Creation of de novo cryptic splicing for ALS/FTD precision medicine

Author:

Wilkins Oscar G.,Chien Max Z.Y.J.,Wlaschin Josette J.,Pisliakova Maria,Thompson David,Digby Holly,Simkin Rebecca L.,Diaz Juan Antinao,Mehta Puja R.,Keuss Matthew J.,Zanovello Matteo,Brown Anna-Leigh,Harley Peter,Darbey Annalucia,Karda Rajvinder,Fisher Elizabeth M.C.,Cunningham Tom J.,Le Pichon Claire E.,Ule Jernej,Fratta Pietro

Abstract

AbstractA system enabling the expression of therapeutic proteins specifically in diseased cells would be transformative, providing greatly increased safety and the possibility of pre-emptive treatment. Here we describe “TDP-REG”, a precision medicine approach primarily for amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD), which exploits the cryptic splicing events that occur in cells with TDP-43 loss-of-function (TDP-LOF) in order to drive expression specifically in diseased cells. In addition to modifying existing cryptic exons for this purpose, we develop a deep-learning-powered algorithm for generating customisable cryptic splicing events, which can be embedded within virtually any coding sequence. By placing part of a coding sequence within a novel cryptic exon, we tightly couple protein expression to TDP-LOF. Protein expression is activated by TDP-LOFin vitroandin vivo, including TDP-LOF induced by cytoplasmic TDP-43 aggregation. In addition to generating a variety of fluorescent and luminescent reporters, we use this system to perform TDP-LOF-dependent genomic prime editing to ablate theUNC13Acryptic donor splice site. Furthermore, we design a panel of tightly gated, autoregulating vectors encoding a TDP-43/Raver1 fusion protein, which rescue key pathological cryptic splicing events. In summary, we combine deep-learning and rational design to create sophisticated splicing sensors, resulting in a platform that provides far safer therapeutics for neurodegeneration, potentially even enabling preemptive treatment of at-risk individuals.One-Sentence SummaryWe engineer TDP-43-regulated cryptic exons, enabling exceptionally precise activation of gene therapies in diseased neurons.

Publisher

Cold Spring Harbor Laboratory

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