Engineering innervated secretory epithelial organoids by magnetic three-dimensional bioprinting for stimulating epithelial growth in salivary glands

Biomaterials. 2018 Oct:180:52-66. doi: 10.1016/j.biomaterials.2018.06.011. Epub 2018 Jun 12.

Abstract

Current saliva-based stimulation therapies for radiotherapy-induced xerostomia are not fully effective due to the presence of damaged secretory epithelia and nerves in the salivary gland (SG). Hence, three-dimensional bio-engineered organoids are essential to regenerate the damaged SG. Herein, a recently validated three-dimensional (3D) biofabrication system, the magnetic 3D bioprinting (M3DB), is tested to generate innervated secretory epithelial organoids from a neural crest-derived mesenchymal stem cell, the human dental pulp stem cell (hDPSC). Cells are tagged with magnetic nanoparticles (MNP) and spatially arranged with magnet dots to generate 3D spheroids. Next, a SG epithelial differentiation stage was completed with fibroblast growth factor 10 (4-400 ng/ml) to recapitulate SG epithelial morphogenesis and neurogenesis. The SG organoids were then transplanted into ex vivo model to evaluate their epithelial growth and innervation. M3DB-formed spheroids exhibited both high cell viability rate (>90%) and stable ATP intracellular activity compared to MNP-free spheroids. After differentiation, spheroids expressed SG epithelial compartments including secretory epithelial, ductal, myoepithelial, and neuronal. Fabricated organoids also produced salivary α-amylase upon FGF10 stimulation, and intracellular calcium mobilization and trans-epithelial resistance was elicited upon neurostimulation with different neurotransmitters. After transplantation, the SG-like organoids significantly stimulated epithelial and neuronal growth in damaged SG. It is the first time bio-functional innervated SG-like organoids are bioprinted. Thus, this is an important step towards SG regeneration and the treatment of radiotherapy-induced xerostomia.

Keywords: Bioprinting; Magnetic nanoparticles; Organoids; Radiotherapy; Salivary gland; Xerostomia.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Adenosine Triphosphate / metabolism
  • Animals
  • Bioprinting / methods*
  • Cell Survival / physiology
  • Dental Pulp / cytology
  • Fibroblast Growth Factor 10 / metabolism
  • Humans
  • Neurogenesis / physiology
  • Organoids / cytology*
  • Organoids / metabolism
  • Salivary Glands / cytology*
  • Salivary Glands / metabolism
  • Stem Cells / cytology
  • Tissue Engineering / methods
  • Xerostomia / etiology
  • Xerostomia / metabolism
  • alpha-Amylases / metabolism

Substances

  • FGF10 protein, human
  • Fibroblast Growth Factor 10
  • Adenosine Triphosphate
  • alpha-Amylases