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Multiplexed Immunofluorescence Analysis and Quantification of Intratumoral PD-1+ Tim-3+ CD8+ T Cells
Published on: February 8, 2018
Immunogenic cell death signatures from on-treatment tumor specimens predict immune checkpoint therapy response in
Huancheng Zeng1, Qiongzhi Jiang2, Rendong Zhang1
1Department of Breast Surgery, Cancer Hospital of Shantou University Medical College, No. 7 Raoping Road, Shantou, 515041, Guangdong, China.
Abstract:
Melanoma is a highly malignant form of skin cancer that typically originates from abnormal melanocytes. Despite significant advances in treating metastatic melanoma with immune checkpoint blockade (ICB) therapy, a substantial number of patients do not respond to this treatment and face risks of recurrence and metastasis. This study collected data from multiple datasets, including cohorts from Riaz et al., Gide et al., MGH, and Abril-Rodriguez et al., focusing on on-treatment samples during ICB therapy. We used the single-sample gene set enrichment analysis (ssGSEA) method to calculate immunogenic cell death scores (ICDS) and employed an elastic network algorithm to construct a model predicting ICB efficacy. By analyzing 18 ICD gene signatures, we identified 9 key ICD gene signatures that effectively predict ICB treatment response for on-treatment metastatic melanoma specimens. Results showed that patients with high ICD scores had significantly higher response rates to ICB therapy compared to those with low ICD scores. ROC analysis demonstrated that the AUC values for both the training and validation sets were around 0.8, indicating good predictive performance. Additionally, survival analysis revealed that patients with high ICD scores had longer progression-free survival (PFS). This study used an elastic network algorithm to identify 9 ICD gene signatures related to the immune response in metastatic melanoma. These gene features can not only predict the efficacy of ICB therapy but also provide references for clinical decision-making. The results indicate that ICD plays an important role in metastatic melanoma immunotherapy and that expressing ICD signatures can more accurately predict ICB treatment response and prognosis for on-treatment metastatic melanoma specimens, thus providing a basis for personalized treatment.
Insights
This study identifies 9 key immunogenic cell death (ICD) gene signatures that predict response to immune checkpoint blockade (ICB) therapy in metastatic melanoma. High ICD scores correlate with better treatment response and longer progression-free survival, aiding personalized treatment decisions.
Area of Science:
- Oncology
- Immunotherapy
- Genomics
Background:
- Metastatic melanoma is a dangerous skin cancer with limited treatment options for non-responders to immune checkpoint blockade (ICB).
- Predicting patient response to ICB therapy is crucial for effective treatment strategies and improving outcomes.
Purpose of the Study:
- To identify key gene signatures associated with immunogenic cell death (ICD) that can predict response to ICB therapy in metastatic melanoma.
- To develop a predictive model for ICB efficacy using on-treatment samples.
Main Methods:
- Utilized single-sample gene set enrichment analysis (ssGSEA) to calculate immunogenic cell death scores (ICDS).
- Employed an elastic network algorithm to construct a predictive model for ICB efficacy.
- Analyzed 18 ICD gene signatures across multiple patient cohorts (Riaz et al., Gide et al., MGH, Abril-Rodriguez et al.).
Main Results:
- Identified 9 key ICD gene signatures that accurately predict ICB treatment response in metastatic melanoma.
- Patients with high ICD scores showed significantly higher response rates to ICB therapy (AUC ~0.8).
- High ICD scores were associated with longer progression-free survival (PFS).
Conclusions:
- Immunogenic cell death (ICD) plays a critical role in the efficacy of metastatic melanoma immunotherapy.
- The identified 9 ICD gene signatures can predict ICB treatment response and patient prognosis.
- These findings support personalized treatment strategies for metastatic melanoma based on ICD signature expression.
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