Cleveland Clinic Lerner Research Institute Logo
Cleveland Clinic Lerner Research Institute Logo
  • About
  • Science
    • Laboratories
    • Office of Research Development
    • Clinical & Translational Research
      Participating in Research
    • Departments
      Biomedical Engineering Cancer Biology Cardiovascular & Metabolic Sciences Florida Research & Innovation Center Genomic Medicine Immunotherapy & Precision Immuno-Oncology
      Infection Biology Inflammation & Immunity Neurosciences Ophthalmic Research Quantitative Health Sciences Translational Hematology & Oncology Research
    • Centers & Programs
      Advanced Musculoskeletal Imaging Angiogenesis Center Cardiovascular Diagnostics & Prevention Computational Life Sciences Consortium for Pain Genitourinary Malignancies Research Genome Center
      Microbiome & Human Health Musculoskeletal Research Northern Ohio Alcohol Center Pathogen & Human Health Research Populations Health Research Quantitative Metabolic Research Therapeutics Discovery
  • Core Services
    • Ohio
      3D Printing Bioimage AnalysisBioRobotics & Mechanical Testing Cell Culture Cleveland Clinic BioRepository Computational Oncology Platform Computing Services Discovery Lab Electron Microscopy Electronics Engineering
      Flow CytometryGenomic Medicine Institute Biorepository Genomics Glassware Histology Hybridoma Immunohistochemistry Immunomonitoring Lab Instrument Refurbishing & Repair Laboratory Diagnostic
      Lerner Research Institute BioRepository Light MicroscopyMechanical Prototyping Microbial Culturing & Engineering Microbial Sequencing & Analytics Resources Media Preparation Molecular Biotechnology Nitinol Polymer Proteomics & Metabolomics Therapeutics Discovery
    • Florida
      Bioinformatics
      Flow Cytometry
      Imaging
  • Education & Training
    • Graduate Programs Molecular Medicine PhD Program Postdoctoral Program
      Research Intensive Summer Experience (RISE) Undergraduate & High School Programs
  • News
  • Careers
    • Faculty Positions Research Associate & Project Staff Postdoctoral Positions Technical & Administrative Engagement & Belonging
  • Donate
  • Contact
  • About
  • Science
    • Scientific Programs
    • Laboratories
    • Office of Research Development
    • Clinical & Translational Research
      Participating in Research
    • Departments
      Biomedical Engineering Cancer Biology Cardiovascular & Metabolic Sciences Florida Research & Innovation Center Genomic Medicine Immunotherapy & Precision Immuno-Oncology
      Infection Biology Inflammation & Immunity Neurosciences Ophthalmic Research Quantitative Health Sciences Translational Hematology & Oncology Research
    • Centers & Programs
      Advanced Musculoskeletal Imaging Angiogenesis Center Cardiovascular Diagnostics & Prevention Computational Life Sciences Consortium for Pain Genitourinary Malignancies Research Genome Center
      Microbiome & Human Health Musculoskeletal Research Northern Ohio Alcohol Center Pathogen & Human Health Research Populations Health Research Quantitative Metabolic Research Therapeutics Discovery
  • Core Services
    • All Cores
    • Ohio
      3D Printing Bioimage Analysis BioRobotics & Mechanical Testing Cell Culture Cleveland Clinic BioRepository Computational Oncology Platform Computing Services Discovery Lab Electron Microscopy Electronics Engineering >
      Flow CytometryGenomic Medicine Institute BiorepositoryGenomics Glassware Histology Hybridoma Immunohistochemistry Immunomonitoring Lab Instrument Refurbishing & Repair Laboratory Diagnostic
      Lerner Research Institute BioRepository Light MicroscopyMechanical Prototyping Microbial Culturing & Engineering Microbial Sequencing & Analytics Resources Media Preparation Molecular Biotechnology Nitinol Polymer Proteomics & Metabolomics Therapeutics Discovery
    • Florida
      Bioinformatics
      Flow Cytometry
      Imaging
  • Education & Training
    • Research Education & Training Center
    • Graduate Programs Molecular Medicine PhD Program Postdoctoral Program
      Research Intensive Summer Experience (RISE) Undergraduate & High School Programs
  • News
  • Careers
    • Faculty Positions Research Associate & Project Staff Postdoctoral Positions Technical & AdministrativeEngagement & Belonging
  • Donate
  • Contact
  • Search

Research News

❮News Computational Method Identifies Chromatin Loops at Single-Cell Resolution

08/26/2021

Computational Method Identifies Chromatin Loops at Single-Cell Resolution

Dr. Hu and collaborators developed a new method, SnapHiC, to study chromatin spatial organization in single cells to help reveal mechanisms governing gene regulation and disease etiology.

