Person: Liu, David
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Publication Prioritization of autoimmune disease-associated genetic variants that perturb regulatory element activity in T cells
(Springer Science and Business Media LLC, 2022-05) Mouri, Kousuke; Guo, Michael H.; de Boer, Carl G.; Lissner, Michelle M.; Harten, Ingrid A.; Newby, Gregory A.; DeBerg, Hannah A.; Platt, Winona F.; Gentili, Matteo; Liu, David; Campbell, Daniel J.; Hacohen, Nir; Tewhey, Ryan; Ray, John P.Genome-wide association studies have uncovered hundreds of autoimmune disease-associated loci; however, the causal genetic variant(s) within each locus are mostly unknown. Here, we perform high-throughput allele-specific reporter assays to prioritize disease-associated variants for five autoimmune diseases. By examining variants that both promote allele-specific reporter expression and are located in accessible chromatin, we identify 60 putatively causal variants that enrich for statistically fine-mapped variants by up to 57.8-fold. We introduced the risk allele of a prioritized variant (rs72928038) into a human T cell line and deleted the orthologous sequence in mice, both resulting in reduced BACH2 expression. Naive CD8 T cells from mice containing the deletion had reduced expression of genes that suppress activation and maintain stemness. Our results represent an example of an effective approach for prioritizing variants and studying their physiologically relevant effects.
Publication Publisher Correction: Precision genome editing using cytosine and adenine base editors in mammalian cells
(Springer Science and Business Media LLC, 2021-11-17) Huang, Tony P.; Newby, Gregory A.; Liu, DavidPublication In vivo base editing rescues Hutchinson–Gilford progeria syndrome in mice
(Springer Science and Business Media LLC, 2021-01-06) Koblan, Luke W.; Erdos, Michael R.; Wilson, Christopher; Cabral, Wayne A.; Levy, Jonathan M.; Xiong, Zheng-Mei; Tavarez, Urraca L.; Davison, Lindsay M.; Gete, Yantenew G.; Mao, Xiaojing; Newby, Gregory A.; Doherty, Sean P.; Narisu, Narisu; Sheng, Quanhu; Krilow, Chad; Lin, Charles Y.; Gordon, Leslie B.; Cao, Kan; Collins, Francis S.; Brown, Jonathan D.; Liu, DavidHutchinson-Gilford progeria syndrome (HGPS) is typically caused by a dominant-negative C•G-to-T•A mutation (c.1824 C>T, G608G) in LMNA, the nuclear lamin A gene. This mutation causes RNA mis-splicing that produces progerin, a toxic protein that induces rapid aging and shortens lifespan to ~14 years1-4. Adenine base editors (ABEs) perform targeted A•T-to-G•C base pair conversion with minimal byproducts and without requiring double-strand DNA breaks or donor DNA templates5,6. Here, we describe the use of an ABE to directly correct the pathogenic HGPS mutation in cultured progeria patient-derived fibroblasts and in a mouse model of HGPS. Lentiviral delivery of ABE to patient-derived fibroblasts results in ~90% correction of the pathogenic allele, mitigation of RNA mis-splicing, reduced progerin levels, and correction of nuclear abnormalities. Unbiased off-target DNA and RNA analysis did not detect off-target editing activity in treated patient-derived fibroblasts. In transgenic mice homozygous for the human LMNA c.1824 C>T allele, a single retro-orbital injection of adeno-associated virus 9 (AAV9) encoding the ABE resulted in substantial, durable correction of the pathogenic mutation (~20-60% across various organs 6 months post-injection), restoration of normal RNA splicing, and reduction of progerin protein. In vivo base editing rescued vascular pathology, preserving vascular smooth muscle cell counts and preventing adventitial fibrosis. A single ABE AAV9 injection at P14 improved animal vitality and greatly extended median lifespan from 215 to 510 days. These findings support the potential of in vivo base editing to treat HGPS, and other genetic diseases, by directly correcting the root cause of disease.
Publication Post-translational modification-centric base editor screens to assess phosphorylation site functionality in high throughput
(Springer Science and Business Media LLC, 2024-04-29) Kennedy, Patrick H.; Alborzian Deh Sheikh, Amin; Balakar, Matthew; Jones, Alexander C.; Olive, Meagan E.; Hegde, Mudra; Matias, Maria I.; Pirete, Natan; Burt, Rajan; Levy, Jonathan; Little, Tamia; Hogan, Patrick G.; Liu, David; Doench, John G.; Newton, Alexandra C.; Gottschalk, Rachel A.; de Boer, Carl G.; Alarcón, Suzie; Newby, Gregory A.; Myers, Samuel A.Signaling pathways that drive gene expression are typically depicted as having a dozen or so landmark phosphorylation and transcriptional events. In reality, thousands of dynamic post-translational modifications (PTMs) orchestrate nearly every cellular function, and we lack technologies to find causal links between these vast biochemical pathways and genetic circuits at scale. Here we describe the high-throughput, functional assessment of phosphorylation sites through the development of PTM-centric base editing coupled to phenotypic screens, directed by temporally resolved phosphoproteomics. Using T cell activation as a model, we observe hundreds of unstudied phosphorylation sites that modulate NFAT transcriptional activity. We identify the phosphorylation-mediated nuclear localization of PHLPP1, which promotes NFAT but inhibits NFκB activity. We also find that specific phosphosite mutants can alter gene expression in subtle yet distinct patterns, demonstrating the potential for fine-tuning transcriptional responses. Overall, base editor screening of PTM sites provides a powerful platform to dissect PTM function within signaling pathways.
Publication Potent and uniform fetal hemoglobin induction via base editing
(Springer Science and Business Media LLC, 2023-07) Mayuranathan, Thiyagaraj; Newby, Gregory A.; Feng, Ruopeng; Yao, Yu; Mayberry, Kalin D.; Lazzarotto, Cicera R.; Li, Yichao; Levine, Rachel M.; Nimmagadda, Nikitha; Dempsey, Erin; Kang, Guolian; Porter, Shaina N.; Doerfler, Phillip A.; Zhang, Jingjing; Jang, Yoonjeong; Chen, Jingjing; Bell, Henry W.; Crossley, Merlin; Bhoopalan, Senthil Velan; Sharma, Akshay; Tisdale, John F.; Pruett-Miller, Shondra M.; Cheng, Yong; Tsai, Shengdar Q.; Liu, David; Weiss, Mitchell J.; Yen, Jonathan S.