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McGinity, E. N.

Publications and source records attributed to McGinity, E. N..

2 recordsLinked to original sources

E. coli RsmF activity depends on prior modification of 16S rRNA helix 44

Bacterial ribosomal RNA (rRNA) methylations are important for accurate translation. Four distinct methylations incorporated by RsmE, RsmF, and RsmH/ RsmI form a cluster of three modified 16S rRNA nucleotides (m3U1498, m5C1407, and m4Cm1402) surrounding the decoding center of the 30S subunit. Given their common substrate requirement of a late-stage intermediate 30S subunit, these enzymes likely act contemporaneously during subunit biogenesis, but whether there exists a required modification order is unknown. Here, using hypomethylated 30S subunits obtained from a collection of rsmH/I/E/F-deleted Escherichia coli strains, we identify RsmF activity to be highly dependent on prior modification of h44 both in vitro and in E. coli. RsmF activity on hypomethylated 30S subunits could be partially rescued by prior in vitro methylation using RsmE and RsmH, indicating that incorporation of these methyl groups directly shapes h44 for recognition by RsmF. RNA structure probing using SHAPE-MaP and molecular dynamics simulations reveal specific alterations in 16S rRNA structure and dynamics in the absence of the m4C1402 (RsmH) and m3U1498 (RsmE) modifications that likely restrict RsmF action. These studies thus uncover a previously unappreciated "order of operations" for 16S rRNA modification during ribosome biogenesis with important implications for studies on the collective functions of these modifications. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=57 SRC="FIGDIR/small/736617v1_ufig1.gif" ALT="Figure 1"> View larger version (24K): org.highwire.dtl.DTLVardef@f843cborg.highwire.dtl.DTLVardef@12acb13org.highwire.dtl.DTLVardef@7a8d9eorg.highwire.dtl.DTLVardef@1e7aa5f_HPS_FORMAT_FIGEXP M_FIG C_FIG Key PointsO_LI16S rRNA C1407 modification by RsmF depends on the prior action of RsmE and RsmH in E. coli C_LIO_LIm5C1402/ m3U1498 alter 16S rRNA nucleotide dynamics creating a 30S substrate suitable for RsmF C_LIO_LIAn order of operations exists for h44 modifying enzymes acting at the 30S subunit decoding center C_LI

biochemistry↗

Mechanism of 30S subunit recognition and modification by the conserved bacterial ribosomal RNA methyltransferase RsmI

Ribosomal RNA (rRNA) modifications are important for ribosome function and can influence bacterial susceptibility to ribosome-targeting antibiotics. The universally conserved 16S rRNA nucleotide C1402, for example, is the only 2-O-methylated nucleotide in the bacterial small (30S) ribosomal subunit and this modification fine tunes the shape and structure of the peptidyl tRNA binding site. The Cm1402 modification is incorporated by the conserved bacterial 16S rRNA methyltransferase RsmI, but it is unclear how RsmI is able to recognize its 30S substrate and specifically modify its buried target nucleotide. We determined a 2.42 [A] resolution cryo-EM structure of the RsmI-30S complex and, with accompanying functional analyses, show that RsmI anchors itself to the 30S subunit through multiple contacts with a conserved 16S rRNA surface previously only seen in the assembled subunit. This positions RsmI to induce an extensive h44 distortion to access C1402 that is unprecedented among 16S rRNA methyltransferases characterized to date. These analyses also reveal an essential contribution to 30S subunit interaction made by the previously structurally uncharacterized RsmI C-terminal domain, RsmI-induced RNA-RNA interactions with C1402, and an unappreciated dependence on a divalent metal ion for activity that suggests RsmI may be first of a distinct class of metal- and SAM-dependent RNA O-methyltransferases. This study significantly expands our mechanistic understanding of how intrinsic bacterial methyltransferases like RsmI modify their rRNA targets. Further, recognition of distant ribosome features and extensive unfolding of a critical rRNA functional center point to a potential role in accurate 30S subunit biogenesis.

biochemistry↗