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Ling, S.-C.

Publications and source records attributed to Ling, S.-C..

2 recordsLinked to original sources

Integrated detection and quantification of aberrant transcripts with novel splicing events

Splicing misregulation, such as the inclusion of previously unknown cryptic exons, is implicated in numerous diseases. Recent methods have increased accurate and efficient detection of such splicing alterations occurring in disease phenotypes. However, the quantification and differential analyses of non-canonical splicing alterations remains focused at a splice event level, thus preventing a complete view of the effects on the downstream transcriptomic landscape. Here, we present a novel and integrated pipeline, SpliCeAT, that (1) detects and quantifies differential non-canonical splicing events from short-read bulk RNA-seq data, (2) augments the canonical transcriptome with novel transcripts containing these non-canonical splicing events, and (3) performs transcript-level differential analysis to identify and quantify aberrant cryptic exon-containing transcripts based on this augmented transcriptome. Using TDP-43, an ALS/FTD-associated RNA-binding protein as an example, we identified and catalogued aberrant splicing events in embryonic mouse brains from deletion of TDP-43 in neural progenitor cells. The accuracy of our integrated pipeline was further confirmed and validated with long-read isoform sequencing. Furthermore, by comparing neuronal TDP-43 knockouts in mice with a publicly available human dataset with TDP-43 pathology, we identified and validated 4 common genes, namely, Kalrn/KALRN, Poldip3/POLDIP3, Rnf144a/RNF144A, and Unc13a/UNC13A, with cryptic exons. In summary, our integrated pipeline, novel splice events are identified, incorporated and quantified at the transcript level, thereby enabling more complete transcriptome profiling of well-annotated genomes in in the case of pathological splicing misregulation.

genomics↗

Polystyrene nanoplastics promote neurodegeneration by catalyzing TDP43 hyperphosphorylation

The ubiquity of polystyrene nanoplastics (PS-NPs) in our environment raises substantial concerns about their potential impact on human health. Recent studies have shown that PS-NPs cross the blood-brain-barrier and accumulate in the central nervous system (CNS), raising the concerns on the causal role of PS-NP exposure and neurodegenerative diseases. In this study, we utilized human-induced pluripotent stem cell-derived neurons to examine the effects of PS-NPs on neuronal function and health. Our results revealed that PS-NPs penetrate neuronal cells in a size-dependent manner, and are bound by various cellular proteins, including TDP43, a key protein implicated in amyotrophic lateral sclerosis (ALS). Interestingly, CK1 and GSK3{beta} kinases that are known to phosphorylate TDP-43 were found to be associated with PS-NPs. This observation suggests that PS-NPs may play a role in facilitating conditions that lead to TDP43 phosphorylation. We further demonstrate that exposure to healthy motor neurons with PS-NPs resulted in ALS-like phenotypes, characterized by hyperphosphorylated TDP-43, disrupted neuronal morphology, impaired mitochondrial respiration, and accelerated motor neuron death. These findings suggest that PS-NPs contribute to the pathogenesis of neurodegenerative diseases such as ALS and highlight the urgent need for strategies to limit human exposure to nanoplastics.

neuroscience↗