Completed Cells, Biochemistry & Physiology Infection & Immunity

A Combinatorial Approach to Enhance Production of Monoclonal Antibodies

In plain English

AI plain-English summary

Monoclonal antibodies—therapeutic proteins used to treat cancer, arthritis, and other diseases—cost so much to manufacture that health systems often struggle to afford them. This project alters the cells that produce these antibodies so that each cell churns out far more of the drug, cutting production costs. The problem is straightforward: making biologics like Herceptin requires growing engineered cells in expensive nutrient broths, and yields are often low. That expense gets passed to patients and providers. By tweaking the cellular machinery—for instance, boosting the pathways that assemble and secrete antibodies—the researchers aim to get more drug from each batch without building bigger factories. If successful, the work could lower the price of existing antibody therapies and make it financially viable to develop new ones for conditions where cost currently blocks access. The impact would ripple through supply chains: cheaper production means more doses per facility, shorter manufacturing timelines, and potentially wider global distribution. This is applied biotechnology, not fundamental science—the goal is a practical, near-term improvement in how biologics are made, not a conceptual breakthrough.

View original technical description
Biopharmaceuticals, also known as biologic medical products (biologics for short) are medicinal products manufactured in or extracted from biological systems and are distinct from synthesized pharmaceutical products. Examples include vaccines against diseases such as polio and therapeutics used to treat numerous diseases, such as cancer and arthritis. These therapeutics are often molecules called monoclonal antibodies that are made by the immune system, our inbuilt anti-disease defense mechanism. Perhaps one the best known examples of this is Trastuzumab (trade name; Herceptin), a monoclonal antibody that is used to treat certain breast cancers. Production of these biologics is expensive and this translates into a high financial cost to health care providers. This project aims to alter the cells that make monoclonal antibodies for therapeutic use, so that they make larger amounts with reduced production costs. This should increase the availability of these powerful therapeutics.

View the original record at the funder ↗

Researchers

Daniel Ungar (Co-Investigator)Nia Bryant (Co-Investigator)Robert White (Principal Investigator)

Related Research

Grants with similar aims, by meaning.

Modelling cellular processes underpinning recombinant monoclonal antibody production by mammalian cells
Characterization of post-transcriptional constraints that determine rP yield during bioprocessing in mammalian cells
Towards the manipulation of the UPR in mammalian cells to orchestrate cellular re-organization for enhanced monoclonal antibody production
Robotic formulation of concentrated biologics
In vivo selection of bioprocessable biopharmaceuticals

Original classification

Research Grant

Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.