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Lee, S.-E.

Publications and source records attributed to Lee, S.-E..

2 recordsLinked to original sources

Antisense oligonucleotide therapy for the common Stargardt disease type 1-causing variant in ABCA4

The c.5461-10T>C p.[Thr1821Aspfs*6,Thr1821Valfs*13] variant has been identified as the most common severe Stargardt disease type 1 (STGD1)-associated variant in ABCA4. STGD1 is the most recurrent hereditary form of maculopathy and so far, no treatment is available for STGD1. In STGD1 patients homozygous for this variant, the onset of the disease typically is in childhood and patients are legally blind by early adulthood. The variant leads to exon skipping and generates out-of-frame ABCA4 transcripts that prevent the translation of functional ABCA4 protein. We applied antisense oligonucleotides (AONs) to restore the wild-type RNA splicing in ABCA4 c.5461-10T>C. The effect of AONs was investigated in vitro using an ABCA4 midigene model and 3D human retinal organoids (ROs) homozygous for the ABCA4 c.5461-10T>C variant. The mRNA in untreated ROs contained only disease-associated isoforms, whereas the organoids treated with the lead AON sequence showed 53% splicing correction and restoration of ABCA4 protein. Collectively, these data identified the lead candidate QR-1011 as a potent splice-correcting AON to be further developed as therapeutic intervention for patients harboring the severe ABCA4 c.5461-10T>C variant.

molecular biology↗

Microglia Detect Externalized Phosphatidylserine on Synapses for Elimination via TREM2 in Alzheimer's Disease Models

Genetic studies implicate phagocytosis pathways in microglia to be a major Alzheimers disease (AD)-associated process. Microglia phagocytose synapses in AD mouse models, suggesting a role for microglia in region-specific synapse loss, a pathological hallmark of AD. However, whether specific synapses are targeted for elimination, and if so, how, remains to be elucidated. Here, we show that synapses externalize phosphatidylserine (PtdSer) upon challenge by {beta}-amyloid oligomers, which are then selectively engulfed by microglia. Mechanistically, we find that Triggering Receptor Expressed on Myeloid Cells 2 (TREM2) is critical for microglia to sense and preferentially engulf AD synapses. In brains of mice and humans, TREM2 dysfunction leads to exacerbation of apoptotic synapses. Our work altogether suggests a fundamental role for microglia as brain-resident macrophages to remove damaged synapses in AD. We provide mechanistic insight into how TREM2 variants associated with increased risk of developing AD may contribute to defective microglia-synapse function. One-Sentence summaryMicroglia selectively engulf synapses in Alzheimer-like mouse brains via PtdSer-TREM2 signaling.

neuroscience↗