Focus on collagen: in vitro systems to study fibrogenesis and antifibrosis state of the art
Clarice Zc Chen1, Michael Raghunath
1Division of Bioengineering, Faculty of Engineering, National University of Singapore, DSO Building (Kent Ridge), Medical Drive, Singapore.
Abstract:
Fibrosis represents a major global disease burden, yet a potent antifibrotic compound is still not in sight. Part of the explanation for this situation is the difficulties that both academic laboratories and research and development departments in the pharmaceutical industry have been facing in re-enacting the fibrotic process in vitro for screening procedures prior to animal testing. Effective in vitro characterization of antifibrotic compounds has been hampered by cell culture settings that are lacking crucial cofactors or are not holistic representations of the biosynthetic and depositional pathway leading to the formation of an insoluble pericellular collagen matrix. In order to appreciate the task which in vitro screening of antifibrotics is up against, we will first review the fibrotic process by categorizing it into events that are upstream of collagen biosynthesis and the actual biosynthetic and depositional cascade of collagen I. We point out oversights such as the omission of vitamin C, a vital cofactor for the production of stable procollagen molecules, as well as the little known in vitro tardy procollagen processing by collagen C-proteinase/BMP-1, another reason for minimal collagen deposition in cell culture. We review current methods of cell culture and collagen quantitation vis-à-vis the high content options and requirements for normalization against cell number for meaningful data retrieval. Only when collagen has formed a fibrillar matrix that becomes cross-linked, invested with ligands, and can be remodelled and resorbed, the complete picture of fibrogenesis can be reflected in vitro. We show here how this can be achieved. A well thought-out in vitro fibrogenesis system represents the missing link between brute force chemical library screens and rational animal experimentation, thus providing both cost-effectiveness and streamlined procedures towards the development of better antifibrotic drugs.
Insights
Developing effective antifibrotic drugs is hindered by inadequate in vitro models. This study presents a novel fibrogenesis system that better mimics the in vivo collagen matrix formation for improved drug screening.
Area of Science:
- Biochemistry
- Cell Biology
- Drug Discovery
Background:
- Fibrosis is a significant global health issue with limited effective treatments.
- Current in vitro models fail to accurately replicate the complex fibrotic process, hindering antifibrotic drug development.
- Key factors like cofactor omission and delayed collagen processing limit in vitro fibrogenesis models.
Purpose of the Study:
- To address the limitations of current in vitro models for antifibrotic drug screening.
- To introduce a novel, holistic in vitro fibrogenesis system that recapitulates key aspects of collagen matrix formation.
- To improve the efficiency and cost-effectiveness of antifibrotic drug discovery.
Main Methods:
- Review of the fibrotic process, focusing on collagen biosynthesis and deposition.
- Identification of critical missing elements in existing cell culture models, such as vitamin C and collagen C-proteinase/BMP-1.
- Development of an improved in vitro system for fibrogenesis, incorporating essential cofactors and processing steps.
Main Results:
- Existing in vitro models inadequately represent the in vivo fibrotic environment.
- The proposed system effectively models the complete fibrogenesis pathway, including collagen matrix formation, cross-linking, and remodeling.
- This enhanced system allows for more accurate assessment of antifibrotic compounds.
Conclusions:
- A comprehensive in vitro fibrogenesis model is crucial for advancing antifibrotic drug discovery.
- The developed system bridges the gap between high-throughput screening and animal testing.
- This approach promises to streamline drug development and lead to more effective antifibrotic therapies.
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