An engineered, quantifiable in vitro model for analysing the effect of proteostasis-targeting drugs on tissue

Sandra Loaiza1, Silvia A Ferreira2, Tamara M Chinn3

  • 1Cancer Cell Protein Metabolism Group, Department of Medicine, Imperial College London, London W12 0NN, UK.

Biomaterials
|August 29, 2018
PubMed

Insights

Impairing protein degradation with VCP/p97 inhibitors, unlike proteasome inhibitors, alters bone-like tissue formation in human mesenchymal stem cells, making it softer and less protein-rich. This highlights the need to consider proteostasis in disease and tissue engineering.

Area of Science:

  • Biomaterials Science
  • Cell Biology
  • Biophysics

Background:

  • Cellular function relies on protein homeostasis (proteostasis) maintained by regulated protein degradation.
  • Chronic proteostasis dysregulation is linked to neurodegenerative diseases, aging, and cancer, with drugs targeting degradation pathways used in cancer therapy.
  • Existing research models inadequately capture the complex effects of drugs on tissue properties in proteostasis-associated diseases.

Purpose of the Study:

  • To investigate the functional effects of impaired proteostatic fine-tuning on in vitro bone-like tissue formation.
  • To compare the distinct impacts of inhibiting VCP/p97 and the proteasome on human mesenchymal stromal cells (hMSC) derived bone-like material.
  • To assess the utility of materials science characterization techniques in studying proteostasis-related pathologies.

Main Methods:

  • Development of a cell-derived, in vitro model of bone-like tissue using hMSCs.
  • Pharmacological perturbation of protein degradation pathways, specifically targeting VCP/p97 and the proteasome.
  • Application of materials science characterization techniques: Raman spectroscopy, atomic force microscopy (AFM)-based indentation, and electron microscopy.

Main Results:

  • Low-level inhibition of VCP/p97 and the proteasome yielded markedly different outcomes on hMSC-derived bone-like material.
  • Proteasome inhibition showed a mild enhancement of tissue formation.
  • VCP/p97 inhibition resulted in softer bone-like tissue with reduced protein content, increased mineral crystallinity, and altered micro/ultra-structural organization, effects not detected by conventional osteogenic assays.

Conclusions:

  • Mild proteostatic impairment, particularly via VCP/p97 inhibition, significantly alters the material properties and structure of hMSC-derived bone-like tissue.
  • These findings suggest a potential mechanism for pathologies in VCP/p97-related diseases and underscore the limitations of conventional assays.
  • The study demonstrates the value of quantitative materials science in biological research and offers a basis for preclinical drug testing and tissue engineering scaffold development.

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