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Updated: Jul 23, 2026

Longitudinal Morphological and Physiological Monitoring of Three-dimensional Tumor Spheroids Using Optical Coherence Tomography
Published on: February 9, 2019
3D tumor spheroids: morphological alterations a yardstick to anti-cancer drug response
Anna Senrung1,2, Sakshi Lalwani2, Divya Janjua1
1Molecular Oncology Laboratory, Department of Zoology, University of Delhi (North Campus), Delhi, 110007 India.
Abstract:
Tumor spheroids are one of the well-characterized 3D culture systems bearing close resemblance to the physiological tissue organization and complexity of avascular solid tumor stage with hypoxic core. They hold a wide-spread application in the field of pharmaceutical science and anti-cancer drug research. However, the difficulty in determining optimal technique for the generation of spheroids with uniform size and shape, evaluation of experimental outputs, or mass production often limits their usage in anti-cancer research and in high-throughput drug screening. In recent times, several studies have demonstrated various simple techniques for generating uniform-size 3D spheroids, including the hanging drop (HD), liquid overlay technique (LOT), and microfluidic approaches. Morphological alterations apart from biochemical assays, and staining techniques are suitably employed for the evaluation of experimental outcomes within 3D spheroid models. Morphological alterations in response to effective anti-cancer drug treatment in 3D tumor spheroids such as reduced spheroid size, loss of spheroid compactness and integrity or smooth surface, are highly reliable. These alterations can significantly reduce the need for biochemical assays and staining techniques, resulting in both time and cost savings. The present article specifically covers a variety of available procedures in spheroid generation. For practical applicability, we have supplemented our review study with the generation of glioblastoma U87 spheroids using HD and LOT methods. Additionally, we have also incorporated the outcome of U87 spheroid treatment with doxorubicin on spheroid morphology.
Insights
Tumor spheroids offer a 3D model for anti-cancer drug research. Morphological changes in spheroids provide a reliable, cost-effective method for evaluating drug efficacy, reducing the need for complex assays.
Area of Science:
- Biomedical Engineering
- Cancer Research
- Drug Discovery
Background:
- Tumor spheroids mimic avascular solid tumors, crucial for anti-cancer drug research.
- Challenges exist in generating uniform spheroids and evaluating drug responses efficiently.
- Standard methods often require complex biochemical assays and staining techniques.
Purpose of the Study:
- To review spheroid generation techniques for improved anti-cancer drug screening.
- To highlight morphological changes as a reliable indicator of drug efficacy.
- To demonstrate practical spheroid generation and drug treatment using specific methods.
Main Methods:
- Review of various 3D spheroid generation techniques (hanging drop, liquid overlay, microfluidics).
- Generation of glioblastoma U87 spheroids using hanging drop (HD) and liquid overlay (LOT) methods.
- Assessment of doxorubicin's effect on U87 spheroid morphology.
Main Results:
- Morphological alterations (reduced size, compactness, smoother surface) reliably indicate effective anti-cancer drug treatment.
- HD and LOT methods facilitate uniform spheroid generation.
- Doxorubicin treatment induced significant morphological changes in U87 spheroids.
Conclusions:
- Morphological evaluation of tumor spheroids offers a time- and cost-effective alternative to biochemical assays.
- Standardized spheroid generation and morphological analysis can enhance anti-cancer drug screening.
- This approach streamlines research in pharmaceutical science and oncology.
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