4.8 Article

A microfluidic-based approach to investigate the inflammatory response of macrophages to pristine and drug-loaded nanostructured hydroxyapatite

期刊

MATERIALS TODAY BIO
卷 16, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.mtbio.2022.100351

关键词

Biomaterial; Calcium phosphate cement; Drug release; In vitro; Macrophage; On-chip

资金

  1. Swedish Research Council Vetenskapsradet [2017 - 05051]
  2. Goran Gustafsson's Foundation [2126]
  3. Magnus Bergvall's Foundation [2020 - 03659]
  4. Knut and Alice Wallenberg Foundation [2016 - 0112]
  5. Vinnova [2017-05051] Funding Source: Vinnova
  6. Swedish Research Council [2017-05051] Funding Source: Swedish Research Council

向作者/读者索取更多资源

This study explores the potential of microfluidics for evaluating calcium-deficient hydroxyapatite (CDHA), particularly in the context of inflammation. The results show that the microfluidic chip environment can provide a more physiologically relevant microenvironment, avoid drastic changes in ions, increase protein adsorption, and promote cell viability and proliferation. Additionally, microfluidics can be used to assess drug release and its impact on cell secretion and morphology.
The in vitro biological characterization of biomaterials is largely based on static cell cultures. However, for highly reactive biomaterials such as calcium-deficient hydroxyapatite (CDHA), this static environment has limitations. Drastic alterations in the ionic composition of the cell culture medium can negatively affect cell behavior, which can lead to misleading results or data that is difficult to interpret. This challenge could be addressed by a microfluidics-based approach (i.e. on-chip), which offers the opportunity to provide a continuous flow of cell culture medium and a potentially more physiologically relevant microenvironment. The aim of this work was to explore microfluidic technology for its potential to characterize CDHA, particularly in the context of inflamma-tion. Two different CDHA substrates (chemically identical, but varying in microstructure) were integrated on-chip and subsequently evaluated. We demonstrated that the on-chip environment can avoid drastic ionic alterations and increase protein sorption, which was reflected in cell studies with RAW 264.7 macrophages. The cells grown on-chip showed a high cell viability and enhanced proliferation compared to cells maintained under static con-ditions. Whereas no clear differences in the secretion of tumor necrosis factor alpha (TNF-??) were found, varia-tions in cell morphology suggested a more anti-inflammatory environment on-chip. In the second part of this study, the CDHA substrates were loaded with the drug Trolox. We showed that it is possible to characterize drug release on-chip and moreover demonstrated that Trolox affects the TNF-?? secretion and morphology of RAW 264.7 cells. Overall, these results highlight the potential of microfluidics to evaluate (bioactive) biomaterials, both in pristine form and when drug-loaded. This is of particular interest for the latter case, as it allows the biological characterization and assessment of drug release to take place under the same dynamic in vitro environment.

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