Reversal of C9orf72 mutation-induced transcriptional dysregulation and pathology in cultured human neurons by allele-specific excision

Author:

Sachdev Aradhana1ORCID,Gill Kamaljot12ORCID,Sckaff Maria12ORCID,Birk Alisha M.1ORCID,Aladesuyi Arogundade Olubankole23,Brown Katherine A.23,Chouhan Runvir S.23,Issagholian-Lewin Patrick Oliver23ORCID,Patel Esha23,Watry Hannah L.1,Bernardi Mylinh T.1,Keough Kathleen C.1ORCID,Tsai Yu-Chih4ORCID,Smith Alec Simon Tulloch56ORCID,Conklin Bruce R.1789ORCID,Clelland Claire Dudley23ORCID

Affiliation:

1. Gladstone Institutes, San Francisco, CA 94158

2. Weill Institute for Neurosciences, University of California San Francisco, San Francisco, CA 94158

3. Memory & Aging Center, Department of Neurology, University of California San Francisco, San Francisco, CA 94158

4. Pacific Biosciences, Menlo Park, CA 94025

5. Department of Physiology and Biophysics, University of Washington, Seattle, WA 98195

6. The Institute for Stem Cell and Regenerative Medicine, University of Washington, Seattle, WA 98195

7. Department of Medicine, University of California San Francisco, San Francisco, CA 94143

8. Department of Ophthalmology, University of California San Francisco, San Francisco, CA 94143

9. Department of Pharmacology, University of California San Francisco, San Francisco, CA 94158

Abstract

Efforts to genetically reverse C9orf72 pathology have been hampered by our incomplete understanding of the regulation of this complex locus. We generated five different genomic excisions at the C9orf72 locus in a patient-derived induced pluripotent stem cell (iPSC) line and a non-diseased wild-type (WT) line (11 total isogenic lines), and examined gene expression and pathological hallmarks of C9 frontotemporal dementia/amyotrophic lateral sclerosis in motor neurons differentiated from these lines. Comparing the excisions in these isogenic series removed the confounding effects of different genomic backgrounds and allowed us to probe the effects of specific genomic changes. A coding single nucleotide polymorphism in the patient cell line allowed us to distinguish transcripts from the normal vs. mutant allele. Using digital droplet PCR (ddPCR), we determined that transcription from the mutant allele is upregulated at least 10-fold, and that sense transcription is independently regulated from each allele. Surprisingly, excision of the WT allele increased pathologic dipeptide repeat poly-GP expression from the mutant allele. Importantly, a single allele was sufficient to supply a normal amount of protein, suggesting that the C9orf72 gene is haplo-sufficient in induced motor neurons. Excision of the mutant repeat expansion reverted all pathology (RNA abnormalities, dipeptide repeat production, and TDP-43 pathology) and improved electrophysiological function, whereas silencing sense expression did not eliminate all dipeptide repeat proteins, presumably because of the antisense expression. These data increase our understanding of C9orf72 gene regulation and inform gene therapy approaches, including antisense oligonucleotides (ASOs) and CRISPR gene editing.

Funder

HHS | NIH | National Institute of Neurological Disorders and Stroke

HHS | NIH | National Institute on Aging

Alzheimer's Association

HHS | NIH | National Eye Institute

HHS | National Institutes of Health

Publisher

Proceedings of the National Academy of Sciences

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