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April 14, 2026Microsystems & Nanoengineering0 citationsOpen Access

Photoacoustic microscopy reveals deep angiogenic responses in 3D bioprinted tumor–vessel models

YJYongjae JoSHSeokgyu HanHKHyunjun Kye

Key Points

  • This research aims to monitor and quantify angiogenesis in 3D bioprinted tumor-vessel models using photoacoustic microscopy.
  • Developed 3D bioprinted tumor-vessel models.
  • Employed high-resolution photoacoustic microscopy for imaging.
  • Compared outcomes to confocal microscopy for depth and resolution analysis.
  • Administered antibiotic treatments to evaluate effects on angiogenesis.
  • Achieved a 1.6-fold increase in penetration depth over confocal microscopy.
  • Successfully visualized vascular structures up to ~1 mm in depth.
  • Documented significant suppression of tumor-induced angiogenesis following antibiotic treatment.

Abstract

Abstract Three-dimensional (3D) tumor–vessel models provide a physiologically relevant platform to study tumor-induced angiogenesis and evaluate therapeutic responses. However, imaging-based analysis of these models is often constrained by limited penetration depth and volumetric resolution. To overcome these challenges, we employed high-resolution photoacoustic microscopy (HR − PAM) to monitor and quantify angiogenesis within bioprinted tumor–vessel models under drug treatments. Compared to confocal microscopy, the PAM achieved a 1.6-fold increase in 1/e² penetration depth, enabling visualization of vascular structures up to ~1 mm in depth. Using our HR − PAM platform, we successfully monitored and quantified tumor-induced angiogenesis, and following treatment with antibiotics, observed significant suppression. This deep tissue and large-volume PAM platform provides enhanced 3D insights into the effects of antibiotics on angiogenesis, paving the way for more precise in vitro evaluations of therapeutic interventions and drug screening studies.

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Cite This Study

Jo et al. (2026) studied this question.

synapsesocial.com/papers/69ddda4de195c95cdefd7bd0https://doi.org/10.1038/s41378-026-01243-y
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