Bioengineered silk scaffolds in 3D tissue modeling with focus on mammary tissues
In vitro generation of three-dimensional (3D) biological tissues and organ-like structures is a promising strategy to study and closely model complex aspects of the molecular, cellular, and physiological interactions of tissue. In particular, in vitro 3D tissue modeling holds promises to further our...
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Published in | Materials Science & Engineering C Vol. 59; pp. 1168 - 1180 |
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Main Authors | , , , |
Format | Journal Article |
Language | English |
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Elsevier B.V
01.02.2016
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Abstract | In vitro generation of three-dimensional (3D) biological tissues and organ-like structures is a promising strategy to study and closely model complex aspects of the molecular, cellular, and physiological interactions of tissue. In particular, in vitro 3D tissue modeling holds promises to further our understanding of breast development. Indeed, biologically relevant 3D structures that combine mammary cells and engineered matrices have improved our knowledge of mammary tissue growth, organization, and differentiation. Several polymeric biomaterials have been used as scaffolds to engineer 3D mammary tissues. Among those, silk fibroin-based biomaterials have many biologically relevant properties and have been successfully used in multiple medical applications. Here, we review the recent advances in engineered scaffolds with an emphasis on breast-like tissue generation and the benefits of modified silk-based scaffolds.
•Promising biocompatible silk fibroin biomaterials in tissue engineering•Improved three-dimensional mammary models using silk fibroin-based scaffolds•Formation of organized acinar-like structures by mammary epithelial cells•Better understanding of breast cancer development and progression |
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AbstractList | In vitro generation of three-dimensional (3D) biological tissues and organ-like structures is a promising strategy to study and closely model complex aspects of the molecular, cellular, and physiological interactions of tissue. In particular, in vitro 3D tissue modeling holds promises to further our understanding of breast development. Indeed, biologically relevant 3D structures that combine mammary cells and engineered matrices have improved our knowledge of mammary tissue growth, organization, and differentiation. Several polymeric biomaterials have been used as scaffolds to engineer 3D mammary tissues. Among those, silk fibroin-based biomaterials have many biologically relevant properties and have been successfully used in multiple medical applications. Here, we review the recent advances in engineered scaffolds with an emphasis on breast-like tissue generation and the benefits of modified silk-based scaffolds. In vitro generation of three-dimensional (3D) biological tissues and organ-like structures is a promising strategy to study and closely model complex aspects of the molecular, cellular, and physiological interactions of tissue. In particular, in vitro 3D tissue modeling holds promises to further our understanding of breast development. Indeed, biologically relevant 3D structures that combine mammary cells and engineered matrices have improved our knowledge of mammary tissue growth, organization, and differentiation. Several polymeric biomaterials have been used as scaffolds to engineer 3D mammary tissues. Among those, silk fibroin-based biomaterials have many biologically relevant properties and have been successfully used in multiple medical applications. Here, we review the recent advances in engineered scaffolds with an emphasis on breast-like tissue generation and the benefits of modified silk-based scaffolds. •Promising biocompatible silk fibroin biomaterials in tissue engineering•Improved three-dimensional mammary models using silk fibroin-based scaffolds•Formation of organized acinar-like structures by mammary epithelial cells•Better understanding of breast cancer development and progression |
Author | Dréau, Didier Maghdouri-White, Yas Bowlin, Gary L. Lemmon, Christopher A. |
Author_xml | – sequence: 1 givenname: Yas surname: Maghdouri-White fullname: Maghdouri-White, Yas organization: Department of Biological Sciences, University of North Carolina at Charlotte, Charlotte, NC 28223, USA – sequence: 2 givenname: Gary L. surname: Bowlin fullname: Bowlin, Gary L. organization: Department of Biomedical Engineering, University of Memphis, Memphis, TN 38152, USA – sequence: 3 givenname: Christopher A. surname: Lemmon fullname: Lemmon, Christopher A. organization: Department of Biomedical Engineering, Virginia Commonwealth University, Richmond, VA 23284, USA – sequence: 4 givenname: Didier surname: Dréau fullname: Dréau, Didier email: ddreau@uncc.edu organization: Department of Biological Sciences, University of North Carolina at Charlotte, Charlotte, NC 28223, USA |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/26652473$$D View this record in MEDLINE/PubMed |
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Keywords | Breast tissue modeling Silk fibroin Tissue engineering Electrospinning Nanofibers Scaffolds Three-dimensional modeling |
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SubjectTerms | Animals Biocompatible Materials Biomaterials Biomedical materials Bombyx Breast tissue modeling Electrospinning Fibroins Imaging, Three-Dimensional In vitro testing Molecular structure Nanofibers Scaffolds Silk fibroin Surgical implants Three dimensional Three dimensional models Three-dimensional modeling Tissue Engineering Tissue Scaffolds |
Title | Bioengineered silk scaffolds in 3D tissue modeling with focus on mammary tissues |
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