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Biology subjects

Yum, S.-Y.

Publications and source records attributed to Yum, S.-Y..

2 recordsLinked to original sources

Structure-guided deimmunisation of Fel d 1 suppresses allergic effector functions ex vivo

Allergic responses to the major cat allergen Fel d 1 are primarily driven by immunoglobulin E (IgE) cross-linking on effector cells. While conventional allergen-specific immunotherapies often rely on whole-allergen extracts with inherent risks of systemic reactions, rationally engineered variants offer a safer path to desensitisation. We present a structure-guided strategy to deimmunise Fel d 1 by selectively disrupting crucial IgE-binding interfaces. Using a computational pipeline integrating structural mapping and immunoinformatics, we designed 30 single-point mutations targeting immunodominant regions. Ex vivo functional evaluation using sera from cat-allergic individuals demonstrated that specific variants, notably K29G in Chain 1, exhibited significantly diminished IgE reactivity and profoundly suppressed basophil activation. Furthermore, CRISPR/Cas9-mediated introduction of the K29G mutation into feline fibroblasts confirmed that the substitution preserves fundamental cellular proliferation. This work demonstrates that targeted computational design can not only yield superior candidates for safer immunotherapeutics but also establish a viable foundation for generating genetically edited, hypoallergenic cats.

immunology↗

Identification of the safe harbor locus, AAVS1, from porcine genome and site-specific integration of recombinase-mediated cassette exchange system in porcine fibroblasts using CRISPR/Cas9

Gene integration at site-specific loci, such as safe harbor regions for stable expression via transgenesis, is a critical approach for understanding the function of a gene in cells or animals. The AAVS1 locus is a well-known safe harbor site for human and mouse studies. In the present study, we found an AAVS1-like sequence in the porcine genome using the UCSC Genome Browser and designed TALEN and CRISPR/Cas9 to target AAVS1. The efficiency of CRISPR/Cas9 for targeting the AAVS1 locus in porcine cells was superior to that of TALEN. An AAVS1-targeting donor vector containing GFP was designed and cloned. We added a loxP-lox2272 cassette sequence to the donor vector for further exchange of various transgenes in the AAVS1-targeted cell line. The donor vector and CRISPR/Cas9 components targeting AAVS1 were transfected into a porcine fibroblast cell line. Targeted cells of CRISPR/Cas9-mediated homologous recombination were identified by antibiotic selection. Gene knock-in at the AAVS1 locus was confirmed by PCR analysis. To induce recombinase-mediated cassette exchange (RMCE), another donor vector containing the loxP-lox2272 cassette and inducible (Tet-on) Cre recombinase was cloned. The Cre-donor vector was transfected into the AAVS1-targeted cell line, and RMCE was induced by adding doxycycline to the culture medium. RMCE in porcine fibroblasts was confirmed using PCR analysis. In conclusion, gene targeting at the AAVS1 locus and RMCE in porcine fibroblasts was successful. This technology will be useful for future porcine transgenesis studies and the generation of stable transgenic pigs.

molecular biology↗