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Updated: Jun 19, 2025

In Vitro Assay to Study Tumor-macrophage Interaction
Published on: August 1, 2019
Tumor-associated macrophages: A sentinel of innate immune system in tumor microenvironment gone haywire
Shaivy Malik1, Niti Sureka1, Sana Ahuja1
1Department of Pathology, Vardhman Mahavir Medical College and Safdarjung Hospital, New Delhi, New Delhi, India.
Abstract:
The tumor microenvironment (TME) is a critical determinant in the initiation, progression, and treatment outcomes of various cancers. Comprising of cancer-associated fibroblasts (CAF), immune cells, blood vessels, and signaling molecules, the TME is often likened to the soil supporting the seed (tumor). Among its constituents, tumor-associated macrophages (TAMs) play a pivotal role, exhibiting a dual nature as both promoters and inhibitors of tumor growth. This review explores the intricate relationship between TAMs and the TME, emphasizing their diverse functions, from phagocytosis and tissue repair to modulating immune responses. The plasticity of TAMs is highlighted, showcasing their ability to adopt either protumorigenic or anti-tumorigenic phenotypes based on environmental cues. In the context of cancer, TAMs' pro-tumorigenic activities include promoting angiogenesis, inhibiting immune responses, and fostering metastasis. The manuscript delves into therapeutic strategies targeting TAMs, emphasizing the challenges faced in depleting or inhibiting TAMs due to their multifaceted roles. The focus shifts towards reprogramming TAMs to an anti-tumorigenic M1-like phenotype, exploring interventions such as interferons, immune checkpoint inhibitors, and small molecule modulators. Noteworthy advancements include the use of CSF1R inhibitors, CD40 agonists, and CD47 blockade, demonstrating promising results in preclinical and clinical settings. A significant section is dedicated to Chimeric Antigen Receptor (CAR) technology in macrophages (CAR-M cells). While CAR-T cells have shown success in hematological malignancies, their efficacy in solid tumors has been limited. CAR-M cells, engineered to infiltrate solid tumors, are presented as a potential breakthrough, with a focus on their development, challenges, and promising outcomes. The manuscript concludes with the exploration of third-generation CAR-M technology, offering insight into in-vivo reprogramming and nonviral vector approaches. In conclusion, understanding the complex and dynamic role of TAMs in cancer is crucial for developing effective therapeutic strategies. While early-stage TAM-targeted therapies show promise, further extensive research and larger clinical trials are warranted to optimize their targeting and improve overall cancer treatment outcomes.
Insights
Tumor-associated macrophages (TAMs) are key players in cancer, influencing tumor growth and treatment. Reprogramming TAMs and using Chimeric Antigen Receptor-macrophages (CAR-M) show promise for effective cancer therapies.
Area of Science:
- Oncology
- Immunology
- Cancer Biology
Background:
- The tumor microenvironment (TME) critically influences cancer initiation, progression, and treatment response.
- Tumor-associated macrophages (TAMs) within the TME exhibit plasticity, acting as both promoters and inhibitors of tumor growth.
- TAMs' pro-tumorigenic functions include promoting angiogenesis, immune suppression, and metastasis.
Purpose of the Study:
- To review the multifaceted roles of TAMs in the tumor microenvironment.
- To explore therapeutic strategies targeting TAMs, focusing on reprogramming and novel approaches.
- To discuss the potential of Chimeric Antigen Receptor-macrophages (CAR-M) for solid tumor treatment.
Main Methods:
- Literature review of TAM functions and therapeutic interventions.
- Analysis of preclinical and clinical data for TAM-targeted therapies.
- Exploration of Chimeric Antigen Receptor (CAR) technology applied to macrophages (CAR-M).
Main Results:
- TAMs display plasticity, adopting phenotypes that can either promote or inhibit tumor progression.
- Therapeutic strategies like CSF1R inhibitors, CD40 agonists, and CD47 blockade show promise in modulating TAMs.
- Chimeric Antigen Receptor-macrophage (CAR-M) cells represent a novel approach for targeting solid tumors, with ongoing development in third-generation technologies.
Conclusions:
- Understanding TAM dynamics in the TME is crucial for developing effective cancer therapies.
- Reprogramming TAMs and utilizing CAR-M technology offer promising avenues for cancer treatment.
- Further research and clinical trials are essential to optimize TAM-targeted strategies and improve patient outcomes.
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