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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.
Abstract:
Cellular function depends on the maintenance of protein homeostasis (proteostasis) by regulated protein degradation. Chronic dysregulation of proteostasis is associated with neurodegenerative and age-related diseases, and drugs targeting components of the protein degradation apparatus are increasingly used in cancer therapies. However, as chronic imbalances rather than loss of function mediate their pathogenesis, research models that allow for the study of the complex effects of drugs on tissue properties in proteostasis-associated diseases are almost completely lacking. Here, to determine the functional effects of impaired proteostatic fine-tuning, we applied a combination of materials science characterisation techniques to a cell-derived, in vitro model of bone-like tissue formation in which we pharmacologically perturbed protein degradation. We show that low-level inhibition of VCP/p97 and the proteasome, two major components of the degradation machinery, have remarkably different effects on the bone-like material that human bone-marrow derived mesenchymal stromal cells (hMSC) form in vitro. Specifically, whilst proteasome inhibition mildly enhances tissue formation, Raman spectroscopic, atomic force microscopy-based indentation, and electron microscopy imaging reveal that VCP/p97 inhibition induces the formation of bone-like tissue that is softer, contains less protein, appears to have more crystalline mineral, and may involve aberrant micro- and ultra-structural tissue organisation. These observations contrast with findings from conventional osteogenic assays that failed to identify any effect on mineralisation. Taken together, these data suggest that mild proteostatic impairment in hMSC alters the bone-like material they form in ways that could explain some pathologies associated with VCP/p97-related diseases. They also demonstrate the utility of quantitative materials science approaches for tackling long-standing questions in biology and medicine, and could form the basis for preclinical drug testing platforms to develop therapies for diseases stemming from perturbed proteostasis or for cancer therapies targeting protein degradation. Our findings may also have important implications for the field of tissue engineering, as the manufacture of cell-derived biomaterial scaffolds may need to consider proteostasis to effectively replicate native tissues.
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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