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Paramyxoviruses for Tumor-targeted Immunomodulation: Design and Evaluation Ex Vivo
Published on: January 7, 2019
Cancer vaccines: an update on recent achievements and prospects for cancer therapy
Arezki Chekaoui1, Mariangela Garofalo2, Beata Gad1
1Department of Virology, National Institute of Public Health NIH-National Research Institute, Warsaw, Poland.
Abstract:
Decades of basic and translational research have led to a momentum shift in dissecting the relationship between immune cells and cancer. This culminated in the emergence of breakthrough immunotherapies that paved the way for oncologists to manage certain hard-to-treat cancers. The application of high-throughput techniques of genomics, transcriptomics, and proteomics was conclusive in making and expediting the manufacturing process of cancer vaccines. Using the latest research technologies has also enabled scientists to interpret complex and multiomics data of the tumour mutanome, thus identifying new tumour-specific antigens to design new generations of cancer vaccines with high specificity and long-term efficacy. Furthermore, combinatorial regimens of cancer vaccines with immune checkpoint inhibitors have offered new therapeutic approaches and demonstrated impressive efficacy in cancer patients over the last few years. In the present review, we summarize the current state of cancer vaccines, including their potential therapeutic effects and the limitations that hinder their effectiveness. We highlight the current efforts to mitigate these limitations and highlight ongoing clinical trials. Finally, a special focus will be given to the latest milestones expected to transform the landscape of cancer therapy and nurture hope among cancer patients.
Insights
Cancer vaccines, developed using advanced genomics and proteomics, show promise in treating difficult cancers. Combinations with immune checkpoint inhibitors offer new therapeutic hope for patients.
Area of Science:
- Oncology
- Immunology
- Biotechnology
Background:
- Decades of research have elucidated the intricate relationship between immune cells and cancer.
- Breakthrough immunotherapies have emerged, transforming the management of hard-to-treat cancers.
Purpose of the Study:
- To review the current landscape of cancer vaccines, including their therapeutic potential and limitations.
- To highlight advancements in vaccine design and ongoing clinical trials.
- To discuss future milestones in cancer vaccine therapy.
Main Methods:
- Application of high-throughput genomics, transcriptomics, and proteomics for vaccine manufacturing.
- Interpretation of complex multiomics data to identify tumor-specific antigens.
- Review of combinatorial regimens including cancer vaccines and immune checkpoint inhibitors.
Main Results:
- Cancer vaccines, expedited by high-throughput techniques, are becoming a reality.
- New generations of cancer vaccines exhibit high specificity and long-term efficacy.
- Combinatorial therapies demonstrate impressive efficacy in cancer patients.
Conclusions:
- Cancer vaccines represent a significant advancement in oncology.
- Addressing current limitations is crucial for maximizing vaccine effectiveness.
- Emerging milestones offer substantial hope for cancer patients.
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