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Profiling of circular RNA N6 -methyladenosine in moso bamboo (Phyllostachys edulis) using nanopore-based direct RNA
Yongsheng Wang1, Huihui Wang2, Feihu Xi1
1Basic Forestry and Proteomics Research Center, College of life science, Fujian Agriculture and Forestry University, Fuzhou, 350002, China.
Abstract:
N6 -methyladenosine (m6 A) is a prevalent modification in messenger RNAs and circular RNAs that play important roles in regulating various aspects of RNA metabolism. However, the occurrence of the m6 A modification in plant circular RNAs has not been reported. A widely used method to identify m6 A modifications relies on m6 A-specific antibodies followed by next-generation sequencing of precipitated RNAs (MeRIP-Seq). However, one limitation of MeRIP-Seq is that it does not provide the precise location of m6 A at single-nucleotide resolution. Although more recent sequencing techniques such as Nanopore-based direct RNA sequencing (DRS) can overcome such limitations, the technology does not allow sequencing of circular RNAs, as these molecules lack a poly(A) tail. Here, we developed a novel method to detect the precise location of m6 A modifications in circular RNAs using Nanopore DRS. We first enriched our samples for circular RNAs, which we then fragmented and sequenced on the Nanopore platform with a customized protocol. Using this method, we identified 470 unique circular RNAs from DRS reads based on the back-spliced junction region. Among exonic circular RNAs, about 10% contained m6 A sites, which mainly occurred around acceptor and donor splice sites. This study demonstrates the utility of our antibody-independent method in identifying total and methylated circular RNAs using Nanopore DRS. This method has the additional advantage of providing the exact location of m6 A sites at single-base resolution in circular RNAs or linear transcripts from non-coding RNA without poly(A) tails.
Insights
Researchers developed a novel Nanopore sequencing method to precisely locate N6-methyladenosine (m6A) modifications in plant circular RNAs. This antibody-independent approach identifies m6A sites at single-nucleotide resolution, advancing RNA modification studies.
Area of Science:
- Molecular Biology
- RNA Biology
- Genomics
Background:
- N6-methyladenosine (m6A) is a crucial RNA modification impacting RNA metabolism in various organisms.
- Previous methods like MeRIP-Seq lack single-nucleotide resolution for m6A mapping.
- Nanopore Direct RNA Sequencing (DRS) is limited for circular RNAs due to their lack of a poly(A) tail.
Purpose of the Study:
- To develop a novel method for precise m6A site detection in plant circular RNAs.
- To overcome limitations of existing sequencing technologies for circular RNA analysis.
- To identify m6A modifications in circular RNAs using Nanopore DRS.
Main Methods:
- Development of a customized Nanopore DRS protocol for circular RNA enrichment and sequencing.
- Circular RNA identification based on back-spliced junction reads.
- Antibody-independent m6A site detection at single-base resolution.
Main Results:
- Identification of 470 unique circular RNAs from Nanopore DRS reads.
- Approximately 10% of exonic circular RNAs contained m6A sites.
- m6A sites were predominantly located near acceptor and donor splice sites.
Conclusions:
- The novel Nanopore DRS method enables precise, antibody-independent m6A mapping in circular RNAs.
- This technique provides single-nucleotide resolution, overcoming previous technological limitations.
- The findings reveal m6A modification patterns in plant circular RNAs, offering new insights into their regulatory roles.
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