Completed Genetics & Molecular Biology Cells, Biochemistry & Physiology

TransNAT: Transforming delivery, safety and efficacy of nucleic acid therapeutics: from intracellular uptake to targeting brain and muscle.

In plain English

AI plain-English summary

Genetic medicines that correct diseases at their source are failing to reach the cells that need them—this project chemically straps delivery agents directly onto the drugs to force them inside. The problem is that nucleic acid therapies (NATs) work brilliantly for liver diseases but cannot cross the barriers protecting the brain, heart, and muscles. Even when they do enter a cell, they often get trapped in the wrong compartment or trigger dangerous immune reactions. Current delivery methods are too blunt: they either miss the target entirely or cause side effects that halt clinical trials. The consortium will attach two types of delivery molecules—lipids and antibodies—directly to the NAT drug via chemical linkers. They will test thousands of variations in human cells, lab-grown 3D organ models, and rodents, tracking exactly where each conjugate goes at single-cell resolution. Machine learning will integrate the data to predict which chemical designs achieve "productive delivery": enough drug in the right cellular compartment with minimal toxicity. If successful, this could unlock NAT treatments for Huntington’s disease, muscular dystrophy, and heart conditions—diseases that currently have no genetic therapies. The fundamental knowledge about how to smuggle large molecules across cell membranes will also benefit other drug classes, from gene editors to protein replacements.

View original technical description
Nucleic acid therapies (NATs) are genetic medicines that address the root cause of disease and have the potential to transform healthcare and provide life changing solutions for numerous areas of unmet need. Neurological, neuromuscular and cardiovascular diseases in particular devastate lives and create a very significant economic and social burden across the entire global population. While NATs have begun to be a reality over the last decade with multiple medicines being approved for use in the US and Europe many challenges remain particularly for diseases outside the liver and for those not easily addressed by local drug delivery solutions. Moreover, recent clinical trial results indicate that safety considerations should be addressed in parallel with the development of delivery solutions. The challenge of NAT delivery put simply is to deliver the drug effectively across the cell membrane into the appropriate sub-cellular compartment at a sufficient concentration required for activity in the absence of significant safety signals - so called 'productive' delivery. Our proposed solution is therefore to understand the requirements for productive delivery of NATs and to exploit this knowledge base for the development of NAT conjugates - our technical solution. Building on extensive experience of our consortium of academic and industry scientists, we will take two independent approaches to NAT conjugates, where delivery agents are directly chemically attached to the NAT drug. First, we will study and optimise lipid conjugates, where a range of lipid entities are directly attached to the NAT via a series of chemical linkers with different properties. In the first instance the NAT is one targeting a common gene of no therapeutic relevance. Our second approach of high potential will be to study and optimise antibody conjugates, where an antibody (or antibody fragment or antibody derived peptide) that binds to a specific cell membrane ligand is conjugated chemically again via chemical linkers. In each case, we will have starting points with conjugates that have already emerged through the work of consortium members, and in the case of antibodies we will have two independent approaches for identifying and prioritising new ligands for antibody targeting, again building on pre-existing work in the consortium. Our extensive chemistry capabilities will generate conjugate materials and control compounds for study and first step of which will be extensive in vitro studies in cells to develop mechanism-based knowledge on productive cell uptake allowing us to select lead compounds for more detailed study based on cell uptake/efficacy/safety properties, and to iterate compound structure and chemistry based on new knowledge, know-how and data generated. Further study will comprise translational studies in ex vivo human model systems based on human cells and stem cells and also based on human three dimensional organ like systems that provide cell diversity and architectural arrangements more closely mimicking human tissues. Further translational studies in established and new rodent models will allow delivery to cells and tissues of brain, heart and muscle to be studied in detail at singe cell resolution permitting cell/tissue biodistribution to be correlated with efficacy and safety measures. Finally, a small number of lead NAT compounds will be studied in disease models related to Huntington's disease and muscular dystrophy. We will maximise the potential of data by analysing and integrating across the programme and implementing machine-learning approaches to exploit our data. We will deliver fundamental knowledge, know-how, data and IP on productive uptake and novel lipid/antibody NATs of high therapeutic potential for further study. We will also engage the broader NAT community via reports/meetings/conferences and develop training opportunities, all of the above working in close collaboration with the NATA Hub.

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Researchers

Anastasia Khvorova (Co-Investigator)Anne Willis (Co-Investigator)Benjamin Davis (Co-Investigator)Francesco Muntoni (Co-Investigator)Gillian Bates (Co-Investigator)Haiyan Zhou (Co-Investigator)Heba Sailem (Co-Investigator)James Naismith (Co-Investigator)Jennifer Morgan (Co-Investigator)Kathryn Lilley (Co-Investigator)Lydia Teboul (Co-Investigator)Matthew Wood (Principal Investigator)Michael Hanna (Co-Investigator)Ritwick Sawarkar (Co-Investigator)Samir El-Andaloussi (Co-Investigator)Sara Wells (Co-Investigator)Sarah Tabrizi (Co-Investigator)Selina Wray (Co-Investigator)Thomas Roberts (Co-Investigator)Tom Brown (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

Effective Delivery of Nucleic Acid Therapeutics via Designed Nanocarriers (NATPRIME)
Effective Delivery of Nucleic Acid Therapeutics via Designed Nanocarriers
Biocatalytic Manufacturing of Nucleic Acid Therapeutics
From mechanism to clinical translation: Understanding the off- and on-target toxicities of nucleic-acid-dependent therapeutics
Establish a National Platform for Developing Nucleic Acid Therapy in Paediatric Rare Disease

Original classification

Research Grant

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