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Principal Investigator: Mahesh B Chandrasekharan
Organization: UTAH STATE HIGHER EDUCATION SYSTEM--UNIVERSITY OF UTAH
Fiscal Year: 2022
Award: $190,625
Funding agency: National Human Genome Research Institute
Project summary: ChIP-seq has enabled the mapping of genomic occupancy of many chromatin factors and
epigenetic histone modifications, linked to normal growth and development and to the pathogenesis of many
human diseases. ChIP-seq can also measure changes in the occupancy levels of epigenomic marks/factors
between different chromatin samples such as control vs drug-treated cells. However, accurate quantitation in
ChIP-seq requires effective and reliable sample normalization. ChIP with reference exogenous genome or ChIP-
Rx devised by Orlando et al (2014) provides a rigorous normalization approach via addition of crosslinked
Drosophila S2 cells (reference exogenous chromatin) with crosslinked human cells on a per-cell basis. Antibody
cross-reactivity to the exogenous and experimental test chromatin is critical for the success of this spike-in
approach. Exogenous reference species Drosophila, C. glabrata and S. pombe do not share many of the
epigenomic/chromatin factors with the experimental human/mouse or S. cerevisiae models. Moreover, lack of
“ChIP grade” antibody has led to epitope tagging of chromatin factors. To overcome the antibody cross-reactivity
barriers, we hypothesized that a chromatin-binding protein in the exogenous reference genome when fused to
the IgG-binding domains of Protein A and G (PAG tag) will cross-react with antibodies raised in rabbit or mouse
recognizing epigenomic/chromatin factors or epitope-tags, and thus can serve as an ‘one-for-all or pan spike-in’
for normalization. Based on successfully using a C. glabrata ‘pan spike-in’ exogenous reference for normalization
and measurement of chromatin occupancy differences for epigenome-modulating factors in S. cerevisiae, we
propose to now create a Drosophila S2R+ ‘pan spike-in’ reference genome for ChIP-Rx in human or mouse
cells. We propose to also create S. pombe ‘pan spike-in’ reference genome as a non-pathogenic alternative to
C. glabrata, and a ‘pan spike-in’ S. cerevisiae reference for ChIP-Rx in S. pombe, all in Aim 1. We will validate
the utility of the created ‘pan-spike-in’ genomes for normalization by measuring the subunit-dependent chromatin
occupancy of Set1 H3K4 methyltransferase from yeast to humans using ChIP-Rx (Aim 2). In Aim 3, we propose
to diversify the ‘pan-spike-in’ normalization system by testing other immunoglobulin-binding domains to capture
goat or chicken IgG. Overall, successful completion of the proposed studies will lead to the creation of valuable
reagents for not only epigenomics/chromatin researchers but also to the broader research community, by
providing a robust and accurate normalization methodology for ChIP-seq to quantify epigenome differences
among cell populations, treatments and genomic states. The studies resulting from using the ‘pan spike-in’
system generated here will yield novel mechanistic insights and also enable accurate quantitation of global and
local chromatin modifications that is needed for the discovery and characterization of epigenome regulators and
for the drugs targeting them in a variety of human diseases ranging from developmental, metabolic, neurological
disorders to cancers.
Terms: <7S Gamma Globulin><APF-1><ATP-Dependent Proteolysis Factor 1><Animal Model><Animal Models and Related Studies><Antibodies><Antigenic Determinants><Antigens><Baker's Yeast><Binding><Binding Determinants><Binding Proteins><Body Tissues><Brewer's Yeast><Cancers><Candida glabrata><Caprine Species><Cell Body><Cell Communication and Signaling><Cell Line><Cell Signaling><CellLine><Cells><ChIP Sequencing><ChIP-seq><Chickens><Chromatin><Communities><Complex><Data><Detection><Development><Disadvantaged><Disease><Disorder><Domestic Rabbit><Drosophila><Drosophila genus><Drug Targeting><Drugs><EC 2.1.1><Epigenetic><Epigenetic Change><Epigenetic Mechanism><Epigenetic Process><Epitopes><Fission Yeast><Gallus domesticus><Gallus gallus><Gallus gallus domesticus><Gene Transcription><Genetic Alteration><Genetic Change><Genetic Transcription><Genetic defect><Genome><Genomic Segment><Genomics><Goat><Goats Mammals><Growth and Development><Growth and Development function><HMG-20><High Mobility Protein 20><Histone H2B><Human><IgG><Immune Globulins><Immune Precipitation><Immunoglobulin G><Immunoglobulins><Immunoprecipitation><Intracellular Communication and Signaling><Investigators><Ligand Binding Protein><Ligand Binding Protein Gene><Link><Maintenance><Malignant Neoplasms><Malignant Tumor><Masks><Measurement><Measures><Medication><Metabolic><Methodology><Methods><Methylation><Methyltransferase><Mice><Mice Mammals><Modeling><Modern Man><Molecular><Molecular Interaction><Murine><Mus><Mutation><Nervous System Diseases><Neurologic Disorders><Neurological Disorders><Oryctolagus cuniculus><Pathogenesis><Pharmaceutic Preparations><Pharmaceutical Preparations><Population><Protein Binding><Protein Binding Domain><Protein Binding Motif><Protein-Protein Interaction Domain><RNA Expression><Rabbits><Rabbits Mammals><Reagent><Regulatory Element><Reporting><Research><Research Personnel><Researchers><S cerevisiae><S pombe><S. cerevisiae><S. pombe><Saccharomyces cerevisiae><Sampling><Schizosaccharomyces pombe><Signal Transduction><Signal Transduction Systems><Signaling><Strains Cell Lines><System><Techniques><Testing><Tissues><Torulopsis glabrata><Transcription><Ubiquitin><Work><Yeasts><base><biological signal transduction><bound protein><cell type><chromatin immunoprecipitation-sequencing><chromatin modification><cross reactivity><cross-link><crosslink><cultured cell line><developmental><drug/agent><epigenome><epigenomics><experiment><experimental research><experimental study><fruit fly><genome mutation><genomic region><histone modification><human disease><immunogen><insight><malignancy><methylase><model of animal><model organism><neoplasm/cancer><nervous system disorder><neurological disease><novel><reference assembly><reference genome><success><transmethylase>