RSC Advances2020,Vol.10Issue(62) :13.DOI:10.1039/d0ra04954a

Assessing the compatibility of primary human hepatocyte culture within porous silk sponges

Kukla, David A. Stoppel, Whitney L. Kaplan, David L. Khetani, Salman R.
RSC Advances2020,Vol.10Issue(62) :13.DOI:10.1039/d0ra04954a

Assessing the compatibility of primary human hepatocyte culture within porous silk sponges

Kukla, David A. 1Stoppel, Whitney L. 2Kaplan, David L. 2Khetani, Salman R.1
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作者信息

  • 1. Univ Illinois, Dept Bioengn, 851 S Morgan St,218 SEO, Chicago, IL 60607 USA
  • 2. Tufts Univ, Dept Biomed Engn, Medford, MA 02155 USA
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Abstract

Donor organ shortages have prompted the development of alternative implantable human liver tissues for patients suffering from end-stage liver failure. Purified silk proteins provide desirable features for generating implantable tissues, including sustainable sourcing from insects/arachnids, biocompatibility, tunable mechanical properties and degradation rates, and low immunogenicity upon implantation. While different cell types were previously cultured for weeks within silk-based scaffolds, it remains unclear whether such scaffolds can be used to culture primary human hepatocytes (PHH) isolated from livers. Therefore, here we assessed the compatibility of PHH culture within porous silk scaffolds that enable diffusion of oxygen/nutrients through the pores. We found that incorporation of type I collagen during the fabrication and/or autoclaving of porous silk scaffolds, as opposed to simple adsorption of collagen onto pre-fabricated silk scaffolds, was necessary to enable robust PHH attachment/function. Scaffolds with small pores (73 +/- 25 mu m) promoted larger PHH spheroids and consequently higher PHH functions than large pores (235 +/- 84 mu m) for at least 1 month in culture. Further incorporation of supportive fibroblasts into scaffolds enhanced PHH functions up to 5-fold relative to scaffolds with PHHs alone and 2D co-cultures on plastic. Lastly, encapsulating PHHs within protein hydrogels while housed in the silk scaffold led to higher functions than protein hydrogel-only or silk-only controls. In conclusion, porous silk scaffolds containing extracellular matrix proteins can be used for the culture of PHHs +/- supportive non-parenchymal cells, which can be further built on in the future to create optimized silk-based liver tissue surrogates for cell-based therapy.

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出版年

2020
RSC Advances

RSC Advances

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参考文献量57
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