Spinach and Chive for Kidney Tubule Engineering: the Limitations of Decellularized Plant Scaffolds and Vasculature

Publication date

2021

Authors

Jansen, KatjaISNI 0000000492896296
Evangelopoulou, Marianna
Casellas, Carla PouISNI 0000000493302517
Abrishamcar, SarinaISNI 0000000512474550
Jansen, JitskeISNI 0000000506013838
Vermonden, TinaISNI 0000000357250265
Masereeuw, RosalindeORCID 0000-0002-1560-1074ISNI 0000000369326917

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Article
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Abstract

Tissue decellularization yields complex scaffolds with retained composition and structure, and plants offer an inexhaustible natural source of numerous shapes. Plant tissue could be a solution for regenerative organ replacement strategies and advanced in vitro modeling, as biofunctionalization of decellularized tissue allows adhesion of various kinds of human cells that can grow into functional tissue. Here, we investigated the potential of spinach leaf vasculature and chive stems for kidney tubule engineering to apply in tubular transport studies. We successfully decellularized both plant tissues and confirmed general scaffold suitability for topical recellularization with renal cells. However, due to anatomical restrictions, we believe that spinach and chive vasculature themselves cannot be recellularized by current methods. Moreover, gradual tissue disintegration and deficient diffusion capacity make decellularized plant scaffolds unsuitable for kidney tubule engineering, which relies on transepithelial solute exchange between two compartments. We conclude that plant-derived structures and biomaterials need to be carefully considered and possibly integrated with other tissue engineering technologies for enhanced capabilities.

Keywords

Decellularization, Plant scaffolds, Proximal tubule, Regenerative medicine, Tissue engineering, Pharmaceutical Science

Citation

Jansen, K, Evangelopoulou, M, Pou Casellas, C, Abrishamcar, S, Jansen, J, Vermonden, T & Masereeuw, R 2021, 'Spinach and Chive for Kidney Tubule Engineering : the Limitations of Decellularized Plant Scaffolds and Vasculature', AAPS Journal, vol. 23, no. 1, 11, pp. 1-7. https://doi.org/10.1208/s12248-020-00550-0