Active Materials & Manufacturing Cells, Biochemistry & Physiology

Optimisation of CHO for Biotherapeutic Manufacture

In plain English

AI plain-English summary

Chinese hamster ovary cells churn out the proteins that make up most biologic drugs, and this project aims to redesign those cells from the ground up. Biological drugs like monoclonal antibodies are too complex for chemical synthesis and must be grown inside living cells, but forcing cells to produce foreign proteins is a slow, expensive process of trial and error. This project uses synthetic biology and genome editing to turn that process into a predictable, efficient manufacturing system. If successful, it would slash the cost and time needed to produce transformative medicines for cancer, haemophilia, and rheumatoid arthritis, and make the UK’s biopharmaceutical supply chain more competitive. The work focuses on the CHO cell, the industry’s workhorse, so even modest improvements in production efficiency could ripple across the entire global biologics market.

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Biological drugs (e.g. monoclonal antibodies, MAbs) based on recombinant DNA technology have transformed the treatment of life-limiting diseases including cancer, haemophilia and rheumatoid arthritis. The recent explosive growth in the biologics sector looks set to continue, with growing applications in precision medicine and personalised healthcare, and there are many new complex biologics in the drug discovery pipeline (e.g. bispecific, trispecific, and conjugated MAbs). The intrinsic complexity of these life-saving drugs is too challenging for synthesis by simple chemistry and requires the utilisation of living cells. Forcing cells to produce proteins that they do not naturally express is complex, and often requires a long period of trial and error cell manipulation, making the bio-manufacturing process time-consuming and very expensive and directly impacting on the delivery of transformative medicines to patients. With the recent remarkable development of powerful tools for editing mammalian genomes, new methods and automation for the synthesis of large numbers of DNA constructs, and the context provided by systems biology, the time is now right for using Synthetic Biology to establish a new paradigm for cost-effective manufacture of biologic drugs. In turn this will have a major impact on medicine and the health related industries, and make the biopharmaceutical value chain more cost-efficient. The scale of the economic opportunity associated with this project is enormous. The UK has one of the most dynamic and innovative healthcare industries in the world and has developed over 20% of the world's top 100 selling drugs. The medical technology sector in the UK consists of around 2,800 companies, employing 52,000 people and generating around £10.6bn of turnover annually. An increasing portion of all medicines, currently estimated at 20%, are biopharmaceuticals. The global biologics market was valued at an estimated $251.5 billion in 2018 and is predicted to reach $319 billion by 2021. The CHO cell is the most widely used industrial expression system, which generates ~70% of approved and marketed therapeutic recombinant proteins, including multiple monoclonal antibodies (mAbs), so any enhancement of production efficiency and quality has a huge economic impact. The vision of this prosperity partnership is to utilise state of the art investigational tools and synthetic biology approaches to both elucidate the intricacies of the CHO cell manufacturing platform and engineer it to be more predictive, effective, cost-efficient, and competitive for the production of biotherapeutics in the UK.

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Researchers

Alan Dickson (Co-Investigator)Andrew Pitt (Co-Investigator)Daniel Ungar (Co-Investigator)Jean-Marc Schwartz (Co-Investigator)Karl Burgess (Co-Investigator)Magnus Rattray (Co-Investigator)Nia Bryant (Co-Investigator)Perdita Barran (Co-Investigator)Robert White (Co-Investigator)Susan Rosser (Principal Investigator)

Related Research

Grants with similar aims, by meaning.

Combinatorial genome editing to create enhanced biomanufacturing platforms
Computational and synthetic biology approaches for optimised mammalian bioproduction
An integrated cell and protein engineering approach to generate enhanced CHO cell platforms for manufacture of difficult to express biopharmaceuticals
Building and commercialisation of a new mammalian cell factory platform
Synthetic Biology Platform for CHO Cell Engineering

Original classification

Research Grant

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