bioRxiv Science⌕ Search

Biology subjects

Bomsztyk, K.

Publications and source records attributed to Bomsztyk, K..

3 recordsLinked to original sources

MultiomicsTracks96: A high throughput PIXUL-Matrix-based toolbox to profile frozen and FFPE tissues multiomes

BackgroundThe multiome is an integrated assembly of distinct classes of molecules and molecular properties, or "omes," measured in the same biospecimen. Freezing and formalin-fixed paraffin-embedding (FFPE) are two common ways to store tissues, and these practices have generated vast biospecimen repositories. However, these biospecimens have been underutilized for multi-omic analysis due to the low throughput of current analytical technologies that impede large-scale studies. MethodsTissue sampling, preparation, and downstream analysis were integrated into a 96-well format multi-omics workflow, MultiomicsTracks96. Frozen mouse organs were sampled using the CryoGrid system, and matched FFPE samples were processed using a microtome. The 96-well format sonicator, PIXUL, was adapted to extract DNA, RNA, chromatin, and protein from tissues. The 96-well format analytical platform, Matrix, was used for chromatin immunoprecipitation (ChIP), methylated DNA immunoprecipitation (MeDIP), methylated RNA immunoprecipitation (MeRIP), and RNA reverse transcription (RT) assays followed by qPCR and sequencing. LC-MS/MS was used for protein analysis. The Segway genome segmentation algorithm was used to identify functional genomic regions, and linear regressors based on the multi-omics data were trained to predict protein expression. ResultsMultiomicsTracks96 was used to generate 8-dimensional datasets including RNA-seq measurements of mRNA expression; MeRIP-seq measurements of m6A and m5C; ChIP-seq measurements of H3K27Ac, H3K4m3, and Pol II; MeDIP-seq measurements of 5mC; and LC-MS/MS measurements of proteins. We observed high correlation between data from matched frozen and FFPE organs. The Segway genome segmentation algorithm applied to epigenomic profiles (ChIP-seq: H3K27Ac, H3K4m3, Pol II; MeDIP-seq: 5mC) was able to recapitulate and predict organ-specific super-enhancers in both FFPE and frozen samples. Linear regression analysis showed that proteomic expression profiles can be more accurately predicted by the full suite of multi-omics data, compared to using epigenomic, transcriptomic, or epitranscriptomic measurements individually. ConclusionsThe MultiomicsTracks96 workflow is well suited for high dimensional multi-omics studies - for instance, multiorgan animal models of disease, drug toxicities, environmental exposure, and aging as well as large-scale clinical investigations involving the use of biospecimens from existing tissue repositories.

systems biology↗

CryoGrid-PIXUL-RNA: High throughput RNA isolation platform for tissue transcript analysis

Disease molecular complexity requires high throughput workflows to map disease pathways through analysis of vast tissue repositories. Great progress has been made in life sciences analytical technologies. To match the high throughput of these advanced analytical platforms, we have previously developed a multipurpose microplate sonicator, PIXUL, that can be used in multiple workflows to extract analytes from cultured cells and tissue fragments for various downstream molecular assays. And yet, the sample preparation devices, such as PIXUL, along with the downstream analytical capabilities have not been fully exploited to interrogate tissues because storing and sampling of such specimens remain, in comparison, inefficient. To mitigate this bottleneck, we have developed a low-cost user-friendly system, the CryoGrid, that consists of CryoBlock, thermometer/thermocouple, and QR coded CryoTrays to freeze and store frozen tissue fragments, and hand-held CryoCore tool for tissue sampling supported by iPad and Google apps to display tissues, direct coring and share metadata. RNA is one of the most studied analytes. There is a decades-long history of developing methods to isolate and analyze RNA. Still, the throughput of sampling and RNA extraction from tissues has not matched that of the high throughput transcriptome analytical platforms. To address this need, we have integrated the CryoGrid system with PIXUL-based methods to isolate RNA for gene-specific qPCR and genome-wide transcript analyses. TRIzol is commonly used to isolate RNA but it is labor-intensive, hazardous, requires fume-hoods, and is an expensive reagent. We developed a PIXUL-based TRIzol-free RNA isolation fast protocol that uses a buffer containing proteinase K (PK). Virtually every disease (and often therapeutic agents toxicity) is a systemic syndrome but often only one organ is examined. CryoGrid-PIXUL, integrated with either TRIzol or PK buffer RNA isolation protocols, yielded similar RNA profiles in a multiorgan (brain, heart, kidney and liver) mouse model of sepsis. Thus, RNA isolation using the CryoGrid-PIXUL system combined with the PK buffer offers an inexpensive user-friendly workflow to study transcriptional responses in tissues in health and disease as well as in therapeutic interventions.

molecular biology↗

Computer Designed PRC2 Inhibitor, EBdCas9, Reveals Functional TATA boxes in Distal Promoter Regions

The critical process in development, bifurcation of cellular fates, requires epigenetic H3K27me3 marks propagated by PRC2 complex. However, the precise chromatin loci of functional H3K27me3 marks are not yet known. Here we identify critical PRC2 functional sites at a single nucleosome resolution. We fused a computationally designed protein, EED binder (EB) that competes with EZH2 and thereby disrupts PRC2 function, to dCas9 (EBdCas9) to direct PRC2 inhibition at a precise locus using gRNA. We targeted EBdCas9 to 4 different genes (TBX18, p16, CDX2 and GATA3) and observed epigenetic remodeling at a single nucleosome resolution resulting in gene activation. Remarkably, while traditional TATA box is located 30bp upstream of TSS, we identified a functional TATA box, >500bp of TSS, normally repressed by PRC2 complex. Deletion of this TATA box eliminates EBdCas9 dependent TBP recruitment and transcriptional activation. Targeting EBdCas9 to CDX2 and GATA3 results in trophoblast trans-differentiation. EBdCas9 technology is broadly applicable for epigenetic regulation at a single locus to control gene expression. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=189 SRC="FIGDIR/small/385922v1_ufig1.gif" ALT="Figure 1"> View larger version (62K): org.highwire.dtl.DTLVardef@1da108borg.highwire.dtl.DTLVardef@17447ddorg.highwire.dtl.DTLVardef@11a188forg.highwire.dtl.DTLVardef@426022_HPS_FORMAT_FIGEXP M_FIG C_FIG

molecular biology↗