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Modelling the tumor immune microenvironment for precision immunotherapy.
Mackenzie, Nathan J; Nicholls, Clarissa; Templeton, Abby R; Perera, Mahasha Pj; Jeffery, Penny L; Zimmermann, Kate; Kulasinghe, Arutha; Kenna, Tony J; Vela, Ian; Williams, Elizabeth D; Thomas, Patrick B.
Affiliation
  • Mackenzie NJ; School of Biomedical Sciences at Translational Research Institute (TRI) Queensland University of Technology (QUT) Brisbane QLD Australia.
  • Nicholls C; Queensland Bladder Cancer Initiative (QBCI) Brisbane QLD Australia.
  • Templeton AR; School of Biomedical Sciences at Translational Research Institute (TRI) Queensland University of Technology (QUT) Brisbane QLD Australia.
  • Perera MP; Queensland Bladder Cancer Initiative (QBCI) Brisbane QLD Australia.
  • Jeffery PL; School of Biomedical Sciences at Translational Research Institute (TRI) Queensland University of Technology (QUT) Brisbane QLD Australia.
  • Zimmermann K; Queensland Bladder Cancer Initiative (QBCI) Brisbane QLD Australia.
  • Kulasinghe A; Centre for Personalised Analysis of Cancers (CPAC) Brisbane QLD Australia.
  • Kenna TJ; School of Biomedical Sciences at Translational Research Institute (TRI) Queensland University of Technology (QUT) Brisbane QLD Australia.
  • Vela I; Queensland Bladder Cancer Initiative (QBCI) Brisbane QLD Australia.
  • Williams ED; Centre for Personalised Analysis of Cancers (CPAC) Brisbane QLD Australia.
  • Thomas PB; Australian Prostate Cancer Research Centre - Queensland (APCRC-Q) Brisbane QLD Australia.
Clin Transl Immunology ; 11(6): e1400, 2022.
Article in En | MEDLINE | ID: mdl-35782339
ABSTRACT
The complexity of the cellular and acellular players within the tumor microenvironment (TME) allows for significant variation in TME constitution and role in anticancer treatment response. Spatial alterations in populations of tumor cells and adjacent non-malignant cells, including endothelial cells, fibroblasts and tissue-infiltrating immune cells, often have a major role in determining disease progression and treatment response in cancer. Many current standard systemic antineoplastic treatments target the cancer cells and could be further refined to directly target commonly dysregulated cell populations of the TME. Recent developments in immuno-oncology and bioengineering have created an attractive potential to model these complexities at the level of the individual patient. These developments, along with the increasing momentum in precision medicine research and application, have catalysed exciting new discoveries in understanding drug-TME interactions, target identification, and improved efficacy of therapies. While rapid progress has been made, there are still many challenges to overcome in the development of accurate in vitro, in vivo and ex vivo models incorporating the cellular interactions that take place in the TME. In this review, we describe how advances in immuno-oncology and patient-derived models, such as patient-derived organoids and explant cultures, have enhanced the landscape of personalised immunotherapy prediction and treatment of solid organ malignancies. We describe and compare different immunological targets and perspectives on two-dimensional and three-dimensional modelling approaches that may be used to better rationalise immunotherapy use, ultimately providing a knowledge base for the integration of the autologous TME into these predictive models.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Type of study: Prognostic_studies Language: En Journal: Clin Transl Immunology Year: 2022 Document type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Type of study: Prognostic_studies Language: En Journal: Clin Transl Immunology Year: 2022 Document type: Article