A novel 3D culture model recapitulates primary FL B-cell features and promotes their survival

Author:

Lamaison Claire1,Latour Simon23ORCID,Hélaine Nelson4,Le Morvan Valérie23ORCID,Saint-Vanne Julien1,Mahouche Isabelle23,Monvoisin Céline1ORCID,Dussert Christelle23,Andrique Laëtitia5ORCID,Deleurme Laurent1,Dessauge Elise1,Pangault Céline16,Baulande Sylvain7,Legoix Patricia7,Seffals Marine8ORCID,Broca-Brisson Léa23,Alessandri Kévin4,Carlotti Martina9ORCID,Soubeyran Pierre23,Merlio Jean-Philippe9ORCID,Mourcin Frédéric1ORCID,Nassoy Pierre4ORCID,Recher Gaëlle4ORCID,Tarte Karin16ORCID,Bresson-Bepoldin Laurence23ORCID

Affiliation:

1. Unité Mixte de Recherche (UMR) S1236, University of Rennes, Institut National de la Santé et de la recherche Médicale (INSERM), Etablissement Français du sang, Rennes, France;

2. University of Bordeaux, INSERM U1218 ACTION, Centre National de la Recherche Scientifique (CNRS), Bordeaux, France;

3. Institut Bergonié, Comprehensive Cancer Centre, Bordeaux, France;

4. University of Bordeaux, CNRS UMR 5298 LP2N, Laboratoire Photonique Numérique et Nanosciences, Institut d’Optique Graduate School, Talence, France;

5. University of Bordeaux, TBMCore VoxCell facility, Bordeaux, France;

6. Pôle de Biologie, Centre Hopsitalo-Universitaire Pontchaillou, Rennes, France;

7. Institut Curie Genomics of Excellence (ICGex) Platform, Institut Curie Research Center, Paris Sciences et Lettres Research University, Paris, France;

8. University of Rennes, INSERM, CNRS, Unité Mixte de Service Biosit, Core Facility H2P2, Rennes, France; and

9. University of Bordeaux, INSERM U1053 BARITON, Bordeaux, France

Abstract

Abstract Non-Hodgkin B-cell lymphomas (B-NHL) mainly develop within lymph nodes as aggregates of tumor cells densely packed with their surrounding microenvironment, creating a tumor niche specific to each lymphoma subtypes. In vitro preclinical models mimicking biomechanical forces, cellular microenvironment, and 3D organization of B-cell lymphomas remain scarce, while all these parameters are key determinants of lymphomagenesis and drug resistance. Using a microfluidic method based on cell encapsulation inside permeable, elastic, and hollow alginate microspheres, we developed a new tunable 3D model incorporating lymphoma B cells, extracellular matrix (ECM), and/or tonsil stromal cells (TSC). Under 3D confinement, lymphoma B cells were able to form cohesive spheroids resulting from overexpression of ECM components. Moreover, lymphoma B cells and TSC dynamically formed self-organized 3D spheroids favoring tumor cell growth. 3D culture induced resistance to the classical chemotherapeutic agent doxorubicin, but not to the BCL2 inhibitor ABT-199, identifying this approach as a relevant in vitro model to assess the activity of therapeutic agents in B-NHL. RNA-sequence analysis highlighted the synergy of 3D, ECM, and TSC in upregulating similar pathways in malignant B cells in vitro than those overexpressed in primary lymphoma B cells in situ. Finally, our 3D model including ECM and TSC allowed long-term in vitro survival of primary follicular lymphoma B cells. In conclusion, we propose a new high-throughput 3D model mimicking lymphoma tumor niche and making it possible to study the dynamic relationship between lymphoma B cells and their microenvironment and to screen new anti-cancer drugs.

Publisher

American Society of Hematology

Subject

Hematology

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