Literature DB >> 29548546

The effects of monocytes on tumor cell extravasation in a 3D vascularized microfluidic model.

A Boussommier-Calleja1, Y Atiyas2, K Haase1, M Headley3, C Lewis4, R D Kamm5.   

Abstract

Metastasis is the leading cause of cancer-related deaths. Recent developments in cancer immunotherapy have shown exciting therapeutic promise for metastatic patients. While most therapies target T cells, other immune cells, such as monocytes, hold great promise for therapeutic intervention. In our study, we provide primary evidence of direct engagement between human monocytes and tumor cells in a 3D vascularized microfluidic model. We first characterize the novel application of our model to investigate and visualize at high resolution the evolution of monocytes as they migrate from the intravascular to the extravascular micro-environment. We also demonstrate their differentiation into macrophages in our all-human model. Our model replicates physiological differences between different monocyte subsets. In particular, we report that inflammatory, but not patrolling, monocytes rely on actomyosin based motility. Finally, we exploit this platform to study the effect of monocytes, at different stages of their life cycle, on cancer cell extravasation. Our data demonstrates that monocytes can directly reduce cancer cell extravasation in a non-contact dependent manner. In contrast, we see little effect of monocytes on cancer cell extravasation once monocytes transmigrate through the vasculature and are macrophage-like. Taken together, our study brings novel insight into the role of monocytes in cancer cell extravasation, which is an important step in the metastatic cascade. These findings establish our microfluidic platform as a powerful tool to investigate the characteristics and function of monocytes and monocyte-derived macrophages in normal and diseased states. We propose that monocyte-cancer cell interactions could be targeted to potentiate the anti-metastatic effect we observe in vitro, possibly expanding the milieu of immunotherapies available to tame metastasis.
Copyright © 2018 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Cancer cell extravasation; Cancer immunotherapy; Cancer metastasis; Microfluidic models; Monocyte extravasation; Monocyte to macrophage differentiation

Mesh:

Year:  2018        PMID: 29548546      PMCID: PMC6123301          DOI: 10.1016/j.biomaterials.2018.03.005

Source DB:  PubMed          Journal:  Biomaterials        ISSN: 0142-9612            Impact factor:   12.479


  79 in total

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2.  Mechanisms of tumor cell extravasation in an in vitro microvascular network platform.

Authors:  Michelle B Chen; Jordan A Whisler; Jessie S Jeon; Roger D Kamm
Journal:  Integr Biol (Camb)       Date:  2013-10       Impact factor: 2.192

3.  Macrophage binding to receptor VCAM-1 transmits survival signals in breast cancer cells that invade the lungs.

Authors:  Qing Chen; Xiang H-F Zhang; Joan Massagué
Journal:  Cancer Cell       Date:  2011-10-18       Impact factor: 31.743

4.  Metformin inhibits monocyte-to-macrophage differentiation via AMPK-mediated inhibition of STAT3 activation: potential role in atherosclerosis.

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Journal:  Diabetes       Date:  2014-12-31       Impact factor: 9.461

5.  A critical step in metastasis: in vivo analysis of intravasation at the primary tumor.

Authors:  J B Wyckoff; J G Jones; J S Condeelis; J E Segall
Journal:  Cancer Res       Date:  2000-05-01       Impact factor: 12.701

6.  Inhibition of differentiation of monocyte to macrophages in atherosclerosis by oligomeric proanthocyanidins -In-vivo and in-vitro study.

Authors:  Thiruchenduran Mohana; Alukkathara Vijayan Navin; Sanker Jamuna; Mohammed Sadullah Sakeena Sadullah; Sivasithamparam Niranjali Devaraj
Journal:  Food Chem Toxicol       Date:  2015-05-14       Impact factor: 6.023

7.  Patrolling monocytes control tumor metastasis to the lung.

Authors:  Richard N Hanna; Caglar Cekic; Duygu Sag; Robert Tacke; Graham D Thomas; Heba Nowyhed; Erica Herrley; Nicole Rasquinha; Sara McArdle; Runpei Wu; Esther Peluso; Daniel Metzger; Hiroshi Ichinose; Iftach Shaked; Grzegorz Chodaczek; Subhra K Biswas; Catherine C Hedrick
Journal:  Science       Date:  2015-10-22       Impact factor: 47.728

