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Identifying TAD-like domains on single-cell Hi-C data by graph embedding and changepoint detection
Erhu Liu1, Hongqiang Lyu2, Yuan Liu2
1School of Information and Control Engineering, Xi'an University of Architecture and Technology, Xi'an 710055, China.
Bioinformatics (Oxford, England)
|March 7, 2024
Summary
We developed scKTLD, a new tool to identify topologically associating domains (TADs) in single-cell Hi-C data. This method effectively reveals conserved TAD boundaries and their regulatory roles, overcoming data sparsity challenges.
Area of Science:
- Genomics
- Computational Biology
- Epigenetics
Background:
- Topologically associating domains (TADs) are key structural units of the 3D genome.
- Single-cell TAD-like domains are crucial for understanding bulk TAD formation and function.
- Identifying TADs in sparse single-cell Hi-C data is computationally challenging.
Purpose of the Study:
- To introduce scKTLD, an computational tool for identifying TAD-like domains in single-cell Hi-C data.
- To analyze the organization and conservation of TAD-like domains at the single-cell level.
- To investigate the regulatory significance of identified TAD boundaries.
Main Methods:
- scKTLD models Hi-C contact matrices as graphs.
- It employs sparse matrix factorization and spectral propagation for dimensionality reduction.
- Kernel-based changepoint detection is used to identify TAD-like domains in the embedded space.
Main Results:
- scKTLD outperforms existing methods on sparse single-cell Hi-C data.
- The study demonstrates conserved TAD-like domain boundaries across single cells.
- High-frequency boundaries are enriched for architectural proteins and epigenetic marks, correlating with bulk TADs.
Conclusions:
- scKTLD provides a robust method for TAD identification in sparse single-cell Hi-C data.
- TAD boundaries exhibit both conservation and heterogeneity at the single-cell level.
- Conserved TAD boundaries play significant roles in genome regulation.

