 17, 2026

Generation of Prostate Cancer Cell Models of Resistance to the Anti-mitotic Agent Docetaxel
Published on: September 8, 2017
CRIP1 promotes docetaxel resistance and immune-associated cell death modulation in prostate cancer
Dehua Zhang1, Meiling Han2, Ni Yan1
1Department of Urology, Yiling Hospital of Yichang, Affiliated Yiling Hospital of China Three Gorges University, Yichang, Hubei, China.
Background:
Docetaxel resistance is a major barrier to durable disease control in advanced and castration-resistant prostate cancer. There is a pharmacological need to identify biomarkers that not only stratify resistance risk but also nominate tractable regulators whose perturbation can restore taxane sensitivity and suppress resistant phenotypes.
Methods:
We analyzed docetaxel-resistant prostate cancer cell models to derive resistance-associated transcriptional candidates and used computational prioritization to construct a compact, taxane-resistance-anchored gene set. Associations of the gene set and key candidates with disease progression were evaluated in TCGA-PRAD, which predominantly represents treatment-naïve primary tumors and therefore provides progression relevance rather than treatment-specific response validation. Docetaxel-resistant cell lines were established for functional validation, and CRIP1 was stably silenced to assess effects on drug sensitivity, clonogenic growth, migration, apoptosis, and immune-associated cell-death features. In addition, an LNCaP-DTXr xenograft model was used to evaluate the impact of CRIP1 knockdown on docetaxel response in vivo.
Results:
A three-gene, taxane-resistance-anchored signature was derived and showed progression-related associations in TCGA-PRAD. Among candidates, cysteine-rich protein 1 (CRIP1) was consistently upregulated in resistant models and emerged as a top resistance-associated factor. Functionally, CRIP1 knockdown restored docetaxel sensitivity, reduced clonogenic survival and migratory capacity, and enhanced docetaxel-induced apoptosis in resistant prostate cancer cells. Consistently, CRIP1 depletion significantly suppressed tumor growth and reduced tumor burden in docetaxel-treated LNCaP-DTXr xenografts, indicating restored chemosensitivity in vivo. In parallel, CRIP1 depletion was accompanied by changes in damage-associated and immune-related cell-death readouts under taxane stress, suggesting a potential role in linking drug tolerance to immune-relevant cell-death programs.
Conclusion:
These findings identify CRIP1 as a functionally validated, pharmacologically relevant mediator of docetaxel resistance in prostate cancer. While independent validation in taxane-treated clinical cohorts is warranted, our results support CRIP1 as a candidate therapeutic target and provide a mechanistic framework connecting taxane resistance with immune-associated cell-death modulation.
Insights
Cysteine-rich protein 1 (CRIP1) drives docetaxel resistance in prostate cancer. Targeting CRIP1 may restore drug sensitivity and offers a new therapeutic strategy for advanced prostate cancer.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Docetaxel resistance is a significant challenge in advanced and castration-resistant prostate cancer, limiting treatment efficacy.
- There is a critical need for biomarkers to predict resistance and identify targets to overcome it.
Purpose of the Study:
- To identify and functionally validate novel biomarkers associated with docetaxel resistance in prostate cancer.
- To explore the therapeutic potential of targeting identified resistance mediators.
Main Methods:
- Analysis of docetaxel-resistant prostate cancer cell models to identify resistance-associated genes.
- Computational prioritization to develop a targeted gene set.
- Validation in TCGA-PRAD dataset for progression relevance.
- Functional studies involving CRIP1 knockdown in cell lines and xenograft models.
Main Results:
- A three-gene signature linked to taxane resistance was identified.
- Cysteine-rich protein 1 (CRIP1) was consistently upregulated in resistant models and validated as a key resistance factor.
- CRIP1 knockdown restored docetaxel sensitivity, reduced cancer cell survival and migration, and enhanced apoptosis.
- CRIP1 depletion suppressed tumor growth and burden in vivo, indicating restored chemosensitivity.
Conclusions:
- CRIP1 is a functionally validated mediator of docetaxel resistance in prostate cancer.
- CRIP1 represents a potential therapeutic target for overcoming taxane resistance.
- Findings suggest a link between CRIP1, drug tolerance, and immune-associated cell-death modulation.
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