Literature DB >> 30776506

Laser-based 3D bioprinting for spatial and size control of tumor spheroids and embryoid bodies.

David M Kingsley1, Cassandra L Roberge2, Alena Rudkouskaya3, Denzel E Faulkner4, Margarida Barroso5, Xavier Intes6, David T Corr7.   

Abstract

3D multicellular aggregates, and more advanced organotypic systems, have become central tools in recent years to study a wide variety of complex biological processes. Most notably, these model systems have become mainstream within oncology (multicellular tumor spheroids) and regenerative medicine (embryoid bodies) research. However, the biological behavior of these in vitro tissue surrogates is extremely sensitive to their aggregate size and geometry. Indeed, both of these geometrical parameters are key in producing pathophysiological gradients responsible for cellular and structural heterogeneity, replicating in vivo observations. Moreover, the fabrication techniques most widely used for producing these models lack the ability to accurately control cellular spatial location, an essential component for regulating homotypic and heterotypic cell signaling. Herein, we report on a 3D bioprinting technique, laser direct-write (LDW), that enables precise control of both spatial patterning and size of cell-encapsulating microbeads. The generated cell-laden beads are further processed into core-shelled structures, allowing for the growth and formation of self-contained, self-aggregating cells (e.g., breast cancer cells, embryonic stem cells). Within these structures we demonstrate our ability to produce multicellular tumor spheroids (MCTSs) and embryoid bodies (EBs) with well-controlled overall size and shape, that can be designed on demand. Furthermore, we investigated the impact of aggregate size on the uptake of a commonly employed ligand for receptor-mediated drug delivery, Transferrin, indicating that larger tumor spheroids exhibit greater spatial heterogeneity in ligand uptake. Taken together, these findings establish LDW as a versatile biomanufacturing platform for bioprinting and patterning core-shelled structures to generate size-controlled 3D multicellular aggregates. STATEMENT OF SIGNIFICANCE: Multicellular 3D aggregates are powerful in vitro models used to study a wide variety of complex biological processes, particularly within oncology and regenerative medicine. These tissue surrogates are fabricated using environments that encourage cellular self-assembly. However, specific applications require control of aggregate size and position to recapitulate key in vivo parameters (e.g., pathophysiological gradients and homotypic/heterotypic cell signaling). Herein, we demonstrate the ability to create and spatially pattern size-controlled embryoid bodies and tumor spheroids, using laser-based 3D bioprinting. Furthermore, we investigated the effect of tumor spheroid size on internalization of Transferrin, a common ligand for targeted therapy, finding greater spatial heterogeneity in our large aggregates. Overall, this technique offers incredible promise and flexibility for fabricating idealized 3D in vitro models.
Copyright © 2019 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  3D bioprinting; Embryoid body; Microcapsule; Multicellular tumor spheroid; Tissue engineering

Mesh:

Year:  2019        PMID: 30776506      PMCID: PMC7171976          DOI: 10.1016/j.actbio.2019.02.014

Source DB:  PubMed          Journal:  Acta Biomater        ISSN: 1742-7061            Impact factor:   8.947


  63 in total

1.  Development of an in vitro multicellular tumor spheroid model using microencapsulation and its application in anticancer drug screening and testing.

Authors:  Xulang Zhang; Wei Wang; Weiting Yu; Yubing Xie; Xiaohui Zhang; Ying Zhang; Xiaojun Ma
Journal:  Biotechnol Prog       Date:  2005 Jul-Aug

Review 2.  The transferrin receptor and the targeted delivery of therapeutic agents against cancer.

Authors:  Tracy R Daniels; Ezequiel Bernabeu; José A Rodríguez; Shabnum Patel; Maggie Kozman; Diego A Chiappetta; Eggehard Holler; Julia Y Ljubimova; Gustavo Helguera; Manuel L Penichet
Journal:  Biochim Biophys Acta       Date:  2011-08-05

3.  High-throughput 3D spheroid culture and drug testing using a 384 hanging drop array.

Authors:  Yi-Chung Tung; Amy Y Hsiao; Steven G Allen; Yu-suke Torisawa; Mitchell Ho; Shuichi Takayama
Journal:  Analyst       Date:  2010-10-21       Impact factor: 4.616

4.  Laser direct-write based fabrication of a spatially-defined, biomimetic construct as a potential model for breast cancer cell invasion into adipose tissue.

Authors:  Benjamin T Vinson; Theresa B Phamduy; Joshua Shipman; Brian Riggs; Amy L Strong; Samuel C Sklare; Walter L Murfee; Matthew E Burow; Bruce A Bunnell; Yong Huang; Douglas B Chrisey
Journal:  Biofabrication       Date:  2017-05-11       Impact factor: 9.954

5.  Mechanism of active targeting in solid tumors with transferrin-containing gold nanoparticles.

Authors:  Chung Hang J Choi; Christopher A Alabi; Paul Webster; Mark E Davis
Journal:  Proc Natl Acad Sci U S A       Date:  2009-12-29       Impact factor: 11.205

6.  Impact of tumor-specific targeting and dosing schedule on tumor growth inhibition after intravenous administration of siRNA-containing nanoparticles.

