bioRxiv ScienceSearch

Biology subjects

Taguchi, Y.

Publications and source records attributed to Taguchi, Y..

2 recordsLinked to original sources

G-quadruplex dynamics contribute to epigenetic regulation of mitochondrial function

Single-stranded DNA or RNA sequences rich in guanine (G) can adopt non-canonical structures known as G-quadruplexes (G4). Predicted G4-forming sequences in the mitochondrial genome are enriched on the heavy-strand and have been associated with formation of deletion breakpoints that cause mitochondrial disorders. However, the functional roles of G4 structures in regulating mitochondrial respiration in non-cancerous cells remain unclear. Here, we demonstrate that RHPS4, previously thought to be a nuclear G4-ligand, localizes primarily to mitochondria in live cells by mechanisms involving mitochondrial membrane potential. We find that RHPS4 exposure causes an acute inhibition of mitochondrial transcript elongation, leading to respiratory complex depletion. At higher ligand doses, RHPS4 causes mitochondrial DNA (mtDNA) replication pausing and genome depletion. Using these different levels of RHPS4 exposure, we describe discrete nuclear gene expression responses associated with mitochondrial transcription inhibition or with mtDNA depletion. Importantly, a mtDNA variant with increased anti-parallel G4-forming characteristic shows a stronger respiratory defect in response to RHPS4, supporting the conclusion that mitochondrial sensitivity to RHPS4 is G4-structure mediated. Thus, we demonstrate a direct role for G4 perturbation in mitochondrial genome replication, transcription processivity, and respiratory function in normal cells and describe the first molecule that differentially recognizes G4 structures in mtDNA.

molecular biology

PrPSc-induced conformational changes and strain-specific structures of PrPSc revealed by Disulfide-crosslink scanning

There exist many phenotypically-varied prion strains, like viruses, despite the absence of conventional genetic material which codes the phenotypic information. As prion is composed solely of the pathological isoform (PrPSc) of prion protein (PrP), the strain-specific traits are hypothesized to be enciphered in the structural details of PrPSc. Identification of the structures of PrPSc is therefore vital for the understanding of prion biology, though they remain unidentified due to the incompatibility of PrPSc with conventional high-resolution structural analyses. Based on our previous hypothesis that the region between the first and the second -helix (H1[~]H2) and the distal region of the third helix (Ctrm) of the cellular isoform of PrP (PrPC) have important roles for efficient interactions with PrPSc, we created series of mutant PrPs with two cysteine substitutions (C;C-PrP) which were systematically designed to form an intramolecular disulfide crosslink between H1[~]H2 and Ctrm and assessed their conformational changes by prions: Specifically, a cysteine substitution in H1[~]H2 from 165 to 169 was combined with cysteine-scanning along Ctrm from 220 to 229. C;C-PrPs with the crosslinks were expressed normally with the similar glycosylation patterns and subcellular localization as the wild-type PrP albeit with varied expression levels. Interestingly, some of the C;C-PrPs converted to the protease-resistant isoforms in the N2a cells persistently infected with 22L prion strain, whereas the same mutants did not convert in the cells infected with another prion strain Fukuoka1, indicating that local structures of PrPSc in these regions vary among prion strains and contribute to prion-strain diversity. Moreover, patterns of the crosslinks of the convertible C;C-PrPs implied drastic changes in positional relations of H1[~]H2 and Ctrm in the PrPSc-induced conformational changes by 22L prion. Thus, disulfide-crosslink scanning is a useful approach for investigation of strain-specific structures of PrPSc, and would be applicable to other types of amyloids as well.

molecular biology