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Your search keyword '"Kai, Hirofumi"' showing total 10 results

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10 results on '"Kai, Hirofumi"'

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1. TALENs Facilitate Single-step Seamless SDF Correction of F508del CFTR in Airway Epithelial Submucosal Gland Cell-derived CF-iPSCs

2. A Splice Switch in SIGIRR Causes a Defect of IL-37-Dependent Anti-Inflammatory Activity in Cystic Fibrosis Airway Epithelial Cells.

3. A splice switch in SIGIRR causes a defect of poly(I:C)-dependent anti-inflammatory IL-37b-SIGIRR negative feedback loop in cystic fibrosis airway epithelial cells

4. DNA demethylation-dependent enhancement of toll-like receptor-2 gene expression in cystic fibrosis epithelial cells involves SP1-activated transcription.

5. Calnexin Δ185–520 partially reverses the misprocessing of the ΔF508 cystic fibrosis transmembrane conductance regulator1<FN ID="FN1"><NO>1</NO>The data on hamster calnexin Δ185–520, have been submitted to GenBank under accession number AF380341, and those on hamster calnexin under accession number AB071869.</FN>

6. Calnexin Δ185–520 partially reverses the misprocessing of the ΔF508 cystic fibrosis transmembrane conductance regulator11The data on hamster calnexin Δ185–520, have been submitted to GenBank under accession number AF380341, and those on hamster calnexin under accession number AB071869

7. Role of calnexin in the ER quality control and productive folding of CFTR; differential effect of calnexin knockout on wild-type and ΔF508 CFTR

8. Bafilomycin A1-sensitive pathway is required for the maturation of cystic fibrosis transmembrane conductance regulator

9. Calreticulin Negatively Regulates the Cell Surface Expression of Cystic Fibrosis Transmembrane Conductance Regulator.

10. 241: Increased IL-17C production by the TLR3 ligand poly (I:C) in primary cystic fibrosis airway epithelial cells.

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