High Throughput Fluorescence-Based In Vitro Experimental Platform for the Identification of Effective Therapies to Overcome Tumour Microenvironment-Mediated Drug Resistance in AML

Author:

Arroyo-Berdugo Yoana1ORCID,Sendino Maria2ORCID,Greaves David1,Nojszewska Natalia1,Idilli Orest1ORCID,So Chi Wai3ORCID,Di Silvio Lucy4,Quartey-Papafio Ruby3,Farzaneh Farzin3,Rodriguez Jose Antonio2ORCID,Calle Yolanda1ORCID

Affiliation:

1. School of Health and Life Sciences, University of Roehampton, London SW15 4JD, UK

2. Department of Genetics, Physical Anthropology and Animal Physiology, University of the Basque Country (UPV/EHU), 48940 Leioa, Spain

3. Department of Haemato-Oncology, King’s College London, London SE5 9NU, UK

4. Faculty of Dentistry, Oral & Craniofacial Sciences, King’s College London, London SE1 9RT, UK

Abstract

The interactions between Acute Myeloid Leukaemia (AML) leukemic stem cells and the bone marrow (BM) microenvironment play a critical role during AML progression and resistance to drug treatments. Therefore, the identification of novel therapies requires drug-screening methods using in vitro co-culture models that closely recreate the cytoprotective BM setting. We have developed a new fluorescence-based in vitro co-culture system scalable to high throughput for measuring the concomitant effect of drugs on AML cells and the cytoprotective BM microenvironment. eGFP-expressing AML cells are co-cultured in direct contact with mCherry-expressing BM stromal cells for the accurate assessment of proliferation, viability, and signaling in both cell types. This model identified several efficacious compounds that overcome BM stroma-mediated drug resistance against daunorubicin, including the chromosome region maintenance 1 (CRM1/XPO1) inhibitor KPT-330. In silico analysis of genes co-expressed with CRM1, combined with in vitro experiments using our new methodology, also indicates that the combination of KPT-330 with the AURKA pharmacological inhibitor alisertib circumvents the cytoprotection of AML cells mediated by the BM stroma. This new experimental model and analysis provide a more precise screening method for developing improved therapeutics targeting AML cells within the cytoprotective BM microenvironment.

Funder

Cancer Research UK

Basque Country Government

Publisher

MDPI AG

Subject

Cancer Research,Oncology

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