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bioRxiv · 10.1101/605931

Selective translation by alternative bacterial ribosomes

Abstract

Alternative ribosome subunit proteins are prevalent in the genomes of diverse bacterial species but their functional significance is controversial. Attempts to study microbial ribosomal heterogeneity have mostly relied on comparing wild-type strains with mutants in which subunits have been deleted, but this approach does not allow direct comparison of alternate ribosome isoforms isolated from identical cellular contexts. Here, by simultaneously purifying canonical and alternative RpsR ribosomes from Mycobacterium smegmatis, we show that alternative ribosomes have distinct translational features compared with their canonical counterparts. Both alternative and canonical ribosomes actively take part in gene translation, although they translate a subset of genes with differential efficiency as measured by ribosome profiling. We also show that alternative ribosomes have a relative defect in initiation complex formation. Our work convincingly confirms the distinct and non-redundant contribution of alternative bacterial ribosomes for adaptation to hostile environments.\n\nSignificance StatementMany organisms, including most bacteria code for multiple paralogues of some ribosomal protein subunits. The relative contribution of these alternative subunits to ribosome function and gene translation is unknown and controversial. Furthermore, many studies on alternative ribosomes have been confounded by isolation of alternative and canonical ribosomes from different strains and/ or different growth conditions, potentially confounding results. Here, we show unequivocally that one form of alternative ribosome from Mycobacterium smegmatis actively engages in gene translation, but its translational profile from an identical cellular context is subtly different from canonical ribosomes. Given the prevalence of alternative ribosomal genes in diverse organisms, our study suggests that alternative ribosomes may represent a further layer of regulation of gene translation.

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Chen, Y.-X., Xu, Z.-Y., Wang, B.-W., Ge, X., Zhu, J.-H., Sanyal, S., Lu, Z. J., Javid, B.. 2019-04-11. Selective translation by alternative bacterial ribosomes. https://doi.org/10.1101/605931

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