Completed Heart, Stroke & Blood Cancer

Stem cell-derived exosomes for regenerative medicine

In plain English

AI plain-English summary

A UK biotech company is learning how to mass-produce microscopic biological parcels that could one day replace living stem cells in regenerative medicine. ReNeuron already has a stem cell therapy for stroke and limb ischaemia in clinical trials. But those cells also release tiny sacs called exosomes, which carry proteins and genetic material between cells. In lab models, these exosomes shrink glioblastoma tumours—an aggressive brain cancer with few treatment options. The problem is that exosomes are difficult to purify in large, consistent batches at a cost that makes clinical use viable. This project tackles that manufacturing bottleneck. If the team can develop a scalable, cost-effective purification method and complete the preclinical safety and efficacy studies needed for a clinical trial application, the exosomes could become a new class of off-the-shelf regenerative medicine. Unlike living cells, exosomes have a long shelf-life and do not require cold-chain storage, making them easier to distribute to hospitals. Success would open a faster, cheaper route to treating glioblastoma and potentially other diseases, while strengthening the UK’s regenerative medicine manufacturing base.

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ReNeuron is a leading UK regenerative medicine company currently conducting clinical trials with a novel human neural stem cell (hNSC) product for the treatment of stroke and limb ischaemia. These stem cells also produce small parcels of biologic material called exosomes. CTX-derived exosomes have been found to have functional properties in laboratory models of cancer, particularly glioblastomas. It may therefore be feasible to use the exosomes as an alternative class of regenerative medicine that has a long shelf-life and application to a wide range of diseases. In this project, we will tackle how to purify exosomes in large enough quantities cost- effectively at scale and then complete preclinical studies for a clinical trial application in glioblastoma. If successful, our project will benefit patients with the target disease as well as the UK regenerative medicine industry.

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Collaborative R&D

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