According to new findings published in Nature Methods, a team of researchers co-led by Ming Hu, PhD, Department of Quantitative Health Sciences, and Bing Ren, PhD, University of California, San Diego, have developed a novel computational method, called SnapHiC, to study chromatin spatial organization in single cells of complex human tissues.

Chromatin is the material within chromosomes that contain DNA and proteins. The 23 pairs of human chromosomes, which measure six-feet long in total length, are packed into an extremely small cellular compartment called the nucleus. In order to fit within this tiny space, the chromatin fibers have to be folded very carefully in a way that does not impede critical cellular processes, such as gene expression and DNA replication. Dysregulation of chromatin folding has been implicated in various diseases.

"While single cell genomics technologies exist to map chromatin architecture in individual cells of complex tissues, it is still challenging to map chromatin loops at high resolution," said Dr. Hu. "We developed a computational method named SnapHiC that harnesses data generated from existing technologies to more accurately identify chromatin loops at high resolution in single cells."

SnapHiC demonstrates high sensitivity and utility for complex tissues

The researchers benchmarked the performance of SnapHiC against existing methods using sample sizes ranging from tens to several hundred cells. They found that SnapHiC could identify more chromatin loops for all sample sizes than conventional approaches developed for bulk samples. In addition, SnapHiC detected previously identified loops from bulk cell data with as few as 75 or 100 cells, while the other methods required at least four times more cells to find the same loops. 

"Our data demonstrate SnapHiC's high sensitivity, which is particularly useful since collecting a large number of cells can be cost prohibitive as well as impractical for rare cell types found in complex tissues," noted Dr. Hu.

To further explore SnapHiC's utility for complex tissues, they applied SnapHiC to cells from the prefrontal cortex of the human brain. The researchers found chromatin loops specific to individual brain cell types that correlated with gene expression and epigenetic markers (external modifications to DNA that tell genes to switch on or off).

"Chromatin loops enable regulatory DNA sequences to contact genes and influence their expression, so being able to identify and study these loops can provide insights into the genes involved in various diseases and conditions," said Dr. Ren, a co-principal investigator of the five-year, $6.5 million grant from the National Institutes of Health that funded this research. Dr. Hu is a co-investigator on the grant, which is part of the 4D Nucleome program.

Dr. Ren continued, "Altogether, our study demonstrates that SnapHiC has the potential to facilitate the study of gene regulation mechanisms and causes of disease in a cell type-specific manner."

Miao Yu, PhD, a former postdoctoral fellow in Dr. Ren's lab and currently an assistant professor at Fudan University in China, and Armen Abnousi, PhD, a former postdoctoral fellow in Dr. Hu's lab, are co-first authors on the study.

Featured Experts
Ming Hu Headshot
Ming
Hu, PhD
News Category
news
Related News
Dr. Liangqi “Frank” Xie receives NIH award $1.5 million for “exceptionally creative” cancer research programCleveland Clinic Joins New Consortium to Map Nuclear DNA in Four-DimensionComputational Biologist Dr. Ming Hu Receives $2.4M NIH Genomic Innovator Award

Research areas

Quantitative Health Sciences

Want To Support Ground-Breaking Research at Cleveland Clinic?

Discover how you can help Cleveland Clinic save lives and continue to lead the transformation of healthcare.

Give to Cleveland Clinic

Subscribe to get the latest research news in your inbox.

About Lerner

About Us Careers Contact Us Donate People Directory

Science

Clinical & Translational Research Core Services Departments, Centers & Programs Laboratories Research News

Education & Training

Graduate Programs Molecular Medicine PhD Program Postdoctoral Program RISE Program Undergraduate & High School Programs

Site Information & Policies

Search Site Site Map Privacy Policy Social Media Policy

9500 Euclid Avenue, Cleveland, Ohio 44195 | © 2025 Lerner Research Institute