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Sequence-specific Labeling of Nucleic Acids and Proteins with Methyltransferases and Cofactor Analogues
Published on: November 22, 2014
Aminoacylation of undermethylated mammalian transfer RNA
Abstract:
To study the role of 5-methylcytidine in the aminoacylation of mammalian tRNA, bulk tRNA specifically deficient in 5-methylcytidine was isolated from the livers of mice treated with 5-azacytidine (18 mg/kg) for 4 days. For comparison, more extensively altered tRNA was isolated from the livers of mice treated with DL-ethionine (100 mg/kg) plus adenine (48 mg/kg) for 3 days. The amino acid acceptor capacity of these tRNAs was determined by measuring the incorporation of one of eight different 14C-labeled amino acids or a mixture of 14C-labeled amino acids in homologous assays using a crude synthetase preparation isolated from untreated mice. The 5-methylcytidine-deficient tRNA incorporated each amino acid to the same extent as fully methylated tRNA. The tRNA from DL-ethionine-treated livers showed an overall decreased amino-acylation capacity for all amino acids tested. The 5-methylcytidine-deficient tRNA from DL-ethionine-treated mice were further characterized as substrates in homologous rate assays designed to determine the Km and V of the aminoacylation reaction using four individual 14C-labeled amino acids and a mixture of 14C-labeled amino acids. The Km and V of the reactions for all amino acids tested using 5-methylcytidine-deficient tRNA as substrate were essentially the same as for fully methylated tRNA. However, the Km and V were increased when liver tRNA from mice treated with DL-ethionine plus adenine was used as substrate in the rate reaction with [14C]lysine as label. Our results suggest that although extensively altered tRNA is a poorer substrate than control tRNA in both extent and rate of aminoacylation, 5-methylcytidine in mammalian tRNA is not involved in the recognition of the tRNA by the synthetase as measured by aminoacylation activity.
Insights
5-methylcytidine is not essential for mammalian transfer RNA (tRNA) aminoacylation. Studies show that tRNA lacking this modification maintains amino acid acceptor capacity, indicating it does not affect tRNA synthetase recognition.
Area of Science:
- Biochemistry
- Molecular Biology
- Epigenetics
Background:
- Transfer RNA (tRNA) undergoes various modifications, including methylation, which can influence its function.
- 5-methylcytidine is a modified base found in tRNA, but its specific role in aminoacylation remains unclear.
- Investigating modified tRNA is crucial for understanding gene expression regulation.
Purpose of the Study:
- To determine the role of 5-methylcytidine in the aminoacylation of mammalian tRNA.
- To assess the impact of 5-methylcytidine deficiency on tRNA's ability to bind amino acids.
- To compare the aminoacylation kinetics of normal, 5-methylcytidine-deficient, and extensively altered tRNA.
Main Methods:
- Isolation of bulk tRNA deficient in 5-methylcytidine from 5-azacytidine-treated mouse livers.
- Isolation of extensively altered tRNA from DL-ethionine and adenine-treated mouse livers.
- Measurement of amino acid acceptor capacity and aminoacylation reaction kinetics (Km and Vmax) using 14C-labeled amino acids and crude synthetase preparations.
Main Results:
- tRNA specifically deficient in 5-methylcytidine exhibited normal amino acid acceptor capacity.
- Extensively altered tRNA from DL-ethionine-treated livers showed reduced aminoacylation capacity.
- Kinetic analysis revealed no significant differences in Km and Vmax for 5-methylcytidine-deficient tRNA compared to controls, but altered kinetics for DL-ethionine plus adenine-treated tRNA.
Conclusions:
- 5-methylcytidine is not involved in the recognition of mammalian tRNA by aminoacyl-tRNA synthetases.
- Extensive tRNA alterations, beyond 5-methylcytidine deficiency, can impair aminoacylation.
- The study clarifies the specific role of 5-methylcytidine in tRNA function.
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