On-chip recapitulation of the tumor microenvironment: A decade of progress
S M Giannitelli1, V Peluzzi2, S Raniolo1
1Department of Science and Technology for Sustainable Development and One Health, Università Campus Bio-Medico di Roma, via Álvaro del Portillo, 21, 00128, Rome, Italy.
Abstract:
One of the hurdles to the development of new anticancer therapies is the lack of in vitro models which faithfully reproduce the in vivo tumor microenvironment (TME). Understanding the dynamic relationships between the components of the TME in a controllable, scalable, and reliable setting would indeed support the discovery of biological targets impacting cancer diagnosis and therapy. Cancer research is increasingly shifting from traditional two-dimensional (2D) cell culture toward three-dimensional (3D) culture models, which have been demonstrated to increase the significance and predictive value of in vitro data. In this scenario, microphysiological systems (also known as organs-on-chip) have emerged as a relevant technological platform enabling more predictive investigation of cell-cell and cell-ECM interplay in cancer, attracting a significant research effort in the last years. This review illustrates one decade of progress in the field of tumor-microenvironment-on-chip (TMOC) approaches, exploiting either cell-laden microfluidic chambers or microfluidic confined tumor spheroids to model the TME. TMOCs have been designed to recapitulate several aspects of the TME, including tumor cells, the tumor-associated stroma, the immune system, and the vascular component. Significantly, the last aspect has emerged for its pivotal role in orchestrating cellular interactions and modulating drug pharmacokinetics on-chip. A further advancement has been represented by integration of TMOCs into multi-organ microphysiological systems, with the final aim to follow the metastatic cascade to target organs and to study the effects of chemotherapies at a systemic level. We highlight that the increased degree of complexity achieved by the most advanced TMOC models has enabled scientists to shed new light on the role of microenvironmental factors in tumor progression, metastatic cascade, and response to drugs.
Insights
Developing advanced tumor-microenvironment-on-chip (TMOC) models overcomes limitations in cancer therapy research. These microphysiological systems offer a more accurate in vitro platform for studying tumor biology and drug responses.
Area of Science:
- Oncology
- Biotechnology
- Biomedical Engineering
Background:
- Current in vitro cancer models fail to replicate the complex in vivo tumor microenvironment (TME).
- Three-dimensional (3D) culture models offer improved predictive value over traditional 2D cultures.
- Microphysiological systems (organs-on-chip) are emerging as powerful tools for studying cancer biology.
Purpose of the Study:
- To review a decade of progress in tumor-microenvironment-on-chip (TMOC) approaches for modeling the TME.
- To highlight the role of TMOCs in understanding cancer progression, metastasis, and drug response.
- To showcase advancements in TMOC design and integration.
Main Methods:
- Exploitation of cell-laden microfluidic chambers and microfluidic confined tumor spheroids.
- Recapitulation of key TME components: tumor cells, stroma, immune cells, and vasculature.
- Integration of TMOCs into multi-organ systems to study systemic effects and metastasis.
Main Results:
- TMOCs enable controllable, scalable, and reliable investigation of cell-cell and cell-extracellular matrix interactions.
- Vascularization in TMOCs is crucial for orchestrating cellular interactions and modulating drug pharmacokinetics.
- Advanced TMOCs provide new insights into the impact of microenvironmental factors on tumor progression and metastasis.
Conclusions:
- TMOCs represent a significant advancement in in vitro cancer modeling, enhancing the predictive power of preclinical studies.
- These systems facilitate the discovery of novel therapeutic targets and the development of more effective anticancer therapies.
- The integration of TMOCs into multi-organ systems opens avenues for studying complex phenomena like metastasis and systemic drug effects.
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