8.  Human CD14dim monocytes patrol and sense nucleic acids and viruses via TLR7 and TLR8 receptors.

Authors:  Jérôme Cros; Nicolas Cagnard; Kevin Woollard; Natacha Patey; Shen-Ying Zhang; Brigitte Senechal; Anne Puel; Subhra K Biswas; Despina Moshous; Capucine Picard; Jean-Philippe Jais; David D'Cruz; Jean-Laurent Casanova; Céline Trouillet; Fréderic Geissmann
Journal:  Immunity       Date:  2010-09-09       Impact factor: 31.745

9.  CD44+/CD24- breast cancer cells exhibit enhanced invasive properties: an early step necessary for metastasis.

Authors:  Carol Sheridan; Hiromitsu Kishimoto; Robyn K Fuchs; Sanjana Mehrotra; Poornima Bhat-Nakshatri; Charles H Turner; Robert Goulet; Sunil Badve; Harikrishna Nakshatri
Journal:  Breast Cancer Res       Date:  2006       Impact factor: 6.466

10.  Monocyte and macrophage differentiation: circulation inflammatory monocyte as biomarker for inflammatory diseases.

Authors:  Jiyeon Yang; Lixiao Zhang; Caijia Yu; Xiao-Feng Yang; Hong Wang
Journal:  Biomark Res       Date:  2014-01-07
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  24 in total

1.  Cassie-Baxter Surfaces for Reversible, Barrier-Free Integration of Microfluidics and 3D Cell Culture.

Authors:  Soroosh Torabi; Linzhang Li; Jonathan Grabau; Madison Sands; Brad J Berron; Ren Xu; Christine A Trinkle
Journal:  Langmuir       Date:  2019-07-23       Impact factor: 3.882

Review 2.  Angiogenic biomaterials to promote therapeutic regeneration and investigate disease progression.

Authors:  Mai T Ngo; Brendan A C Harley
Journal:  Biomaterials       Date:  2020-06-14       Impact factor: 12.479

Review 3.  The Use of Microfluidic Platforms to Probe the Mechanism of Cancer Cell Extravasation.

Authors:  Mark F Coughlin; Roger D Kamm
Journal:  Adv Healthc Mater       Date:  2020-01-29       Impact factor: 9.933

4.  Extensive Remodeling of the Immune Microenvironment in B Cell Acute Lymphoblastic Leukemia.

Authors:  Matthew T Witkowski; Igor Dolgalev; Nikki A Evensen; Chao Ma; Tiffany Chambers; Kathryn G Roberts; Sheetal Sreeram; Yuling Dai; Anastasia N Tikhonova; Audrey Lasry; Chunxu Qu; Deqing Pei; Cheng Cheng; Gabriel A Robbins; Joanna Pierro; Shanmugapriya Selvaraj; Valeria Mezzano; Marla Daves; Philip J Lupo; Michael E Scheurer; Cynthia A Loomis; Charles G Mullighan; Weiqiang Chen; Karen R Rabin; Aristotelis Tsirigos; William L Carroll; Iannis Aifantis
Journal:  Cancer Cell       Date:  2020-05-28       Impact factor: 31.743

5.  Modeling Nanocarrier Transport across a 3D In Vitro Human Blood-Brain-Barrier Microvasculature.

Authors:  Sharon Wei Ling Lee; Marco Campisi; Tatsuya Osaki; Luca Possenti; Clara Mattu; Giulia Adriani; Roger Dale Kamm; Valeria Chiono
Journal:  Adv Healthc Mater       Date:  2020-03-03       Impact factor: 9.933

6.  Microphysiological Systems: Design, Fabrication, and Applications.

Authors:  Kai Wang; Kun Man; Jiafeng Liu; Yang Liu; Qi Chen; Yong Zhou; Yong Yang
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7.  Perivascular Secretome Influences Hematopoietic Stem Cell Maintenance in a Gelatin Hydrogel.

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8.  Engineering new microvascular networks on-chip: ingredients, assembly, and best practices.

Authors:  James J Tronolone; Abhishek Jain
Journal:  Adv Funct Mater       Date:  2021-01-20       Impact factor: 18.808

Review 9.  3D Printing for Cardiovascular Applications: From End-to-End Processes to Emerging Developments.

Authors:  Ramtin Gharleghi; Claire A Dessalles; Ronil Lal; Sinead McCraith; Kiran Sarathy; Nigel Jepson; James Otton; Abdul I Barakat; Susann Beier
Journal:  Ann Biomed Eng       Date:  2021-05-17       Impact factor: 3.934

Review 10.  Microfluidic technologies for immunotherapy studies on solid tumours.

Authors:  K Paterson; S Zanivan; R Glasspool; S B Coffelt; M Zagnoni
Journal:  Lab Chip       Date:  2021-06-15       Impact factor: 6.799

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