TY - JOUR
T1 - DNA methylation and hydroxymethylation analysis using a high throughput and low bias direct injection mass spectrometry platform
AU - Sun, Yan
AU - Stransky, Stephanie
AU - Aguilan, Jennifer
AU - Brenowitz, Michael
AU - Sidoli, Simone
N1 - Funding Information:
The Sidoli lab gratefully acknowledges the Leukemia Research Foundation (Hollis Brownstein New Investigator Research Grant), AFAR (Sagol Network GerOmics award), Deerfield (Xseed award), Merck and the NIH Office of the Director (1S10OD030286-01). We also acknowledge Einstein-Montefiore for the research grant during the SARS-CoV-2 (COVID-19) period, and the Basic Biology of Aging 2020 award sponsored by the Nathan Shock Institute for aging research. We also acknowledge the New York Academy of Sciences (NYAS) and the Japan Agency for Medical Research and Development (AMED) for providing funding via the NAM Healthy Longevity award. He is also grateful to Merck/MSD and Fortune Italia for highlighting the work of our group this year with the Umberto Mortari Award. Finally, Dr. Brenowitz lab and Dr. Sidoli gratefully acknowledge NIGMS for the 5-R01GM129350 grant and Relay Therapeutics for funding the optimization of DI-MS.
Publisher Copyright:
© 2021
PY - 2021/1
Y1 - 2021/1
N2 - DNA modifications are small covalent chemical groups that modify nucleotides to regulate DNA readout. Anomalous abundance and genome-wide localization of these modifications can negatively tune gene expression and propagate into unbalanced epigenetics regulation, which is known to be associated with multiple conditions such as cancer, diabetes and aging. We present a direct injection mass spectrometry (DI-MS) platform that offers fast, accurate and precise quantitation of global levels of DNA cytidine methylation (mC) and hydroxymethylation (hmC) in less than one minute per sample. On the contrary to most methods adopting mass spectrometry for the analysis of nucleotide modifications, in this DI-MS approach we eliminate the use of liquid chromatography, increasing throughput, eliminating issues of carryover and batch effects caused by column contamination across samples. In addition, potential biases in detection efficiency of modified nucleotides with different binding efficiency to stationary phases is eliminated, as no chromatographic separation is adopted. This method can analyze >1000 samples per day, overcoming the throughput of next-generation sequencing. • Direct injection mass spectrometry improves throughput and precision compared to liquid chromatography. • Direct injection can be used to quantify in less than one minute global levels of DNA methylation and hydroxymethylation. • The unbiased acquisition can be potentially utilized to analyze other nucleotide modifications.
AB - DNA modifications are small covalent chemical groups that modify nucleotides to regulate DNA readout. Anomalous abundance and genome-wide localization of these modifications can negatively tune gene expression and propagate into unbalanced epigenetics regulation, which is known to be associated with multiple conditions such as cancer, diabetes and aging. We present a direct injection mass spectrometry (DI-MS) platform that offers fast, accurate and precise quantitation of global levels of DNA cytidine methylation (mC) and hydroxymethylation (hmC) in less than one minute per sample. On the contrary to most methods adopting mass spectrometry for the analysis of nucleotide modifications, in this DI-MS approach we eliminate the use of liquid chromatography, increasing throughput, eliminating issues of carryover and batch effects caused by column contamination across samples. In addition, potential biases in detection efficiency of modified nucleotides with different binding efficiency to stationary phases is eliminated, as no chromatographic separation is adopted. This method can analyze >1000 samples per day, overcoming the throughput of next-generation sequencing. • Direct injection mass spectrometry improves throughput and precision compared to liquid chromatography. • Direct injection can be used to quantify in less than one minute global levels of DNA methylation and hydroxymethylation. • The unbiased acquisition can be potentially utilized to analyze other nucleotide modifications.
KW - Direct injection mass spectrometry (DI-MS)
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U2 - 10.1016/j.mex.2021.101585
DO - 10.1016/j.mex.2021.101585
M3 - Article
AN - SCOPUS:85119452790
SN - 2215-0161
VL - 8
JO - MethodsX
JF - MethodsX
M1 - 101585
ER -