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Updated: Apr 11, 2026

A Macrophage-Tumor Spheroid Co-Invasion Assay
Published on: January 24, 2025
Modulation of extracellular matrix in cancer is associated with enhanced tumor cell targeting by bacteriophage
Teerapong Yata1,2, Eugene L Q Lee3, Keittisak Suwan4
1Phage Therapy Group, Division of Brain Sciences, Department of Medicine, Imperial College London, Hammersmith Hospital Campus, Burlington Danes Building, London, W12 0NN, UK. teerapong@nanotec.or.th.
Background:
Gene therapy has been an attractive paradigm for cancer treatment. However, cancer gene therapy has been challenged by the inherent limitation of vectors that are able to deliver therapeutic genes to tumors specifically and efficiently following systemic administration. Bacteriophage (phage) are viruses that have shown promise for targeted systemic gene delivery. Yet, they are considered poor vectors for gene transfer. Recently, we generated a tumor-targeted phage named adeno-associated virus/phage (AAVP), which is a filamentous phage particle whose genome contains the adeno-associated virus genome. Its effectiveness in delivering therapeutic genes to tumors specifically both in vitro and in vivo has been shown in numerous studies. Despite being a clinically useful vector, a multitude of barriers impede gene transduction to tumor cells. We hypothesized that one such factor is the tumor extracellular matrix (ECM).
Methods:
We used a number of tumor cell lines from different species and histological types in 2D monolayers or 3D multicellular tumor spheroid (MCTS) models. To assess whether the ECM is a barrier to tumor cell targeting by AAVP, we depleted the ECM using collagenase, hyaluronidase, or combination of both. We employed multiple techniques to investigate and quantify the effect of ECM depletion on ECM composition (including collagen type I, hyaluronic acid, fibronectin and laminin), and how AAVP adsorption, internalisation, gene expression and therapeutic efficacy are subsequently affected. Data were analyzed using a student's t test when comparing two groups or one-way ANOVA and post hoc Tukey tests when using more than two groups.
Results:
We demonstrate that collagenase and hyaluronidase-mediated degradation of tumor ECM affects the composition of collagen, hyaluronic acid and fibronectin. Consequently, AAVP diffusion, internalisation, gene expression and tumor cell killing were enhanced after enzymatic treatment. Our data suggest that enhancement of gene transfer by the AAVP is solely attributed to ECM depletion. We provide substantial evidence that ECM modulation is relevant in clinically applicable settings by using 3D MCTS, which simulates in vivo environments more accurately.
Conclusion:
Our findings suggest that ECM depletion is an effective strategy to enhance the efficiency of viral vector-guided gene therapy.
Insights
Depleting the tumor extracellular matrix (ECM) enhances the efficiency of adeno-associated virus/phage (AAVP) gene delivery. This strategy improves AAVP diffusion, gene expression, and tumor cell killing, offering a promising approach for cancer gene therapy.
Area of Science:
- Biomedical Engineering
- Molecular Biology
- Cancer Research
Background:
- Gene therapy offers a promising approach for cancer treatment but faces challenges with efficient and specific tumor targeting.
- Adeno-associated virus/phage (AAVP) has emerged as a tumor-targeted vector for systemic gene delivery, demonstrating effectiveness in numerous studies.
- The tumor extracellular matrix (ECM) presents a potential barrier to effective gene transduction by viral vectors like AAVP.
Purpose of the Study:
- To investigate the role of the tumor extracellular matrix (ECM) as a barrier to adeno-associated virus/phage (AAVP) gene delivery.
- To assess the impact of ECM depletion on AAVP's ability to target and transduce tumor cells.
- To evaluate the therapeutic efficacy of AAVP-mediated gene therapy following ECM modulation.
Main Methods:
- Utilized various tumor cell lines in 2D monolayers and 3D multicellular tumor spheroid (MCTS) models.
- Depleted the ECM using enzymatic treatments (collagenase, hyaluronidase) and analyzed ECM composition.
- Quantified AAVP adsorption, internalization, gene expression, and therapeutic efficacy post-ECM depletion.
Main Results:
- Enzymatic degradation of tumor ECM altered the composition of collagen, hyaluronic acid, and fibronectin.
- ECM depletion significantly enhanced AAVP diffusion, cellular internalization, gene expression, and tumor cell killing.
- Results obtained from 3D MCTS models indicate the clinical relevance of ECM modulation for enhancing AAVP gene transfer.
Conclusions:
- ECM depletion is an effective strategy to overcome barriers in viral vector-mediated gene therapy.
- Modulating the tumor microenvironment by depleting the ECM can significantly improve gene transfer efficiency.
- This approach holds potential for enhancing the efficacy of cancer gene therapy using AAVP vectors.
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