ResearchIn-Press PreviewOncologyVascular biology
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10.1172/jci.insight.203732
1Department of Cell Biology and Developmental Genomics Center, University of Virginia School of Medicine, Charlottesville, United States of America
2Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine, Charlottesville, United States of America
3Biomedical Engineering, University of Virginia School of Medicine, Charlottesville, United States of America
4Department of Pediatrics, Division of Cardiology, Seattle Children’s Research Institute, Seattle, United States of America
5Microbiology, Immunology and Cancer Biology, University of Virginia School of Medicine, Charlottesville, United States of America
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1Department of Cell Biology and Developmental Genomics Center, University of Virginia School of Medicine, Charlottesville, United States of America
2Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine, Charlottesville, United States of America
3Biomedical Engineering, University of Virginia School of Medicine, Charlottesville, United States of America
4Department of Pediatrics, Division of Cardiology, Seattle Children’s Research Institute, Seattle, United States of America
5Microbiology, Immunology and Cancer Biology, University of Virginia School of Medicine, Charlottesville, United States of America
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1Department of Cell Biology and Developmental Genomics Center, University of Virginia School of Medicine, Charlottesville, United States of America
2Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine, Charlottesville, United States of America
3Biomedical Engineering, University of Virginia School of Medicine, Charlottesville, United States of America
4Department of Pediatrics, Division of Cardiology, Seattle Children’s Research Institute, Seattle, United States of America
5Microbiology, Immunology and Cancer Biology, University of Virginia School of Medicine, Charlottesville, United States of America
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1Department of Cell Biology and Developmental Genomics Center, University of Virginia School of Medicine, Charlottesville, United States of America
2Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine, Charlottesville, United States of America
3Biomedical Engineering, University of Virginia School of Medicine, Charlottesville, United States of America
4Department of Pediatrics, Division of Cardiology, Seattle Children’s Research Institute, Seattle, United States of America
5Microbiology, Immunology and Cancer Biology, University of Virginia School of Medicine, Charlottesville, United States of America
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1Department of Cell Biology and Developmental Genomics Center, University of Virginia School of Medicine, Charlottesville, United States of America
2Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine, Charlottesville, United States of America
3Biomedical Engineering, University of Virginia School of Medicine, Charlottesville, United States of America
4Department of Pediatrics, Division of Cardiology, Seattle Children’s Research Institute, Seattle, United States of America
5Microbiology, Immunology and Cancer Biology, University of Virginia School of Medicine, Charlottesville, United States of America
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1Department of Cell Biology and Developmental Genomics Center, University of Virginia School of Medicine, Charlottesville, United States of America
2Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine, Charlottesville, United States of America
3Biomedical Engineering, University of Virginia School of Medicine, Charlottesville, United States of America
4Department of Pediatrics, Division of Cardiology, Seattle Children’s Research Institute, Seattle, United States of America
5Microbiology, Immunology and Cancer Biology, University of Virginia School of Medicine, Charlottesville, United States of America
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1Department of Cell Biology and Developmental Genomics Center, University of Virginia School of Medicine, Charlottesville, United States of America
2Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine, Charlottesville, United States of America
3Biomedical Engineering, University of Virginia School of Medicine, Charlottesville, United States of America
4Department of Pediatrics, Division of Cardiology, Seattle Children’s Research Institute, Seattle, United States of America
5Microbiology, Immunology and Cancer Biology, University of Virginia School of Medicine, Charlottesville, United States of America
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1Department of Cell Biology and Developmental Genomics Center, University of Virginia School of Medicine, Charlottesville, United States of America
2Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine, Charlottesville, United States of America
3Biomedical Engineering, University of Virginia School of Medicine, Charlottesville, United States of America
4Department of Pediatrics, Division of Cardiology, Seattle Children’s Research Institute, Seattle, United States of America
5Microbiology, Immunology and Cancer Biology, University of Virginia School of Medicine, Charlottesville, United States of America
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1Department of Cell Biology and Developmental Genomics Center, University of Virginia School of Medicine, Charlottesville, United States of America
2Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine, Charlottesville, United States of America
3Biomedical Engineering, University of Virginia School of Medicine, Charlottesville, United States of America
4Department of Pediatrics, Division of Cardiology, Seattle Children’s Research Institute, Seattle, United States of America
5Microbiology, Immunology and Cancer Biology, University of Virginia School of Medicine, Charlottesville, United States of America
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1Department of Cell Biology and Developmental Genomics Center, University of Virginia School of Medicine, Charlottesville, United States of America
2Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine, Charlottesville, United States of America
3Biomedical Engineering, University of Virginia School of Medicine, Charlottesville, United States of America
4Department of Pediatrics, Division of Cardiology, Seattle Children’s Research Institute, Seattle, United States of America
5Microbiology, Immunology and Cancer Biology, University of Virginia School of Medicine, Charlottesville, United States of America
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1Department of Cell Biology and Developmental Genomics Center, University of Virginia School of Medicine, Charlottesville, United States of America
2Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine, Charlottesville, United States of America
3Biomedical Engineering, University of Virginia School of Medicine, Charlottesville, United States of America
4Department of Pediatrics, Division of Cardiology, Seattle Children’s Research Institute, Seattle, United States of America
5Microbiology, Immunology and Cancer Biology, University of Virginia School of Medicine, Charlottesville, United States of America
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1Department of Cell Biology and Developmental Genomics Center, University of Virginia School of Medicine, Charlottesville, United States of America
2Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine, Charlottesville, United States of America
3Biomedical Engineering, University of Virginia School of Medicine, Charlottesville, United States of America
4Department of Pediatrics, Division of Cardiology, Seattle Children’s Research Institute, Seattle, United States of America
5Microbiology, Immunology and Cancer Biology, University of Virginia School of Medicine, Charlottesville, United States of America
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1Department of Cell Biology and Developmental Genomics Center, University of Virginia School of Medicine, Charlottesville, United States of America
2Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine, Charlottesville, United States of America
3Biomedical Engineering, University of Virginia School of Medicine, Charlottesville, United States of America
4Department of Pediatrics, Division of Cardiology, Seattle Children’s Research Institute, Seattle, United States of America
5Microbiology, Immunology and Cancer Biology, University of Virginia School of Medicine, Charlottesville, United States of America
Find articles by Dudley, A. in: PubMed | Google Scholar
1Department of Cell Biology and Developmental Genomics Center, University of Virginia School of Medicine, Charlottesville, United States of America
2Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine, Charlottesville, United States of America
3Biomedical Engineering, University of Virginia School of Medicine, Charlottesville, United States of America
4Department of Pediatrics, Division of Cardiology, Seattle Children’s Research Institute, Seattle, United States of America
5Microbiology, Immunology and Cancer Biology, University of Virginia School of Medicine, Charlottesville, United States of America
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Published September 10, 2026 - More info
Dysfunctional tumor vessels promote disease progression, whereas improved function enhances therapeutic delivery. However, current approaches to normalize tumor vasculature have limited efficacy. In vascular malformations, vessels are similarly dysfunctional, with endothelial cell (EC) hyperproliferation impairing arterial-venous specification. These defects are corrected with palbociclib, a cyclin-dependent kinase 4/6 inhibitor (CDK4/6i) that has beneficial effects on tumor and immune cells, but the effects on tumor vasculature are not well characterized. In our studies, murine mammary tumor ECs (TECs) exhibited disrupted cell cycle and specification, and CDK4/6i promoted TEC cycle control, enabling improved tumor vascular function. To investigate transcriptomic changes, we performed single-cell RNA sequencing (scRNAseq) of treated and untreated tumors, and healthy tissues. CDK4/6i-mediated TEC cycle arrest promoted arterial-venous specification, cellular junctions, and pericyte association, and suppressed glycolytic and immunosuppressive gene expression. These effects were associated with increased vessel perfusion, decreased tumor hypoxia, and a more favorable immune landscape with immunotherapy. In scRNAseq datasets from patients treated long-term with CDK4/6i, TECs exhibited similar transcriptomic changes associated with arterial-venous specification, pericyte recruitment, and immune signaling. Thus, in contrast to current strategies, CDK4/6i-mediated vascular changes may be maintained with continued treatment, highlighting the relevance of modulating TEC cycle to improve vessel maturation/function.