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January 20, 2026Advanced Materials Technologies0 citationsOpen Access

Two‐Photon Polymerized Microvascular Environments for Multicellular Modeling of the Blood–Brain Tumor Barrier

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NBNastaran BarinSCSayba Zafrin ChowdhuryMWMaurice de Wit

Key Points

  • The research aims to develop a 3D model of the blood-brain tumor barrier to study its interactions with glioma cells.
  • Fabricated 3D microvascular structures using two-photon polymerization.
  • Conducted immunofluorescence and electron microscopy analyses.
  • Performed co-cultures with endothelial cells, pericytes, and glioma cells.
  • Assessed barrier integrity via cytokine stimulation and marker expression.
  • 3D structures supported endothelial monolayers similar to in vivo conditions.
  • Endothelial cells showed increased expression of cytoskeletal and barrier markers compared to 2D cultures.
  • Interaction with glioma cells led to barrier destabilization as indicated by reduced CD31 and elevated PLVAP expression.
  • Engineered models provided stable perfusion within microfluidic chips.

Abstract

ABSTRACT Modeling the blood–brain tumor barrier (BBTB) in vitro remains a major challenge due to the structural and functional complexity of the brain microvasculature and its dynamic interactions with glioma cells. Here, we present 3D microvascular structures fabricated by two‐photon polymerization (2PP) that mimic capillary architecture and enable multicellular models for studying the BBTB. Immunofluorescence and scanning electron microscopy confirm that these structures support homogenous colonization by both human umbilical vein endothelial cells (HUVECs) and human cerebral microvascular endothelial cells (hCMEC/D3), forming tubular endothelial monolayers with polarized nuclear morphology and alignment, comparable to in vivo conditions. Additionally, endothelial cells show increased expression of cytoskeletal (tubulin, F‐actin) and barrier markers (ZO‐1, CD31) compared to 2D cultures. The engineered model responds to TNF‐α stimulation and supports co‐ and tri‐cultures with pericytes and glioma cells. Incorporation of glioma cells leads to reduced CD31 and elevated PLVAP expression, indicating barrier destabilization. The µPCs are also integrated into commercially available microfluidic chips via in‐chip 2PP, enabling stable perfusion and providing access to both luminal and abluminal sides of the endothelium. In summary, our model provides a biomimetic and adaptable platform for studying endothelial integrity, tumor‐vascular crosstalk, and broad applicability in barrier biology studies.

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Cite This Study

Barin et al. (2026) studied this question.

synapsesocial.com/papers/696f1ac19e64f732b51ef0d7https://doi.org/10.1002/admt.202502614
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