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Hayashi, G.

Publications and source records attributed to Hayashi, G..

3 recordsLinked to original sources

Structural basis for the unique multifaceted interaction of DPPA3 with the UHRF1 PHD finger

Ubiquitin-like with PHD and RING finger domain-containing protein 1 (UHRF1)-dependent DNA methylation is essential for maintaining cell fate during cell proliferation. Developmental pluripotency-associated 3 (DPPA3) is an intrinsically disordered protein that specifically interacts with UHRF1 and promotes passive DNA demethylation by inhibiting UHRF1 chromatin localization. However, the molecular basis of how DPPA3 interacts with and inhibits UHRF1 remains unclear. We aimed to determine the structure of the mouse UHRF1 plant homeodomain (PHD) complexed with DPPA3 using nuclear magnetic resonance. Induced - helices in DPPA3 upon binding of UHRF1 PHD contribute to stable complex formation with multifaceted interactions, unlike canonical ligand proteins of the PHD domain. Mutations in the binding interface and unfolding of the DPPA3 helical structure inhibited binding to UHRF1 and its chromatin localization. Our results provide structural insights into the mechanism and specificity underlying the inhibition of UHRF1 by DPPA3.

biochemistry↗

Comprehensive analysis of the effect of mRNA sequences on translation efficiency and accuracy

Messenger ribonucleic acid (mRNA) sequences influence the translation efficiency and accuracy. To increase our knowledge of how mRNA sequences affect ribosome translation and apply the obtained information to improve the mRNA display method, we conducted a comprehensive analysis of the effect of mRNA sequences on the translation. Translation efficiency depended strongly on the three codons following the start codon. Furthermore, the codons at the ribosomal E- and P-sites strongly influence the misreading of the A-site blank codon by near-cognate transfer RNA. The purine base after the blank codon also induced a higher misread rate than that with a pyrimidine base. Based on these findings, we demonstrated construction of highly diverse monobody and macrocyclic peptide libraries that would be useful in developing functional peptides and proteins in the future.

biochemistry↗

Systemic impact of the expression of the mitochondrial alternative oxidase on Drosophila development

Despite the beneficial effects of xenotopically expressing the mitochondrial alternative oxidase AOX from Ciona intestinalis in mammalian and insect models, important detrimental outcomes have also been reported, raising concerns regarding its potential deployment as a therapeutic enzyme for human mitochondrial diseases. Because of its non-protonmotive terminal oxidase activity, AOX can bypass the cytochrome segment of the respiratory chain whilst not contributing to mitochondrial ATP synthesis. We have previously shown that pupal lethality occurs when AOX-expressing Drosophila larvae are cultured on a low-nutrient diet, indicating that AOX can perturb normal metabolism during development. Here, combined omics analyses revealed multiple correlates of this diet-dependent lethality, including a general alteration of larval amino acid and lipid metabolism, functional and morphological changes to the larval digestive tract, and a drastic decrease in larval biomass accumulation. Pupae at the pre-lethality stage presented a general downregulation of mitochondrial metabolism and a signature of starvation and deregulated signaling. AOX-induced lethality was partially rescued when the low-nutrient diet was supplemented with tryptophan and/or methionine, but not with proline and/or glutamate, strongly suggesting perturbation of one-carbon metabolism. The developmental dependence on tryptophan and/or methionine, associated with elevated levels of lactate dehydrogenase, 2-hydroxyglutarate, choline-containing metabolites and breakdown products of membrane phospholipids, indicates that AOX expression promotes tissue proliferation and larval growth, but this is ultimately limited by energy dissipation due to partial mitochondrial uncoupling. We speculate that the combination of dietary interventions and AOX expression might, nevertheless, be useful for the metabolic regulation of proliferative tissues, such as tumors.

biochemistry↗