Trophoblast organoids can provide crucial insights into mechanisms of placentation, however their potential is limited by highly variable extracellular matrices unable to reflect in vivo tissues. Here, we present a bioprinted placental organoid model, generated using the first trimester trophoblast cell line, ACH-3P, and a synthetic polyethylene glycol (PEG) matrix. Bioprinted or Matrigel-embedded organoids differentiate spontaneously from cytotrophoblasts into two major subtypes: extravillous trophoblasts (EVTs) and syncytiotrophoblasts (STBs). Bioprinted organoids are driven towards EVT differentiation and show close similarity with early human placenta or primary trophoblast organoids. Inflammation inhibits proliferation and STBs within bioprinted organoids, which aspirin or metformin (0.5 mM) cannot rescue. We reverse the inside-out architecture of ACH-3P organoids by suspension culture with STBs forming on the outer layer of organoids, reflecting placental tissue. Our bioprinted methodology is applicable to trophoblast stem cells. We present a high-throughput, automated, and tuneable trophoblast organoid model that reproducibly mimics the placental microenvironment in health and disease.
Matrix directs trophoblast differentiation in a bioprinted organoid model of early placental development.
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作者:Richards Claire, Chen Hao, O'Rourke Matthew, Bannister Ashley, Owen Grace, Volkerling Alexander, Ghosh Arnab, Gorrie Catherine A, Gallego-Ortega David, Bottomley Amy L, Padula Matthew P, McGrath Kristine C, Cole Louise, Hansbro Philip M, McClements Lana
| 期刊: | Nature Communications | 影响因子: | 15.700 |
| 时间: | 2025 | 起止号: | 2025 Sep 12; 16(1):8267 |
| doi: | 10.1038/s41467-025-62996-0 | ||
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