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Discovery of Metastatic Regulators using a Rapid and Quantitative Intravital Chick Chorioallantoic Membrane Model
Published on: February 3, 2021
Quantitative dissection of the metastatic cascade at single colony resolution
Chris Roberts1,2,3, Andy Xu1,2, Xiangwei Fang4
1Taylor Family Department of Neurosurgery, Washington University School of Medicine, St. Louis, MO, USA.
Abstract:
Metastasis is the leading cause of cancer-related deaths. However, the core determinants and mechanistic principles underlying the metastatic cascade remain elusive. Small cell lung cancer (SCLC) is a highly aggressive malignancy with exceptional metastatic potential and limited therapeutic options. Here, we present Metastasis Originated Barcode Sequencing (MOBA-seq), a high-throughput in vivo platform that systematically maps genetic regulators across the metastatic cascade at single-colony resolution. MOBA-seq integrates scalable barcode-based lineage tracing with a computational pipeline that quantitatively deconvolutes genotype-specific effects on metastatic seeding, dormancy, and clonal expansion across hundreds of thousands of metastatic events. Applying this approach to more than 400 candidate regulators of SCLC, we uncovered tissue-specific metastatic suppressors and universal metastatic essential genes. We identified metastatic seeding as the predominant determinant of metastasis. Comparative analysis across recipient mice of distinct genetic backgrounds further revealed that innate immune surveillance constrains metastatic progression by reducing metastatic seeding and enforcing dormancy, with additional modulation by sex and tissue context. We validated the frequently mutated gene CREBBP as a key metastasis suppressor whose loss enhances SCLC metastasis through both tumor-intrinsic and immune-modulatory mechanisms. This work establishes a scalable and quantitative platform for mapping the metastatic fitness landscape at single-colony resolution across hundreds of thousands of in vivo data points. Our approach offers a broadly applicable framework for dissecting the interactions between cancer-intrinsic and microenvironmental factors governing tumor initiation, progression, and therapeutic response.
Insights
Metastasis Originated Barcode Sequencing (MOBA-seq) reveals key genetic regulators of cancer spread. This new platform identifies tissue-specific suppressors and essential genes, improving our understanding of metastasis and potential therapies.
Area of Science:
- Oncology
- Genetics
- Immunology
Background:
- Metastasis is the primary cause of cancer mortality, yet its underlying mechanisms remain poorly understood.
- Small cell lung cancer (SCLC) exhibits aggressive behavior and high metastatic potential, with limited treatment options.
Purpose of the Study:
- To develop and apply a high-throughput *in vivo* platform, MOBA-seq, for systematically mapping genetic regulators of the metastatic cascade.
- To identify genotype-specific effects on metastatic seeding, dormancy, and clonal expansion at single-colony resolution.
Main Methods:
- MOBA-seq integrates barcode-based lineage tracing with computational analysis to quantify genetic regulator effects on metastasis.
- The platform was applied to over 400 candidate regulators in SCLC models.
- Comparative analysis was performed across mice with different genetic backgrounds, sexes, and tissue contexts.
Main Results:
- MOBA-seq successfully mapped genetic regulators across the metastatic cascade, uncovering tissue-specific suppressors and essential genes.
- Metastatic seeding was identified as the dominant factor in metastasis.
- Innate immune surveillance was found to constrain metastasis by reducing seeding and enforcing dormancy, influenced by sex and tissue context.
- Loss of the frequently mutated gene *CREBBP* was validated as a key metastasis suppressor, enhancing SCLC metastasis via tumor-intrinsic and immune-modulatory pathways.
Conclusions:
- MOBA-seq provides a scalable, quantitative platform for dissecting the metastatic fitness landscape *in vivo*.
- The study offers a framework for understanding cancer-intrinsic and microenvironmental interactions in tumor progression and therapeutic response.
- Findings highlight the role of immune surveillance, genetic factors like *CREBBP*, and metastatic seeding in SCLC metastasis.

