Epitranscriptome analysis of NAD-capped RNA by spike-in-based normalization and prediction of chronological age

  • iScience. 2023 Nov 22;26(12):108558. doi: 10.1016/j.isci.2023.108558.
Dean Li  1  2 Shuwen Ge  1  2 Yandong Liu  3 Miaomiao Pan  4  5 Xueting Wang  1  2 Guojing Han  3 Sili Zou  3 Rui Liu  6 Kongyan Niu  1  2 Chao Zhao  4 Nan Liu  1  4  7 Lefeng Qu  3
Affiliations
  • 1. Interdisciplinary Research Center on Biology and Chemistry, Shanghai Institute of Organic Chemistry, Chinese Academy of Sciences, 100 Hai Ke Road, Pudong, Shanghai 201210, China.
  • 2. University of Chinese Academy of Sciences, Beijing 100049, China.
  • 3. Department of Vascular and Endovascular Surgery, Chang Zheng Hospital, Naval Medical University, Shanghai 200003, China.
  • 4. National Clinical Research Center for Aging and Medicine, Huashan Hospital, School of Basic Medical Sciences, Shanghai Medical College, Fudan University, 131 Dong An Road, Shanghai 200032, China.
  • 5. Metalife Biotechnology, 1000 Zhen Chen Road, Baoshan, Shanghai 200444, China.
  • 6. Singlera Genomics, 500 Fu Rong Hua Road, Pudong, Shanghai 201204, China.
  • 7. Shanghai Key Laboratory of Aging Studies, 100 Hai Ke Road, Pudong, Shanghai 201210, China.
Abstract

Nicotinamide Adenine dinucleotide (NAD) can be used as an initiating nucleotide in RNA transcription to produce NAD-capped RNA (NAD-RNA). RNA modification by NAD that links metabolite with expressed transcript is a poorly studied epitranscriptomic modification. Current NAD-RNA profiling methods involve multi-steps of chemo-enzymatic labeling and affinity-based enrichment, thus presenting a critical analytical challenge to remove unwanted variations, particularly batch effects. Here, we propose a computational framework, enONE, to remove unwanted variations. We demonstrate that designed spike-in RNA, together with modular normalization procedures and evaluation metrics, can mitigate technical noise, empowering quantitative and comparative assessment of NAD-RNA across different datasets. Using enONE and a human aging cohort, we reveal age-associated features of NAD-capping and further develop an accurate RNA-based aging clock that combines signatures from both transcriptome and NAD-modified epitranscriptome. enONE facilitates the discovery of NAD-RNA responsive to physiological changes, laying an important foundation for functional investigations into this modification.

Keywords
Computational bioinformatics; Methodology in biological sciences; Sequence analysis; Transcriptomics.
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