Active Brain & Nervous System Cells, Biochemistry & Physiology

Identification of druggable targets for C9ORF72-related toxicity via an innovative CRISPR/Cas9 kinome-wide screen

In plain English

AI plain-English summary

A faulty C9ORF72 gene is the most common genetic cause of motor neuron disease, and researchers will systematically disable each of the body's 700-plus kinases in diseased nerve cells to find which ones, when blocked, keep the cells alive. This matters because motor neuron disease (ALS/MND) kills about 1 in 300 people, usually in mid-adulthood, and no current treatment meaningfully slows its progression. Kinases are enzymes that control nearly all cell signalling, yet they have been largely overlooked in ALS research. The team will grow motor nerve cells from a patient's stem cells alongside defective immune cells and a chemical stressor, creating a more realistic model of the disease environment in the spinal cord. If the screen identifies kinases whose removal prevents nerve cell death, those kinases become immediate drug targets. Because roughly 134 kinase inhibitors are already approved for other diseases, a hit could bypass years of drug development and enter clinical trials rapidly. The project also checks whether the same targets appear in post-mortem spinal cord tissue from both genetic and sporadic ALS cases, suggesting converging disease mechanisms. This is fundamental discovery science with a direct pipeline to existing medicines.

View original technical description
Amyotrophic lateral sclerosis, also known as motor neuron disease, (ALS/MND) is a fatal disease, usually of mid-adulthood affecting ~1/300 people. It is caused by the progressive death of motor nerve cells that allow us to move/swallow/breathe. Current treatments that impactfully modify the course of the disease are lacking, and we aim to contribute to a prompt reversal of this. If we can uncover the reasons why motor nerve cells die, we can use that knowledge to find ways of preventing or even reversing this. The commonest known genetic cause of ALS is a fault in the C9ORF72 gene. We will use this gene as a starting point for our studies. We will focus on a class of proteins called "kinases". Protein kinases are enzymes that catalyse the addition of a phosphate molecule to amino acids—the building blocks of proteins. This action is called phosphorylation and is involved in nearly all cell signalling processes. These proteins 'signal' changes in cellular functions including cell division, cellular energetics, transport, secretory processes, and many others. Thus, kinases play pivotal roles in regulating cellular actions. In other areas of medicine, understanding their biology has led to the development of targeted treatments. In ALS, however, there has been little dedicated research on kinases. We wish to change that. Our objective is to painstakingly test whether removal of any kinase prevents death of motor nerve cells. This would then suggest that they play an important role in ALS and that drugs that target these kinases could have therapeutic potential. It could also suggest that monitoring of kinase activity might have therapeutic utility. During the accelerated 18-month timeframe of the project, we will: Engineer a human stem-cell line derived from a person with C9ORF72-ALS that specifically allows us to assess the role of kinases in an ALS context compared to a healthy context; Identify which of the >700 genes encoding protein kinases are involved in motor nerve cell death (called CRISPR-screening). We will use C9ORF72 motor nerve cells grown with the brain's immune cells (microglia). The microglia will be C9ORF72 defective and will be present in conjunction with a chemical stress (glutamate excitotoxicity) that C9ORF72 motor nerve cells have previously been shown to be vulnerable to. This will create an environment for the motor nerve cells that will result in their death that more closely mirrors the environment present in the spinal cords of people with ALS/MND than has been modelled previously; validate these 'in-a-dish' findings. We will focus on the top three targets identified from the 'long-list', to find kinases which, when not present or blocked from functioning, lead to increased motor nerve health. First, we will use already proven cellular measurements of motor nerve health. These include survival, transport of cargo along the electrical nerve cell cables (axons) and protein clumping. Second, we will look for overlap in targets in human postmortem spinal cord tissue both from C9ORF72-ALS patients, and sporadic (more general) ALS cases, looking for converging mechanisms. Ultimately, this groundbreaking foundational work will set the scene for the next stage of targeted drug discovery, aiming to uncover druggable kinase-based targets that prevent MN death. As there are ~134 approved kinase inhibitors (https://www.ppu.mrc.ac.uk/list-clinically-approved-kinase-inhibitors), it is possible that there are already clinically-approved inhibitors against the identified target(s), suggesting that these could enter trials rapidly.

View the original record at the funder ↗

Researchers

Arpan Rajesh Mehta (Principal Investigator)

Related Research

Grants with similar aims, by meaning.

Identification of translational biomarkers for disease onset, early diagnosis and therapeutic efficacy in C9orf72 ALS/FTD
Exome sequencing in motor neuron disease: bioinformatic analyses and biological validation of novel variants
Mechanistic studies of ALS-causative mutations and RNP-focussed drug discovery using in vitro reconstitution of RNP complexes
The use of stem cells for patient stratification approaches in motor neurone disease
Novel therapeutic strategies to target RAN translation of pathological C9ORF72 repeat transcripts and associated neurodegeneration

Original classification

Research and Innovation

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