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Author Spotlight: Efficient Detection of Immune Cell-Infiltration in Cancer Tissues Using Fluorescent Immunohistochemistry
Published on: January 26, 2024
Biomaterial-Based In Situ Cancer Vaccines
Yang Bo1, Hua Wang1,2,3,4,5,6,7
1Department of Materials Science and Engineering, University of Illinois at Urbana-Champaign, Urbana, IL, 61801, USA.
Abstract:
Cancer immunotherapies have reshaped the paradigm for cancer treatment over the past decade. Among them, therapeutic cancer vaccines that aim to modulate antigen-presenting cells and subsequent T cell priming processes are among the first FDA-approved cancer immunotherapies. However, despite showing benign safety profiles and the capability to generate antigen-specific humoral and cellular responses, cancer vaccines have been limited by the modest therapeutic efficacy, especially for immunologically cold solid tumors. One key challenge lies in the identification of tumor-specific antigens, which involves a costly and lengthy process of tumor cell isolation, DNA/RNA extraction, sequencing, mutation analysis, epitope prediction, peptide synthesis, and antigen screening. To address these issues, in situ cancer vaccines have been actively pursued to generate endogenous antigens directly from tumors and utilize the generated tumor antigens to elicit potent cytotoxic T lymphocyte (CTL) response. Biomaterials-based in situ cancer vaccines, in particular, have achieved significant progress by taking advantage of biomaterials that can synergize antigens and adjuvants, troubleshoot delivery issues, home, and manipulate immune cells in situ. This review will provide an overview of biomaterials-based in situ cancer vaccines, either living or artificial materials, under development or in the clinic, and discuss the design criteria for in situ cancer vaccines.
Insights
In situ cancer vaccines offer a promising approach to overcome the limitations of traditional vaccines by generating endogenous tumor antigens. Biomaterials enhance these vaccines, improving efficacy against solid tumors.
Area of Science:
- Biomedical Engineering
- Immunology
- Oncology
Background:
- Cancer immunotherapies, including therapeutic cancer vaccines, have advanced cancer treatment.
- Traditional vaccines face challenges with modest efficacy, especially in cold tumors, and lengthy antigen identification processes.
Purpose of the Study:
- To review biomaterials-based in situ cancer vaccines for improved therapeutic efficacy.
- To discuss design criteria for effective in situ cancer vaccines.
Main Methods:
- Review of current literature on biomaterials-based in situ cancer vaccines.
- Analysis of strategies for endogenous antigen generation and immune cell manipulation.
Main Results:
- In situ cancer vaccines generate endogenous antigens directly from tumors, bypassing complex identification steps.
- Biomaterials-based approaches synergize antigens and adjuvants, improve delivery, and modulate immune cells.
Conclusions:
- Biomaterials-based in situ cancer vaccines show significant progress in overcoming limitations of traditional vaccines.
- These vaccines hold potential for treating immunologically cold solid tumors.
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