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Updated: May 19, 2026

Multiparametric Tumor Organoid Drug Screening Using Widefield Live-Cell Imaging for Bulk and Single-Organoid Analysis
Published on: December 23, 2022
In vitro optimization of EtNBS-PDT against hypoxic tumor environments with a tiered, high-content, 3D model optical
Oliver J Klein1, Brijesh Bhayana, Yong Jin Park
1Wellman Center for Photomedicine, Harvard Medical School, Massachusetts General Hospital, 40 Blossom Street, Boston, Massachusetts 02215, United States.
Abstract:
Hypoxia and acidosis are widely recognized as major contributors to the development of treatment resistant cancer. For patients with disseminated metastatic lesions, such as most women with ovarian cancer (OvCa), the progression to treatment resistant disease is almost always fatal. Numerous therapeutic approaches have been developed to eliminate treatment resistant carcinoma, including novel biologic, chemo, radiation, and photodynamic therapy (PDT) regimens. Recently, PDT using the cationic photosensitizer EtNBS was found to be highly effective against therapeutically unresponsive hypoxic and acidic OvCa cellular populations in vitro. To optimize this treatment regimen, we developed a tiered, high-content, image-based screening approach utilizing a biologically relevant OvCa 3D culture model to investigate a small library of side-chain modified EtNBS derivatives. The uptake, localization, and photocytotoxicity of these compounds on both the cellular and nodular levels were observed to be largely mediated by their respective ethyl side chain chemical alterations. In particular, EtNBS and its hydroxyl-terminated derivative (EtNBS-OH) were found to have similar pharmacological parameters, such as their nodular localization patterns and uptake kinetics. Interestingly, these two molecules were found to induce dramatically different therapeutic outcomes: EtNBS was found to be more effective in killing the hypoxic, nodule core cells with superior selectivity, while EtNBS-OH was observed to trigger widespread structural degradation of nodules. This breakdown of the tumor architecture can improve the therapeutic outcome and is known to synergistically enhance the antitumor effects of front-line chemotherapeutic regimens. These results, which would not have been predicted or observed using traditional monolayer or in vivo animal screening techniques, demonstrate the powerful capabilities of 3D in vitro screening approaches for the selection and optimization of therapeutic agents for the targeted destruction of specific cellular subpopulations.
Insights
Photodynamic therapy (PDT) using novel photosensitizers shows promise for treating resistant ovarian cancer (OvCa). Modified compounds like EtNBS-OH enhance tumor breakdown, potentially improving chemotherapy effectiveness.
Area of Science:
- Oncology
- Photochemistry
- Biomedical Engineering
Background:
- Hypoxia and acidosis drive treatment-resistant cancers, particularly in ovarian cancer (OvCa) with metastatic lesions.
- Photodynamic therapy (PDT) is a promising approach for eliminating treatment-resistant carcinoma.
- Previous studies showed cationic photosensitizer EtNBS effective against hypoxic, acidic OvCa cells in vitro.
Purpose of the Study:
- To optimize EtNBS-based PDT for ovarian cancer by screening side-chain modified derivatives.
- To investigate the impact of chemical modifications on compound uptake, localization, and photocytotoxicity.
- To evaluate therapeutic outcomes using a 3D ovarian cancer model.
Main Methods:
- Developed a high-content, image-based screening approach using a 3D OvCa culture model.
- Synthesized and tested a library of EtNBS derivatives with modified side chains.
- Assessed compound uptake, localization, and photocytotoxicity at cellular and nodular levels.
Main Results:
- Side chain modifications significantly influenced EtNBS derivative uptake, localization, and photocytotoxicity.
- EtNBS and EtNBS-OH exhibited similar uptake and localization but distinct therapeutic effects.
- EtNBS selectively killed hypoxic core cells, while EtNBS-OH induced tumor structural degradation, enhancing chemotherapy synergy.
Conclusions:
- 3D in vitro screening is powerful for optimizing therapeutic agents against specific cancer subpopulations.
- EtNBS derivatives offer distinct mechanisms for targeting resistant ovarian cancer.
- Tumor structural degradation by EtNBS-OH may synergize with conventional chemotherapies for improved outcomes.
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