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Discovery of novel DNA cytosine deaminase activities enables a nondestructive single-enzyme methylation sequencing method for base resolution high-coverage methylome mapping of cell-free and ultra-low input DNA

Romualdas Vaisvila, View ORCID ProfileSean R. Johnson, View ORCID ProfileBo Yan, Nan Dai, Billal M. Bourkia, View ORCID ProfileIvan R. Corrêa Jr., View ORCID ProfileErbay Yigit, View ORCID ProfileZhiyi Sun
doi: https://doi.org/10.1101/2023.06.29.547047
Romualdas Vaisvila
1New England Biolabs Inc., 240 County Road, Ipswich, MA 01938, United States
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  • For correspondence: vaisvila@neb.com sunz@neb.com
Sean R. Johnson
1New England Biolabs Inc., 240 County Road, Ipswich, MA 01938, United States
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Bo Yan
1New England Biolabs Inc., 240 County Road, Ipswich, MA 01938, United States
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Nan Dai
1New England Biolabs Inc., 240 County Road, Ipswich, MA 01938, United States
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Billal M. Bourkia
1New England Biolabs Inc., 240 County Road, Ipswich, MA 01938, United States
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Ivan R. Corrêa Jr.
1New England Biolabs Inc., 240 County Road, Ipswich, MA 01938, United States
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  • ORCID record for Ivan R. Corrêa Jr.
Erbay Yigit
1New England Biolabs Inc., 240 County Road, Ipswich, MA 01938, United States
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Zhiyi Sun
1New England Biolabs Inc., 240 County Road, Ipswich, MA 01938, United States
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  • ORCID record for Zhiyi Sun
  • For correspondence: vaisvila@neb.com sunz@neb.com
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Abstract

Cytosine deaminases have important uses in the detection of epigenetic modifications and in genome editing. However, the range of applications of deaminases is limited by a small number of well characterized enzymes. To expand the toolkit of deaminases, we developed an in-vitro approach that bypasses a major hurdle with their severe toxicity in expression hosts. We systematically assayed the activity of 175 putative cytosine deaminases on an unprecedented variety of substrates with epigenetically relevant base modifications. We found enzymes with high activity on double- and single-stranded DNA in various sequence contexts including novel CpG-specific deaminases, as well as enzymes without sequence preference. We also report, for the first time, enzymes that do not deaminate modified cytosines. The remarkable diversity of cytosine deaminases opens new avenues for biotechnological and medical applications. Using a newly discovered non-specific, modification-sensitive double-stranded DNA deaminase, we developed a nondestructive single-enzyme 5-methylctyosine sequencing (SEM-seq) method. SEM-seq enables accurate, high-coverage, base-resolution methylome mapping of scarce biological material including clinically relevant cell-free DNA (cfDNA) and single-cell equivalent 10 pg input DNA. Using SEM-seq, we generated highly reproducible base-resolution 5mC maps, accounting for nearly 80% of CpG islands for a low input human cfDNA sample offering valuable information for identifying potential biomarkers for detection of early-stage cancer and other diseases. This streamlined protocol will enable robust, high-throughput, high-coverage epigenome profiling of challenging samples in research and clinical settings.

Competing Interest Statement

The authors are employees of New England Biolabs, a manufacturer and vendor of molecular biology reagents.

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The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY-NC-ND 4.0 International license.
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Posted June 30, 2023.
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Discovery of novel DNA cytosine deaminase activities enables a nondestructive single-enzyme methylation sequencing method for base resolution high-coverage methylome mapping of cell-free and ultra-low input DNA
Romualdas Vaisvila, Sean R. Johnson, Bo Yan, Nan Dai, Billal M. Bourkia, Ivan R. Corrêa Jr., Erbay Yigit, Zhiyi Sun
bioRxiv 2023.06.29.547047; doi: https://doi.org/10.1101/2023.06.29.547047
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Discovery of novel DNA cytosine deaminase activities enables a nondestructive single-enzyme methylation sequencing method for base resolution high-coverage methylome mapping of cell-free and ultra-low input DNA
Romualdas Vaisvila, Sean R. Johnson, Bo Yan, Nan Dai, Billal M. Bourkia, Ivan R. Corrêa Jr., Erbay Yigit, Zhiyi Sun
bioRxiv 2023.06.29.547047; doi: https://doi.org/10.1101/2023.06.29.547047

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