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Colon, Y.

Publications and source records attributed to Colon, Y..

2 recordsLinked to original sources

Automated High-Content, High-Throughput Spatial Analysis Pipeline for Drug Screening in 3D Tumor Spheroid Inverted Colloidal Crystal Arrays

High-content, high-throughput (HCHT) screening platforms are essential for drug discovery, yet conventional 2D assays lack physiological relevance, and current 3D spheroid systems often face challenges to scalability, uniformity, and the analytical efficiency required for statistically robust screening. Here, we present a fully integrated 3D HCHT platform that synergizes tumor spheroid arrays generated from a bioinert inverted colloidal crystal (iCC) hydrogel frame-work with an automated, high-speed image analysis pipeline for rapid and spatially resolved therapeutic profiling. The iCC framework enables spontaneous self-assembly of highly-ordered tumor spheroid array at high spheroid density ([~]79.8 spheroids{middle dot}mm-2) with tight size uniformity (<10% standard deviation), supporting reproducible and high-content imaging ([~]40 spheroids{middle dot}image-1). The automated image-processing algorithm achieves robust region-of-interest segmentation, fluorescence-weighted centroiding, and multi-parametric spatial analysis in <5 seconds per image--markedly faster than conventional well-plate (5 min per 96 throughput) or single-spheroid analysis workflows methods ([~]1 sec per spheroid). Using this platform, we capture dose-dependent diffusion of doxorubicin, tumor penetration profile of small extracellular vesicles, and cell-type-specific infiltration behaviors of monocytes versus macrophages. Comparative viability profiling across chemotherapeutics further reveals distinct spatial toxicity signatures, highlighting the importance of spatial context in drug response assessment. Collectively, this platform enables rapid, reproducible, and spatially informative screening in 3D, offering a powerful tool for drug discovery, tumor modeling, and immunotherapeutic development.

cancer biology↗

A Bioinert Hydrogel Framework for Precision 3D Cell Cultures: Advancing Automated High-Content and High-Throughput Drug Screening

Enhanced drug testing efficiency has driven the prominence of high-content (HC) and high-throughput (HT) screening (HCHTS) in drug discovery and development. However, traditional HCHTS in well-plates often lack complexity of in vivo conditions. 3D cell cultures, like cellular spheroids/organoids, offer a promising alternative by replicating in vivo conditions and improving the reliability of drug responses. Integrating spheroids/organoids into HCHTS requires strategies to ensure uniform formation, systemic function, and compatibility with analysis techniques. This study introduces an easy-to-fabricate, low-cost, safe, and scalable approach to create a bioinert hydrogel-based inverted colloidal crystal (BhiCC) framework for uniform and high-yield spheroid cultivation. Highly uniform alginate microgels were fabricated and assembled into a colloidal crystal template with controllable contact area, creating engineered void spaces and interconnecting channels within agarose-based BhiCC through the template degradation by alginate lyase and buffer. This results in a multi-layered iCC domain, enabling the generation of in-vitro 3D culture models with over 1,000 spheroids per well in a 96-well plate. The unique hexagonal-close-packed (HCP) geometry of iCC structure enables HCHTS through conventional plate reader analysis and fluorescent microscopy assisted by house-developed automated data processing algorithm. This advancement offers promising applications in tissue engineering, disease modeling, and drug development in biomedical research.

bioengineering↗