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Updated: Jun 12, 2026

In Vitro Modeling of Down Syndrome Neurogenesis Using Human-Induced Pluripotent Stem Cells
Published on: March 7, 2025
Tumour angiogenesis is reduced in the Tc1 mouse model of Down's syndrome
Louise E Reynolds1, Alan R Watson, Marianne Baker
1Adhesion and Angiogenesis Laboratory, Barts Institute of Cancer, Barts and The London School of Medicine and Dentistry, Queen Mary University of London, John Vane Science Centre, Charterhouse Square, London EC1M 6BQ, UK. l.reynolds@qmul.ac.uk
Abstract:
Down's syndrome (DS) is a genetic disorder caused by full or partial trisomy of human chromosome 21 and presents with many clinical phenotypes including a reduced incidence of solid tumours. Recent work with the Ts65Dn model of DS, which has orthologues of about 50% of the genes on chromosome 21 (Hsa21), has indicated that three copies of the ETS2 (ref. 3) or DS candidate region 1 (DSCR1) genes (a previously known suppressor of angiogenesis) is sufficient to inhibit tumour growth. Here we use the Tc1 transchromosomic mouse model of DS to dissect the contribution of extra copies of genes on Hsa21 to tumour angiogenesis. This mouse expresses roughly 81% of Hsa21 genes but not the human DSCR1 region. We transplanted B16F0 and Lewis lung carcinoma tumour cells into Tc1 mice and showed that growth of these tumours was substantially reduced compared with wild-type littermate controls. Furthermore, tumour angiogenesis was significantly repressed in Tc1 mice. In particular, in vitro and in vivo angiogenic responses to vascular endothelial growth factor (VEGF) were inhibited. Examination of the genes on the segment of Hsa21 in Tc1 mice identified putative anti-angiogenic genes (ADAMTS1and ERG) and novel endothelial cell-specific genes, never previously shown to be involved in angiogenesis (JAM-B and PTTG1IP), that, when overexpressed, are responsible for inhibiting angiogenic responses to VEGF. Three copies of these genes within the stromal compartment reduced tumour angiogenesis, explaining the reduced tumour growth in DS. Furthermore, we expect that, in addition to the candidate genes that we show to be involved in the repression of angiogenesis, the Tc1 mouse model of DS will permit the identification of other endothelium-specific anti-angiogenic targets relevant to a broad spectrum of cancer patients.
Insights
Mice with extra copies of human chromosome 21 genes show reduced tumor growth and angiogenesis. This is due to specific genes inhibiting vascular endothelial growth factor (VEGF) responses, offering potential cancer targets.
Area of Science:
- Genetics
- Oncology
- Developmental Biology
Background:
- Down's syndrome (DS) is a genetic disorder linked to trisomy of human chromosome 21 (Hsa21).
- DS is associated with a lower incidence of solid tumors.
- Previous studies in mouse models suggested specific Hsa21 genes inhibit tumor growth.
Purpose of the Study:
- To investigate the role of extra Hsa21 gene copies in tumor angiogenesis using the Tc1 transchromosomic mouse model.
- To identify specific Hsa21 genes responsible for inhibiting tumor growth and angiogenesis.
Main Methods:
- Transplanted B16F0 and Lewis lung carcinoma cells into Tc1 mice and wild-type littermates.
- Assessed tumor growth and angiogenesis in vivo.
- Conducted in vitro and in vivo assays for angiogenic responses to vascular endothelial growth factor (VEGF).
- Examined gene expression in the Hsa21 segment within Tc1 mice.
Main Results:
- Tumor growth was substantially reduced in Tc1 mice compared to controls.
- Tumor angiogenesis was significantly repressed in Tc1 mice.
- Angiogenic responses to VEGF were inhibited both in vitro and in vivo.
- Overexpression of ADAMTS1, ERG, JAM-B, and PTTG1IP in the stromal compartment inhibited tumor angiogenesis.
Conclusions:
- Extra copies of specific Hsa21 genes, including ADAMTS1, ERG, JAM-B, and PTTG1IP, inhibit tumor angiogenesis by repressing VEGF responses.
- This mechanism explains the reduced tumor growth observed in Down's syndrome.
- The Tc1 mouse model is valuable for identifying novel anti-angiogenic targets for cancer therapy.
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