Related Experiment Video
Updated: Aug 13, 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
Single-Cell Profiling Comparisons of Tumor Microenvironment between Primary Advanced Lung Adenocarcinomas and Brain
Yijun Wu1, Kai Kang1, Chang Han2
1Department of Thoracic Oncology, Cancer Center, and Laboratory of Clinical Cell Therapy, West China Hospital, Sichuan University, Chengdu 610041, China.
Abstract:
Brain metastasis (BM) occurs commonly in patients with lung adenocarcinomas. Limited evidence indicates safety and efficacy of immunotherapy for this metastatic tumor, though immune checkpoint blockade has become the front-line treatment for primary advanced non-small cell lung cancer. We aim to comprehensively compare tumor microenvironments (TME) between primary tumors (PT) and BM at single-cell resolution. Single-cell RNA transcriptomics from tumor samples of PT (N = 23) and BM (N = 16) and bulk sequencing data were analyzed to explore potential differences in immunotherapeutic efficacy between PT and BM of lung adenocarcinomas. Multiple machine learning algorithms were used to develop and validate models that predict responses to immunotherapy using the external cohorts. We found obviously less infiltration of immune cells in BM than PT, characterized specifically by deletion of anti-cancer CD8+ Trm cells and more dysfunctional CD8+ Tem cells in BM tumors. Meanwhile, macrophages and dendritic cells within BM demonstrated more pro-tumoral and anti-inflammatory effects, represented by distinct distribution and function of SPP1+ and C1Qs+ tumor-associated microphages, and inhibited antigen presentation capacity and HLA-I gene expression, respectively. Besides, we also found the lack of inflammatory-like CAFs and enrichment of pericytes within BM tumors, which may be critical factors in shaping inhibitory TME. Cell communication analysis further revealed mechanisms of the immunosuppressive effects associated with the activation of some unfavorable pathways, such as TGFβ signaling, highlighting the important roles of stromal cells in the anti-inflammatory microenvironment, especially specific pericytes. Furthermore, pericyte-related genes were identified to optimally predict immunotherapeutic responses by machine learning models with great predictive performance. Overall, various factors contribute to the immunosuppressive TME within BM tumors, represented by the lack of critical anti-cancer immune cells. Meanwhile, pericytes may help shape the TME and targeting the associated mechanisms may enhance immunotherapy efficacy for BM tumors in patients with lung adenocarcinomas.
Insights
Brain metastasis in lung adenocarcinoma shows fewer immune cells and more dysfunctional cells compared to primary tumors. Pericytes are key in shaping this immunosuppressive environment, offering new immunotherapy targets.
Area of Science:
- Oncology
- Immunology
- Genomics
Background:
- Brain metastasis (BM) is common in lung adenocarcinomas, but its immunotherapy efficacy is poorly understood.
- Immune checkpoint blockade is a standard treatment for primary advanced non-small cell lung cancer.
Purpose of the Study:
- To comprehensively compare tumor microenvironments (TME) between primary tumors (PT) and BM at single-cell resolution.
- To identify differences in immunotherapeutic efficacy between PT and BM.
- To develop predictive models for immunotherapy response.
Main Methods:
- Single-cell RNA transcriptomics and bulk sequencing of PT and BM samples.
- Machine learning algorithms for model development and validation.
- Cell communication analysis.
Main Results:
- BM exhibits reduced immune cell infiltration, fewer anti-cancer CD8+ Trm cells, and more dysfunctional CD8+ Tem cells than PT.
- Macrophages and dendritic cells in BM show pro-tumoral and anti-inflammatory functions.
- BM TME is characterized by a lack of inflammatory cancer-associated fibroblasts (CAFs) and an enrichment of pericytes.
- Pericyte-related genes are strong predictors of immunotherapy response.
Conclusions:
- The immunosuppressive TME in BM is driven by reduced anti-cancer immune cells and specific stromal components like pericytes.
- Pericytes play a critical role in shaping the BM TME and may represent a therapeutic target to enhance immunotherapy efficacy.

