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Updated: Oct 20, 2025

Quantifying the Brain Metastatic Tumor Micro-Environment using an Organ-On-A Chip 3D Model, Machine Learning, and Confocal Tomography
Published on: August 16, 2020
Blood-Brain Barrier, Cell Junctions, and Tumor Microenvironment in Brain Metastases, the Biological Prospects and
Zhiyuan Guan1, Hongyu Lan1, Xin Cai1
1State Key Laboratory of Respiratory Disease, National Clinical Research Center for Respiratory Disease, The First Affiliated Hospital of Guangzhou Medical University, Guangzhou, China.
Abstract:
Brain metastasis is the most commonly seen brain malignancy, frequently originating from lung cancer, breast cancer, and melanoma. Brain tumor has its unique cell types, anatomical structures, metabolic constraints, and immune environment, which namely the tumor microenvironment (TME). It has been discovered that the tumor microenvironment can regulate the progression, metastasis of primary tumors, and response to the treatment through the particular cellular and non-cellular components. Brain metastasis tumor cells that penetrate the brain-blood barrier and blood-cerebrospinal fluid barrier to alter the function of cell junctions would lead to different tumor microenvironments. Emerging evidence implies that these tumor microenvironment components would be involved in mechanisms of immune activation, tumor hypoxia, antiangiogenesis, etc. Researchers have applied various therapeutic strategies to inhibit brain metastasis, such as the combination of brain radiotherapy, immune checkpoint inhibitors, and monoclonal antibodies. Unfortunately, they hardly access effective treatment. Meanwhile, most clinical trials of target therapy patients with brain metastasis are always excluded. In this review, we summarized the clinical treatment of brain metastasis in recent years, as well as their influence and mechanisms underlying the differences between the composition of tumor microenvironments in the primary tumor and brain metastasis. We also look forward into the feasibility and superiority of tumor microenvironment-targeted therapies in the future, which may help to improve the strategy of brain metastasis treatment.
Insights
Brain metastasis, often from lung cancer, presents unique challenges due to its distinct tumor microenvironment (TME). Targeting the TME offers a promising future strategy to improve treatment efficacy for brain metastases.
Area of Science:
- Neuro-oncology
- Cancer Biology
- Immunology
Background:
- Brain metastasis is a common and severe complication of primary cancers like lung, breast, and melanoma.
- The brain tumor microenvironment (TME) significantly influences tumor progression, metastasis, and treatment response.
- Brain metastasis exhibits unique characteristics compared to primary tumors due to altered barriers and cellular components.
Purpose of the Study:
- To review current clinical treatments for brain metastasis.
- To elucidate the mechanisms behind TME differences between primary tumors and brain metastases.
- To explore future TME-targeted therapies for improved treatment strategies.
Main Methods:
- Literature review of recent clinical treatments for brain metastasis.
- Analysis of studies detailing TME composition in primary tumors versus brain metastases.
- Discussion of emerging therapeutic strategies targeting the TME.
Main Results:
- Current treatments like radiotherapy and immunotherapy show limited efficacy for brain metastases.
- Brain metastasis TME components are involved in immune modulation, hypoxia, and angiogenesis.
- Patients with brain metastasis are often excluded from targeted therapy clinical trials.
Conclusions:
- Understanding TME differences is crucial for developing effective brain metastasis treatments.
- Targeting the unique brain TME holds significant potential for future therapeutic advancements.
- Further research into TME-targeted therapies is warranted to improve patient outcomes.
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