Cellular and Microbial In Vitro Modelling of Gastrointestinal Cancer

Author:

Žukauskaitė Kristina12,Li Melissa13,Horvath Angela14ORCID,Jarmalaitė Sonata25ORCID,Stadlbauer Vanessa14ORCID

Affiliation:

1. Department of Gastroenterology and Hepatology, Medical University of Graz, 8036 Graz, Austria

2. Institute of Biosciences, Life Sciences Center, Vilnius University, 10257 Vilnius, Lithuania

3. Biotech Campus Tulln, Fachhochschule Wiener Neustadt, 3430 Tulln, Austria

4. Center for Biomarker Research in Medicine (CBmed GmbH), 8010 Graz, Austria

5. National Cancer Institute, 08406 Vilnius, Lithuania

Abstract

Human diseases are multifaceted, starting with alterations at the cellular level, damaging organs and their functions, and disturbing interactions and immune responses. In vitro systems offer clarity and standardisation, which are crucial for effectively modelling disease. These models aim not to replicate every disease aspect but to dissect specific ones with precision. Controlled environments allow researchers to isolate key variables, eliminate confounding factors and elucidate disease mechanisms more clearly. Technological progress has rapidly advanced model systems. Initially, 2D cell culture models explored fundamental cell interactions. The transition to 3D cell cultures and organoids enabled more life-like tissue architecture and enhanced intercellular interactions. Advanced bioreactor-based devices now recreate the physicochemical environments of specific organs, simulating features like perfusion and the gastrointestinal tract’s mucus layer, enhancing physiological relevance. These systems have been simplified and adapted for high-throughput research, marking significant progress. This review focuses on in vitro systems for modelling gastrointestinal tract cancer and the side effects of cancer treatment. While cell cultures and in vivo models are invaluable, our main emphasis is on bioreactor-based in vitro modelling systems that include the gut microbiome.

Funder

PhD study programme (Biology N 010) from Vilnius University

MicroONE

Publisher

MDPI AG

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