Search bioRxiv⌕ Search

Biology subjects

Choi, H.-w.

Publications and source records attributed to Choi, H.-w..

2 recordsLinked to original sources

Discovery and characterization of stereodefined PMO-gapmers targeting tau

Antisense oligonucleotides (ASOs) are an important class of therapeutics to treat genetic diseases, and expansion of this modality to neurodegenerative disorders has been an active area of research. To realize chronic administration of ASO therapeutics to treat neurogenerative diseases, new chemical modifications improving activity and safety profile are still needed. Furthermore, it is highly desirable to develop a single stereopure ASO with defined activity and safety profile to avoid any efficacy and safety concerns due to the batch-to-batch variation in the composition of diastereomers. Herein, a stereopure PMO-gapmer was developed as a new construct to improve safety and stability by installing charge-neutral PMOs at the wing region and by fully controlling phosphorus stereochemistries. The developed stereopure PMO-gapmer construct was applied to the discovery of ASO candidates for the reduction of microtubule-associated protein tau (MAPT, tau). Sequence screening targeting MAPT followed by screening of optimal phosphorus stereochemistry identified stereopure development candidates. While evaluating the stereopure PMO-gapmers, we observed a dramatic difference in safety profile among stereoisomers in which only one phosphorus stereochemistry differs. These results further highlight the benefits of developing stereopure ASOs as safe and well-characterized candidates for clinical studies.

neuroscience↗

The crystal and cryo-EM structures of PLCγ2 reveal dynamic inter-domain recognitions in autoinhibition

Abstract/SummaryPhospholipase C gamma 2 (PLC{gamma}2) plays important roles in cell signaling downstream of various membrane receptors. PLC{gamma}2 contains a multi-domain inhibitory region critical for its regulation, while it has remained unclear how these domains contribute to PLC{gamma}2 activity modulation. Here we determined three structures of human PLC{gamma}2 in autoinhibited states, which reveal dynamic interactions at the autoinhibition interface, involving the conformational flexibility of the SH3 domain in the inhibitory region, and its previously unknown interaction with a C-terminal helical domain in the core region. We also determined a structure of PLC{gamma}2 bound to the kinase domain of fibroblast growth factor receptor 1 (FGFR1), which demonstrates the recognition of FGFR1 by the nSH2 domain in the inhibitory region of PLC{gamma}2. Our results provide new structural insights into PLC{gamma}2 regulation that will facilitate future mechanistic studies to understand the entire activation process.

biochemistry↗