Despite the rapidly increasing capacity to sequence human genomes, our incomplete ability to read and interpret the information content in genomes and epigenomes remain a central challenge. A comprehensive set of regulatory events across a genome - the regulome - is needed to make full use of genomic information, but is currently out of reach for practically all clinical applications and many biological systems The proposed Center will develop technologies that greatly increase the sensitivity, speed, and comprehensiveness of understanding genome regulation. We will develop new technologies to interrogate the transactions between the genome and regulatory factors, such as proteins and noncoding RNAs, and integrate variations in DNA sequences and chromatin states over time and across individuals. Novel molecular engineering and biosensor strategies are deployed to encapsulate the desired complex DNA transformations into the probe system, such that the probe system can be directly used on very small human clinical samples and capture genome-wide information in one or two steps. These technologies will be applied to clinical samples and workflows in real time to exercise their robustness and reveal for the first time epigenomic dynamics of human diseases during progression and treatment. These technologies will be broadly applicable to many biomedical investigations, and the Center will disseminate the technologies via training and diverse means.
How genes are turned on and off govern the outcome and treatments of many human diseases. By making it possible to track all the genetic switches rapidly and comprehensively from small human biopsies, the Center aims to greatly improve the precision and effectiveness of disease diagnosis and treatment, such as for cancer, autoimmunity, and neurodegenerative diseases.
Yost, Kathryn E; Carter, Ava C; Xu, Jin et al. (2018) ATAC Primer Tool for targeted analysis of accessible chromatin. Nat Methods 15:304-305 |
Wang, Kevin C; Chang, Howard Y (2018) Epigenomics: Technologies and Applications. Circ Res 122:1191-1199 |
Karczewski, Konrad J; Snyder, Michael P (2018) Integrative omics for health and disease. Nat Rev Genet 19:299-310 |
Rappoport, Nadav; Toung, Jonathan; Hadley, Dexter et al. (2018) A genome-wide association study identifies only two ancestry specific variants associated with spontaneous preterm birth. Sci Rep 8:226 |
Mezger, Anja; Klemm, Sandy; Mann, Ishminder et al. (2018) High-throughput chromatin accessibility profiling at single-cell resolution. Nat Commun 9:3647 |
Zamanighomi, Mahdi; Lin, Zhixiang; Daley, Timothy et al. (2018) Unsupervised clustering and epigenetic classification of single cells. Nat Commun 9:2410 |
Chan, Charles K F; Gulati, Gunsagar S; Sinha, Rahul et al. (2018) Identification of the Human Skeletal Stem Cell. Cell 175:43-56.e21 |
Tilgner, Hagen; Jahanbani, Fereshteh; Gupta, Ishaan et al. (2018) Microfluidic isoform sequencing shows widespread splicing coordination in the human transcriptome. Genome Res 28:231-242 |
Keating, Brendan J; Pereira, Alexandre C; Snyder, Michael et al. (2018) Applying genomics in heart transplantation. Transpl Int 31:278-290 |
Satpathy, Ansuman T; Saligrama, Naresha; Buenrostro, Jason D et al. (2018) Transcript-indexed ATAC-seq for precision immune profiling. Nat Med 24:580-590 |
Showing the most recent 10 out of 117 publications