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Updated: Dec 6, 2025

An Integrated Platform for Genome-wide Mapping of Chromatin States Using High-throughput ChIP-sequencing in Tumor Tissues
Published on: April 5, 2018
Systematic identification of safe harbor regions in the CHO genome through a comprehensive epigenome analysis
William Hilliard1, Kelvin H Lee1
1Department of Chemical and Biomolecular Engineering, University of Delaware, Newark, Delaware, USA.
Abstract:
The Chinese hamster ovary (CHO) cell lines that are used to produce commercial quantities of therapeutic proteins commonly exhibit a decrease in productivity over time in culture, a phenomenon termed production instability. Random integration of the transgenes encoding the protein of interest into locations in the CHO genome that are vulnerable to genetic and epigenetic instability often causes production instability through copy number loss and silencing of expression. Several recent publications have shown that these cell line development challenges can be overcome by using site-specific integration (SSI) technology to insert the transgenes at genomic loci, often called "hotspots," that are transcriptionally permissive and have enhanced stability relative to the rest of the genome. However, extensive characterization of the CHO epigenome is needed to identify hotspots that maintain their desirable epigenetic properties in an industrial bioprocess environment and maximize transcription from a single integrated transgene copy. To this end, the epigenomes and transcriptomes of two distantly related cell lines, an industrially relevant monoclonal antibody-producing cell line and its parental CHO-K1 host, were characterized using high throughput chromosome conformation capture and RNAseq to analyze changes in the epigenome that occur during cell line development and associated changes in system-wide gene expression. In total, 10.9% of the CHO genome contained transcriptionally permissive three-dimensional chromatin structures with enhanced genetic and epigenetic stability relative to the rest of the genome. These safe harbor regions also showed good agreement with published CHO epigenome data, demonstrating that this method was suitable for finding genomic regions with epigenetic markers of active and stable gene expression. These regions significantly reduce the genomic search space when looking for CHO hotspots with widespread applicability and can guide future studies with the goal of maximizing the potential of SSI technology in industrial production CHO cell lines.
Insights
Site-specific integration (SSI) technology uses genomic hotspots to overcome production instability in Chinese hamster ovary (CHO) cell lines. Characterizing the CHO epigenome identifies stable, transcriptionally permissive regions for enhanced therapeutic protein production.
Area of Science:
- Biotechnology
- Genomics
- Cell Biology
Background:
- Chinese hamster ovary (CHO) cell lines are crucial for therapeutic protein production but suffer from production instability.
- This instability, often caused by random transgene integration, leads to decreased protein yield over time.
- Site-specific integration (SSI) technology offers a solution by targeting stable, transcriptionally active genomic regions ('hotspots').
Purpose of the Study:
- To comprehensively characterize the Chinese hamster ovary (CHO) epigenome and transcriptome.
- To identify stable, transcriptionally permissive genomic 'hotspots' for site-specific integration (SSI).
- To understand epigenetic changes during cell line development and their impact on gene expression.
Main Methods:
- High-throughput chromosome conformation capture (Hi-C) to analyze 3D chromatin structure.
- RNA sequencing (RNA-seq) to assess system-wide gene expression.
- Comparative epigenomic and transcriptomic analysis of an antibody-producing cell line and its parental CHO-K1 host.
Main Results:
- Identified 10.9% of the CHO genome as transcriptionally permissive with enhanced genetic and epigenetic stability.
- These identified 'safe harbor' regions align with previously published CHO epigenome data.
- The method effectively pinpoints genomic regions suitable for stable transgene expression.
Conclusions:
- Characterizing the CHO epigenome is essential for identifying optimal hotspots for SSI technology.
- This approach facilitates the development of more stable and productive CHO cell lines for biopharmaceutical manufacturing.
- The findings provide a foundation for maximizing the potential of SSI in industrial cell line development.

