bioRxiv ScienceSearch

Biology subjects

Minoda, A.

Publications and source records attributed to Minoda, A..

3 recordsLinked to original sources

Chromatin accessibility landscape of articular knee cartilage reveals aberrant enhancer regulation in osteoarthritis

BackgroundOsteoarthritis (OA) is a common joint disorder with increasing impact in an aging society; however, there is no cure or effective treatments so far due to lack of sufficient understanding of its pathogenesis. While genome-wide association studies (GWAS) and DNA methylation profiling identified many non-coding loci associated to OA, the interpretation of them remains challenging.\n\nMethodsHere, we employed Assay for Transposase-Accessible Chromatin with high throughput sequencing (ATAC-seq) to map the accessible chromatin landscape in articular knee cartilage of OA patients and to identify the chromatin signatures relevant to OA.\n\nResultsWe identified 109,215 accessible chromatin regions in cartilage and 71% of these regions were annotated as enhancers. We found these accessible chromatin regions are enriched for OA GWAS single nucleotide polymorphisms (SNPs) and OA differentially methylated loci, implying their relevance to OA. By linking these enhancers to their potential target genes, we have identified a list of candidate enhancers that may be relevant to OA. Through integration of ATAC-seq data with RNA-seq data, we identified genes that are altered both at epigenomic and transcriptomic levels. These genes are enriched in pathways regulating ossification and mesenchymal stem cell (MSC) differentiation. Consistently, the differentially accessible regions in OA are enriched for mesenchymal stem cell-specific enhancers and motifs of transcription factor families involved in osteoblast differentiation (e.g. bZIP and ETS).\n\nConclusionsThis study marks the first investigation of accessible chromatin landscape on clinically relevant hard tissues and demonstrates how accessible chromatin profiling can provide comprehensive epigenetic information of a disease. Our analyses provide supportive evidence towards the model of endochondral ossification-like cartilage-to-bone conversion in OA knee cartilage, which is consistent with the OA characteristic of thicker subchondral bone. The identified OA-relevant genes and their enhancers may have a translational potential for diagnosis or drug targets.

genomics

JQ1 affects BRD2-dependent and independent transcription regulation without disrupting H4-hyperacetylated chromatin states

The bromodomain and extra-terminal domain (BET) proteins are promising drug targets for cancer and immune diseases. However, BET inhibition effects have been studied more in the context of bromodomain-containing protein 4 (BRD4) than BRD2, and the BET protein association to histone H4-hyperacetylated chromatin is not understood at the genome-wide level. Here, we report transcription start site (TSS)-resolution integrative analyses of ChIP-seq and transcriptome profiles in human non-small cell lung cancer (NSCLC) cell line H23. We show that di-acetylation at K5 and K8 of histone H4 (H4K5acK8ac) co-localizes with H3K27ac and BRD2 in the majority of active enhancers and promoters, where BRD2 has a stronger association with H4K5acK8ac than H3K27ac. Interestingly, although BET inhibition by JQ1 led to complete reduction of BRD2 binding to chromatin, only local changes of H4K5acK8ac levels were observed. In addition, a remarkable number of BRD2-bound genes, including MYC and its downstream target genes, were transcriptionally upregulated upon JQ1 treatment. Using BRD2-enriched sites and transcriptional activity analysis, we identified candidate transcription factors potentially involved in the JQ1 response in BRD2-dependent and independent manner.

molecular biology

Structure of the triose-phosphate/phosphate translocator reveals the basis of substrate specificity

The triose-phosphate/phosphate translocator (TPT) catalyzes the strict 1:1 exchange of triose phosphate, 3-phosphoglycerate and inorganic phosphate across the chloroplast envelope, and plays crucial roles in photosynthesis. Despite rigorous studies for more than 40 years, the molecular mechanism of TPT is poorly understood due to the lack of structural information. Here we report crystal structures of TPT bound to two different substrates, 3-phosphoglycerate and inorganic phosphate, in occluded conformations. The structures reveal that TPT adopts a 10-transmembrane drug/metabolite transporter fold. Both substrates are bound within the same central pocket, where conserved lysine, arginine, and tyrosine residues recognize the shared phosphate group. A structural comparison with the outward-open conformation of the bacterial drug/metabolite transporter suggests a rocking-type motion of helix bundles, and molecular dynamics simulations support a model in which this helix rocking is tightly coupled to the substrate binding, to ensure strict 1:1 exchange. These results reveal the unique mechanism of sugar phosphate/phosphate exchange by TPT.

biochemistry