A single human protein called apoferritin can carry hundreds of drug molecules inside a hollow nanocage and deliver them directly into cancer cells. Current antibody-based drug delivery systems, such as those used in breast cancer treatments, can only attach a few drug molecules per antibody and are expensive to produce because they require mammalian cells. Apoferritin overcomes both limitations: it naturally enters cells via a receptor called TfR1, and its 24 subunits self-assemble into a sphere that can encapsulate drugs that would otherwise be degraded in the blood. The researchers are fusing apoferritin with affibodies—small proteins that target cancer biomarkers like EGFR and HER2—to create a library of hybrid nanocages that can be mixed in different ratios. If this system works, it could extend the useful life of existing cancer drugs by overcoming drug resistance, and enable the use of potent compounds that currently fail because cells do not take them up efficiently. Because the nanocages can be produced in bacteria rather than mammalian cells, manufacturing could become cheaper, larger-scale, and more sustainable—potentially making targeted cancer therapies more accessible worldwide.
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The targeted delivery of drugs which maximises their therapeutic efficacy whilst minimising the side effects has been a significant goal since Paul Ehrlich coined the term 'magic bullet' in 1907. The advent of monoclonal antibody technology in 1975 provided a protein that could target specific cells and was heralded as an example of a 'magic bullet'. Antibodies can be used as therapeutic agents on their own as demonstrated with the breast cancer treatment Herceptin or more recently, as drug carriers and therapeutics (Antibody Drug Conjugates) to target less selective drugs to tumour cells as demonstrated by Kadcyla. Whilst antibody-based systems are used clinically, they do have significant disadvantages which include only being able to deliver a small number of drugs per antibody and being expensive to produce because this requires mammalian cells. We wish to develop a new targeted drug delivery system based on the human protein, apoferritin. This protein is made up of 24 subunits and self-assembles above pH 2.0 to form a hollow sphere (nanocage) 12 nm in diameter. We can trap up to 500 drug molecules in a single nanocage (compared with 3-8 per antibody, attached to their external surface). Apoferritin is naturally taken up into cells using a membrane receptor called TfR1. It does this as encapsulates iron ions and delivers these to the cytoplasm of the cell for them to grow. Whilst some cancers express elevated amounts of TfR1 as they grow faster and this allows them to be targeted by natural apoferritin, many cancers express other surface proteins (biomarkers). These can be targeted by antibodies or other proteins including a recently developed much smaller protein called an affibody. Affibodies that selectively bind epidermal growth factor receptors (EGFR, HER2, HER3) that are found at much higher levels in some cancers have been identified. By combining the targeting ability of affibodies with the drug encapsulation and membrane crossing ability of apoferritin using synthetic biology, we can generate new drug delivery systems that delivery much higher amounts of drugs per protein including ones that are sensitive to being metabolised in the blood if not protected by encapsulation. In this project we will make a library of affibody-apoferritin fusion proteins that can be mixed together in different ratios to optimise the targeted drug delivery properties against a range of common cancer cell types. In a preliminary study, we have shown that apoferritin encapsulation of the brain cancer drug temozolomide makes it effective against cells that have developed resistance to the action of the drug if delivered on its own. If this is seen with other drugs, it offers the opportunity to extend the period a drug is effective. As part of the study we will examine two classes of compounds that have good activity against cancer cells in vivo but because they are not taken up by cells efficiently, they cannot be used as therapeutics. The Mission award will allow us to comprehensively evaluate the affibody-apoferritin system to determine if it can become the 'next generation' targeted drug delivery system or 'trojan horse' following on from antibodies, for a wider variety of different drug types. Unlike immunoglobulin G antibodies, the affibody-apoferritin subunits can be produced in bacteria or other non-mammalian cells. This means that they can be produced at low cost and on a larger scale and much more sustainably than antibodies as will be required if they are to be readily available worldwide.
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