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Leszczynska, G.

Publications and source records attributed to Leszczynska, G..

2 recordsLinked to original sources

tRNA Modification Landscapes in Streptococci: Shared Losses and Clade-Specific Adaptations

tRNA modifications are central to bacterial translational control. Here, we integrated genetics, mass spectrometry, epitranscriptomics, and comparative genomics to map the tRNA modification genes of the Gram-positive pathogens Streptococcus mutans and Streptococcus pneumoniae. Both species show a marked loss of modifications dependent on Fe-S enzymes, consistent with a broader trend of Fe-S enzyme reduction in Streptococcus central metabolism. In addition, the D, m1A, m7G, t6A, and i6A modifications were mapped in S. pneumoniae tRNAs, and we confirmed that a unique DusB1 enzyme is responsible for the insertion of all the detectable D modifications. We uncovered differences in queuosine (Q) metabolism: while S. mutans synthesizes Q de novo, S. pneumoniae instead salvages preQ and accumulates the epoxy-Q precursor, a strategy shared with multiple other Streptococci as revealed by analysis of Q pathways in 1,599 sequenced streptococcal genomes. Comparative essentiality profiling of modification genes revealed notable differences, including the essentiality of the NLJ-threonylcarbamoyladenosine (tLJA) synthesis enzyme TsaE in S. pneumoniae but not in S. mutans, which was confirmed by genetic studies. We found that suppressor mutations in asnS encoding asparaginyl-tRNA synthetase (AsnRS) restored viability to {Delta}tsaE mutants, albeit with reduced growth. Our finding highlights the functional importance of modifications in the recognition of tRNAs by aminoacyl-tRNA synthetases.

microbiology↗

Direct RNA Oxford Nanopore sequencing distinguishes between modifications in tRNA at the U34 position

The measurement of tRNA modifications with single transcript resolution has been feasible for only a few modifications due to the lack of available methods. This limitation does not allow to advance basic research studies on the dynamic nature of tRNA modification and its cellular function in time and space, neither to develop modern diagnostic tools for several already known tRNA-dependent human diseases. Nanopore is a well-established sequencing method that has proven to be efficient for the study of RNA. The analysis of tRNA modifications by Nanopore is still under development. We have investigated the efficacy of nanopore technology to discriminate between complex modifications of uridine 34 in tRNA, which affect the base-calling properties of neighbouring bases and are therefore difficult to accurately predict. We have developed new methods to chemically and enzymatically synthesise single modified tRNA molecules with modifications at the anticodon loop. Nanopore technology captures the features produced by uridine with and without a thiol group when present on synthetic tRNA molecules. Thus, Oxford Nanopore Technology (ONT) has great potential for developing strategies to accurately identify the modification status of the tRNA anticodon loop (ACL), which encompasses the most complex modifications on uridine-containing RNA motifs. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=69 SRC="FIGDIR/small/630739v1_ufig1.gif" ALT="Figure 1"> View larger version (14K): org.highwire.dtl.DTLVardef@4317baorg.highwire.dtl.DTLVardef@caf204org.highwire.dtl.DTLVardef@1d7249dorg.highwire.dtl.DTLVardef@1a4f8c8_HPS_FORMAT_FIGEXP M_FIG C_FIG

synthetic biology↗