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Sample Preparation for Mass Spectrometry-based Identification of RNA-binding Regions
Published on: September 28, 2017
Characterization of METTL16 as a cytoplasmic RNA binding protein
Daniel J Nance1, Emily R Satterwhite1, Brinda Bhaskar1
1Department of Biochemistry and Molecular Biology, Brody School of Medicine, East Carolina University, Greenville, North Carolina, United States of America.
Abstract:
mRNA modification by N6-methyladenosine (m6A) is involved in many post-transcriptional regulation processes including mRNA stability, splicing and promotion of translation. Accordingly, the recently identified mRNA methylation complex containing METTL3, METTL14, and WTAP has been the subject of intense study. However, METTL16 (METT10D) has also been identified as an RNA m6A methyltransferase that can methylate both coding and noncoding RNAs, but its biological role remains unclear. While global studies have identified many potential RNA targets of METTL16, only a handful, including the long noncoding RNA MALAT1, the snRNA U6, as well as the mRNA MAT2A have been verified and/or studied to any great extent. In this study we identified/verified METTL16 targets by immunoprecipitation of both endogenous as well as exogenous FLAG-tagged protein. Interestingly, exogenously overexpressed METTL16 differed from the endogenous protein in its relative affinity for RNA targets which prompted us to investigate METTL16's localization within the cell. Surprisingly, biochemical fractionation revealed that a majority of METTL16 protein resides in the cytoplasm of a number of cells. Furthermore, siRNA knockdown of METTL16 resulted in expression changes of a few mRNA targets suggesting that METTL16 may play a role in regulating gene expression. Thus, while METTL16 has been reported to be a nuclear protein, our findings suggest that METTL16 is also a cytoplasmic methyltransferase that may alter its RNA binding preferences depending on its cellular localization. Future studies will seek to confirm differences between cytoplasmic and nuclear RNA targets in addition to exploring the physiological role of METTL16 through long-term knockdown.
Insights
METTL16, an RNA methyltransferase, is found in the cytoplasm, not just the nucleus. This cytoplasmic localization may influence its RNA targets and gene expression regulation.
Area of Science:
- Molecular Biology
- Epigenetics
- RNA Biology
Background:
- N6-methyladenosine (m6A) modification regulates mRNA stability, splicing, and translation.
- The METTL3-METTL14-WTAP complex is a known m6A methyltransferase.
- METTL16 is identified as an RNA m6A methyltransferase, but its biological role is unclear.
Purpose of the Study:
- To identify and verify RNA targets of METTL16.
- To investigate the cellular localization of METTL16.
- To explore the functional role of METTL16 in gene expression.
Main Methods:
- Immunoprecipitation of endogenous and exogenous FLAG-tagged METTL16.
- Biochemical fractionation to determine protein localization.
- siRNA knockdown of METTL16 to assess gene expression changes.
Main Results:
- METTL16 targets were identified and verified.
- Exogenous METTL16 showed different RNA target affinities compared to endogenous METTL16.
- Biochemical fractionation revealed METTL16 predominantly resides in the cytoplasm.
- METTL16 knockdown led to changes in mRNA target expression.
Conclusions:
- METTL16 functions as a cytoplasmic RNA methyltransferase, in addition to its previously reported nuclear role.
- Cellular localization may influence METTL16's RNA binding preferences.
- METTL16 plays a role in regulating gene expression.
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