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Gurumurthy, S.

Publications and source records attributed to Gurumurthy, S..

2 recordsLinked to original sources

Generation and validation of a human iPSC-derived TDP-43 knockout model for ALS disease modeling.

Nuclear depletion and cytoplasmic aggregation of TDP-43 occur in [~]97% of amyotrophic lateral sclerosis (ALS) cases and disrupt RNA processing through aberrant cryptic exon inclusion. Existing cellular models rely on partial knockdown, TARDBP mutations, or pharmacological stress, each with limitations. Here, we generated homozygous TARDBP-knockout human iPSC lines using CRISPR-Cas9 genome editing and differentiated them into spinal motor neurons (MNs). Knockout MNs demonstrated [~]16-fold lower differentiation efficiency than isogenic controls but retained neuronal marker expression. TDP-43 loss induced widespread cryptic exon inclusion and depletion of STMN2, UNC13A, and G3BP1. Integration of the CUTS splice biosensor yielded up to 4.5-fold cryptic GFP induction in knockout MNs, providing a reporter-based readout of TDP-43 dysfunction. Further, we validated the cardiac glycosides digoxin and ouabain as modulators of bortezomib-induced TDP-43 pathology. This genetically defined iPSC-derived MN model provides a platform for mechanistic and therapeutic interrogation of TDP-43-driven neurodegeneration in ALS.

neuroscience↗

Functional mRNA delivery to hematopoietic stem and progenitor cells in vivo.

Gene correction of hematopoietic stem cells (HSC) is a promising therapeutic approach for multiple disorders. Current methods, however, require HSC collection from patients, gene correction during ex vivo culture, and re-infusion of corrected HSC into patients conditioned with chemotherapeutic agents. These approaches are complex, and the conditioning creates toxicities. We show that a lipid nanoparticle (LNP) can deliver mRNA encoding a reporter or a gene editing protein to HSC, with one injection transfecting [~]25% of mouse HSC, and repeated doses resulting in higher editing efficiencies. We also demonstrate LNP-driven in vivo mRNA delivery to HSC in non-human primates and humanized mice. These results demonstrate a translatable approach to deliver mRNA encoding therapeutic proteins, or gene correcting tools, to HSC that do not require cell culture or toxic conditioning. One-Sentence SummaryLNP can deliver functional mRNA to mouse, non-human primate, and human HSC.

immunology↗