| Literature DB >> 28921540 |
Qinggong Tang1, Charlotte Piard1, Jonathan Lin1, Kai Nan1, Ting Guo1, John Caccamese2, John Fisher1, Yu Chen1.
Abstract
Regenerative medicine has emerged as an important discipline that aims to repair injury or replace damaged tissues or organs by introducing living cells or functioning tissues. Successful regenerative medicine strategies will likely depend upon a simultaneous optimization strategy for the design of biomaterials, cell-seeding methods, cell-biomaterial interactions, and molecular signaling within the engineered tissues. It remains a challenge to image three-dimensional (3-D) structures and functions of the cell-seeded scaffold in mesoscopic scale (>2 ∼ 3 mm). In this study, we utilized angled fluorescence laminar optical tomography (aFLOT), which allows depth-resolved molecular characterization of engineered tissues in 3-D to investigate cell viability, migration, and bone mineralization within bone tissue engineering scaffolds in situ.Entities:
Keywords: 3-D cell printing; bone mineralization; bone tissue scaffold; cell migration; mesoscopic fluorescence tomography
Mesh:
Year: 2018 PMID: 28921540 PMCID: PMC5699959 DOI: 10.1002/bit.26452
Source DB: PubMed Journal: Biotechnol Bioeng ISSN: 0006-3592 Impact factor: 4.530