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Published on: April 12, 2019
Exploiting B7-H3: Molecular Insights and Immunotherapeutic Strategies for Osteosarcoma
Yuhang Xie1, Hongru Wang2, Fanwei Zeng3
1Peking University International Hospital, Peking University Health Science Center, Beijing 102206, China.
Abstract:
Osteosarcoma (OS) remains the most common primary malignant bone tumor in adolescents, with conventional treatments yielding only modest improvements in long-term survival. Immunotherapy has emerged as a promising strategy to overcome these limitations. B7-H3 (CD276) stands apart from other potential targets due to its high expression in tumors cells, as well as its strong association with tumor aggressiveness and poor prognosis. This review provides a comprehensive overview of B7-H3, covering its molecular structure, regulatory mechanisms, biological functions, and expression patterns in tumor tissues. We emphasize the dual roles of B7-H3-both immunoregulatory and non-immunoregulatory-in shaping the tumor microenvironment (TME) and facilitating immune evasion. Building on these insights, we summarize current immunotherapeutic strategies targeting B7-H3 in OS, including monoclonal antibodies (mAbs), chimeric antigen receptor T cells (CAR-T), antibody-drug conjugates (ADCs), and bispecific antibodies (bsAbs). These four strategies have their own advantages and deficiencies. Excitingly, rapid advances in nanoparticle-based systems offer promising solutions to overcome the limitations, especially to develop more effective drug delivery systems and to reshape the TME by targeting immune cells. Despite promising progress, significant challenges remain. These include the absence of an identified B7-H3 receptor, the immunosuppressive and heterogeneous nature of the OS TME, and the need for improved targeting specificity and safety. Addressing these challenges through optimization of delivery systems, combination strategies, and the integration of nanotechnology may unlock the full potential of B7-H3-based immunotherapy in the treatment of OS.
Insights
Immunotherapy targeting B7-H3 shows promise for osteosarcoma (OS) treatment. Nanoparticle systems and combination strategies may overcome challenges like tumor heterogeneity and improve B7-H3 immunotherapy effectiveness.
Area of Science:
- Oncology
- Immunology
- Biotechnology
Background:
- Osteosarcoma (OS) is a primary bone cancer in adolescents with limited treatment success.
- Immunotherapy offers a promising avenue to improve long-term survival rates.
- B7-H3 (CD276) is highly expressed in OS, correlating with aggressiveness and poor prognosis.
Purpose of the Study:
- To review the molecular aspects of B7-H3, including its structure, regulation, function, and expression in tumors.
- To explore the dual immunoregulatory and non-immunoregulatory roles of B7-H3 in the tumor microenvironment (TME).
- To summarize current B7-H3-targeted immunotherapies for OS and discuss future directions.
Main Methods:
- Comprehensive literature review of B7-H3 in osteosarcoma.
- Analysis of B7-H3's role in immune evasion and TME modulation.
- Summary and comparison of immunotherapeutic strategies: monoclonal antibodies (mAbs), CAR-T cells, ADCs, and bsAbs.
- Exploration of nanoparticle-based systems for drug delivery and TME modulation.
Main Results:
- B7-H3 exhibits dual roles in immune regulation and TME modulation, facilitating tumor immune evasion.
- Current B7-H3-targeted immunotherapies (mAbs, CAR-T, ADCs, bsAbs) have distinct advantages and limitations.
- Nanoparticle systems present opportunities for enhanced drug delivery and TME reshaping.
- Significant challenges include the lack of a known B7-H3 receptor, OS TME heterogeneity, and safety concerns.
Conclusions:
- B7-H3-targeted immunotherapies hold significant potential for osteosarcoma treatment.
- Optimizing delivery systems, employing combination strategies, and integrating nanotechnology are crucial for success.
- Addressing challenges in targeting specificity, safety, and TME complexity is essential to realize B7-H3 immunotherapy's full potential.
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