bioRxiv Science⌕ Search

Biology subjects

Roehling, P. N.

Publications and source records attributed to Roehling, P. N..

2 recordsLinked to original sources

The Escherichia coli Radical SAM Enzyme YhcC Substitutes for the FAD-Dependent Oxidase Activity of MnmC in 5-Methylaminomethyl-2-Thiouridine tRNA Modification Under Anaerobic Conditions

tRNA wobble uridines are heavily modified to influence anticodon-codon pairing and tune anticodon stem-loop structure for efficient, accurate translation. Many bacteria and some archaea modify wobble uridines with either a 5-carboxymethylaminomethyl (cmnm5) or 5-methylaminomethyl (mnm5) group, often together with a 2-thio (s2) moiety. Bacteria utilize the conserved MnmEG complex to produce cmnm5U, which is further converted to mnm5U by non-orthologous enzymes in different lineages. Escherichia coli uses the bifunctional enzyme MnmC to demodify cmnm5U to nm5U and subsequently methylate nm5U to mnm5U whereas Bacillus subtilis relies on the radical SAM (rSAM) enzyme MnmL and the stand-alone methylase MnmM. Although E. coli and related bacteria encode homologs of MnmL, the function of the E. coli homolog, YhcC, remained unknown. Here, we show that YhcC is required for cmnm5s2 U demodification in vivo during anaerobic growth, whereas the equivalent MnmC-dependent reaction requires O2 and occurs only aerobically. In vitro, purified [4Fe-4S]-reconstituted YhcC binds tRNA and catalyzes nm5s2U-tRNA synthesis from cmnm5s2U-tRNA. Together, these results define the previously unknown function of the E. coli rSAM enzyme YhcC and demonstrate that it replaces MnmC under anaerobic conditions to generate nm5s2U. These parallel pathways reveal how E. coli maintains synthesis of a critical wobble-base modification under both aerobic and anaerobic growth conditions.

biochemistry↗

Elp3 uses a conserved molecular tunnel to transport acetate between distant active sites and catalyze tRNA wobble base modification

The radical SAM enzyme Elp3 and eukaryotic Elongator complex catalyze formation of a key intermediate transfer RNA (tRNA) modification, 5-carboxymethyluridine (cm5U), in the anticodons of tRNAs across all domains of life. cm5U-derived modifications are important for fine tuning codon-anticodon interactions and efficient protein translation, and defects in this modification are linked to development of neurodegenerative disease in humans. Here we reconstitute tRNA modification activity with a model Elp3 enzyme and combine structural analyses, enzymology, and isotope incorporation experiments to show Elp3 harbors a conserved molecular tunnel that shuttles free acetate molecules from the acetyl-CoA binding domain to the radical SAM active site over 20 [A] away, where acetate undergoes radical-mediated reaction and addition to tRNA U34. Our model explains how Elp3 and Elongator bridge a large distance between active sites to catalyze tRNA carboxymethylation and illustrate a unique mechanism for intermediate transport in radical SAM enzymes. Graphical AbstractThe radical SAM enzyme Elp3 installs a critical tRNA wobble base modification in organisms across all domains of life. Here, the authors show how Elp3 uses a conserved molecular tunnel to transport acetate between distant Elp3 active sites to catalyze tRNA carboxymethylation, revealing a new mechanism for Elp3 and Elongator-mediated tRNA modification and the first example of acetate transport through an enzyme tunnel. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=115 SRC="FIGDIR/small/652618v1_ufig1.gif" ALT="Figure 1"> View larger version (48K): org.highwire.dtl.DTLVardef@b3c25eorg.highwire.dtl.DTLVardef@19dd2b6org.highwire.dtl.DTLVardef@74d07corg.highwire.dtl.DTLVardef@123896f_HPS_FORMAT_FIGEXP M_FIG C_FIG

biochemistry↗