Authors:  Derek W Bartlett; Mark E Davis
Journal:  Biotechnol Bioeng       Date:  2008-03-01       Impact factor: 4.530

Review 7.  Printing of Three-Dimensional Tissue Analogs for Regenerative Medicine.

Authors:  Vivian K Lee; Guohao Dai
Journal:  Ann Biomed Eng       Date:  2016-04-11       Impact factor: 3.934

8.  A Novel Core-Shell Microcapsule for Encapsulation and 3D Culture of Embryonic Stem Cells.

Authors:  Wujie Zhang; Shuting Zhao; Wei Rao; Jedidiah Snyder; Jung K Choi; Jifu Wang; Iftheker A Khan; Navid B Saleh; Peter J Mohler; Jianhua Yu; Thomas J Hund; Chuanbing Tang; Xiaoming He
Journal:  J Mater Chem B       Date:  2012-11-23       Impact factor: 6.331

9.  Quantitative Live-Cell Confocal Imaging of 3D Spheroids in a High-Throughput Format.

Authors:  Elizabeth Leary; Claire Rhee; Benjamin T Wilks; Jeffrey R Morgan
Journal:  SLAS Technol       Date:  2018-02-07       Impact factor: 3.047

10.  Live cell division dynamics monitoring in 3D large spheroid tumor models using light sheet microscopy.

Authors:  Corinne Lorenzo; Céline Frongia; Raphaël Jorand; Jérôme Fehrenbach; Pierre Weiss; Amina Maandhui; Guillaume Gay; Bernard Ducommun; Valérie Lobjois
Journal:  Cell Div       Date:  2011-12-12       Impact factor: 5.130

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  18 in total

1.  Obesity, sleep apnea, and cancer.

Authors:  Isaac Almendros; Miguel A Martinez-Garcia; Ramon Farré; David Gozal
Journal:  Int J Obes (Lond)       Date:  2020-02-18       Impact factor: 5.095

2.  On-Demand Radial Electrodeposition of Alginate Tubular Structures.

Authors:  David M Kingsley; Jared A Capuano; David T Corr
Journal:  ACS Biomater Sci Eng       Date:  2019-06-12

Review 3.  Emerging Technologies in Multi-Material Bioprinting.

Authors:  Hossein Ravanbakhsh; Vahid Karamzadeh; Guangyu Bao; Luc Mongeau; David Juncker; Yu Shrike Zhang
Journal:  Adv Mater       Date:  2021-10-01       Impact factor: 32.086

4.  Non-Destructive Tumor Aggregate Morphology and Viability Quantification at Cellular Resolution, During Development and in Response to Drug.

Authors:  Cassandra L Roberge; David M Kingsley; Denzel E Faulkner; Charles J Sloat; Ling Wang; Margarida Barroso; Xavier Intes; David T Corr
Journal:  Acta Biomater       Date:  2020-09-29       Impact factor: 8.947

5.  Luminescence lifetime imaging of three-dimensional biological objects.

Authors:  Ruslan I Dmitriev; Xavier Intes; Margarida M Barroso
Journal:  J Cell Sci       Date:  2021-05-07       Impact factor: 5.285

Review 6.  Microengineered 3D Tumor Models for Anti-Cancer Drug Discovery in Female-Related Cancers.

Authors:  Farbod Amirghasemi; Emmanuela Adjei-Sowah; Barbara A Pockaj; Mehdi Nikkhah
Journal:  Ann Biomed Eng       Date:  2021-01-05       Impact factor: 3.934

Review 7.  Cell Culture Based in vitro Test Systems for Anticancer Drug Screening.

Authors:  Kristina V Kitaeva; Catrin S Rutland; Albert A Rizvanov; Valeriya V Solovyeva
Journal:  Front Bioeng Biotechnol       Date:  2020-04-09

8.  Discovering the Latest Scientific Pathways on Tissue Spheroids: Opportunities to Innovate.

Authors:  Marisela Rodriguez-Salvador; Baruc Emet Perez-Benitez; Karen Marcela Padilla-Aguirre
Journal:  Int J Bioprint       Date:  2021-01-29

Review 9.  Challenges of applying multicellular tumor spheroids in preclinical phase.

Authors:  Se Jik Han; Sangwoo Kwon; Kyung Sook Kim
Journal:  Cancer Cell Int       Date:  2021-03-04       Impact factor: 5.722

10.  Tumor Cells Develop Defined Cellular Phenotypes After 3D-Bioprinting in Different Bioinks.

Authors:  Sonja K Schmidt; Rafael Schmid; Andreas Arkudas; Annika Kengelbach-Weigand; Anja K Bosserhoff
Journal:  Cells       Date:  2019-10-22       Impact factor: 6.600

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