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Seo, M.-H.

Publications and source records attributed to Seo, M.-H..

2 recordsLinked to original sources

Massively parallel screening of TIR-derived peptides reveals vast TLR-targeting immunomodulatory peptides

Toll-like receptors (TLRs) are critical regulators of the immune system, and altered TLR responses lead to a variety of inflammatory diseases. Interference of intracellular TLR signaling, which is mediated by multiple Toll/interleukin-1 receptor (TIR) domains on all TLRs and TLR adapters, is an effective therapeutic strategy against immune dysregulation. Peptides that inhibit TIR-TIR interactions by fragmenting interface residues have potential as therapeutic decoys. However, a systematic method for discovering TIR-targeting moieties has been elusive, limiting exploration of the vast unsequenced space of the TIR domain family. Here, we developed a comprehensive parallel screening method to uncover novel TIR-binding peptides derived from previously unexplored surfaces on a wide range of TIR domains. We constructed a large peptide library, named TIR surfacesome, by tiling surface sequences of the large TIR domain family and screening against MALTIR and MyD88TIR, TIRs of two major TLR adaptor proteins, resulting in the discovery of hundreds of TIR-binding peptides. The selected peptides inhibited TLR signaling, demonstrated anti-inflammatory effects in macrophages and therapeutic potential in mouse inflammatory models. This approach may facilitate the development of TLR-targeted therapeutics.

molecular biology↗

Design of a highly specific glutamine sensor by splitting the glutamine-binding protein

Studies on glutamine (Gln) metabolism have illuminated the vital role of Gln in cellular functions and its potential as a biomarker for disease detection. Despite the increasing interest in Gln metabolism, in-depth evaluations are challenging owing to limitations of conventional Gln-measuring methods. Thus, we developed a ligand-induced dimerization-based sensor for Gln, termed Q-SHINE, by splitting a glutamine binding protein into two separate domains. Q-SHINE enables highly accurate and convenient measurement of Gln concentration in bio-fluid samples, and the detection range is optimal for physiological Gln levels. Genetically encoded Q-SHINE sensors could also visualize intracellular Gln levels and quantify cytoplasmic and mitochondrial Gln change in living cells, which enabled detection of various cell responses to extracellular Gln supplement.

bioengineering↗