Published March 2021 | Version v1
Journal article

Advances in biofabrication techniques for collagen-based 3D in vitro culture models for breast cancer research

  • 1. Centre for Medical Engineering Research, Dublin City University, Dublin 9 (Ireland)
  • 2. School of Mechanical and Manufacturing Engineering, Dublin City University, Dublin 9 (Ireland)
  • 3. School of Chemical Sciences, Dublin City University, Dublin 9 (Ireland)
  • 4. School of Pharmacy, Queen's University, Belfast BT9 7BL (United Kingdom)
  • 5. National Institute of Cellular Biotechnology, Dublin City University, Dublin 9 (Ireland)
  • 6. School of Nursing and Human Science, Dublin City University, Dublin 9 (Ireland)
  • 7. Trinity Centre for Biomedical Engineering, Trinity Biomedical Sciences Institute, Trinity College Dublin, Dublin 2 (Ireland)
  • 8. Advanced Processing Technology Research Centre, Dublin City University, Dublin 9 (Ireland)
  • 9. Advanced Manufacturing Research Centre (I-Form), School of Mechanical and Manufacturing Engineering, Dublin City University, Dublin 9 (Ireland)
  • 10. Tissue Engineering Research Group, Department of Anatomy and Regenerative Medicine, Royal College of Surgeons in Ireland, Dublin 2 (Ireland)
  • 11. Department of Mechanical and Manufacturing Engineering, School of Engineering, Trinity College Dublin, Dublin 2 (Ireland)
  • 12. Advanced Materials and Bioengineering Research Centre (AMBER), Trinity College Dublin, Dublin 2 (Ireland)

Description

Highlights: • 2D culture limitations have led to an increasing use of 3D models for cell culture • Collagen is the most abundant component of the breast extracellular matrix • Collagen-based 3D scaffolds used for exploration of breast cancer phenomena • Biofabrication methods; hydrogels, freeze-drying, electrospinning and bioprinting • Biofabrication advances enable development of biomimetic breast cancer models Collagen is the most abundant component of the extracellular matrix (ECM), therefore it represents an ideal biomaterial for the culture of a variety of cell types. Recently, collagen-based scaffolds have shown promise as 3D culture platforms for breast cancer-based research. Two-dimensional (2D) in vitro culture models, while useful for gaining preliminary insights, are ultimately flawed as they do not adequately replicate the tumour microenvironment. As a result, they do not facilitate proper 3D cell-cell/cell-matrix interactions and often an exaggerated response to therapeutic agents occurs. The ECM plays a crucial role in the development and spread of cancer. Alterations within the ECM have a significant impact on the pathogenesis of cancer, the initiation of metastasis and ultimate progression of the disease. 3D in vitro culture models that aim to replicate the tumour microenvironment have the potential to offer a new frontier for cancer research with cell growth, morphology and genetic properties that more closely match in vivo cancers. While initial 3D in vitro culture models used in breast cancer research consisted of simple hydrogel platforms, recent advances in biofabrication techniques, including freeze-drying, electrospinning and 3D bioprinting, have enabled the fabrication of biomimetic collagen-based platforms that more closely replicate the breast cancer ECM. This review highlights the current application of collagen-based scaffolds as 3D in vitro culture models for breast cancer research, specifically for adherence-based scaffolds (i.e. matrix-assisted). Finally, the future perspectives of 3D in vitro breast cancer models and their potential to lead to an improved understanding of breast cancer diagnosis and treatment are discussed.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.msec.2021.111944

Additional details

Identifiers

DOI
10.1016/j.msec.2021.111944;
PII
S0928493121000825;

Publishing Information

Journal Title
Materials Science and Engineering. C, Biomimetic Materials, Sensors and Systems
Journal Volume
122
Journal Page Range
vp.
ISSN
0928-4931

INIS

Country of Publication
Netherlands
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
54045629
Subject category
S60: APPLIED LIFE SCIENCES; S36: MATERIALS SCIENCE;
Descriptors DEI
BIOLOGICAL MATERIALS; BIOMIMETICS; CELL CULTURES; FABRICATION; HYDROGELS; IN VIVO; LYOPHILIZATION; MAMMARY GLANDS; MATRICES; MORPHOLOGY; NEOPLASMS; TWO-DIMENSIONAL SYSTEMS
Descriptors DEC
BIOTECHNOLOGY; BODY; COLLOIDS; CRYSTAL LATTICES; CRYSTAL STRUCTURE; DISEASES; DISPERSIONS; GELS; GLANDS; MATERIALS; ORGANS

Optional Information

Copyright
Copyright (c) 2021 The Author(s). Published by Elsevier B.V.