Disproportionate investment in Spiralin B production limits in-host growth and favors the vertical transmission of <i>Spiroplasma</i> insect endosymbionts.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 35858432.
- Also identified by DOI 10.1073/pnas.2208461119 and PMC identifier 9335233.
- Licence recorded as CC BY-NC-ND.
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Abstract
Insects frequently harbor endosymbionts, which are bacteria housed within host tissues. These associations are stably maintained over evolutionary timescales through vertical transmission of endosymbionts from host mothers to their offspring. Some endosymbionts manipulate host reproduction to facilitate spread within natural populations. Consequently, such infections have major impacts on insect physiology and evolution. However, technical hurdles have limited our understanding of the molecular mechanisms underlying such insect-endosymbiont interactions. Here, we investigate the nutritional interactions between endosymbiotic partners using the tractable insect <i>Drosophila melanogaster</i> and its natural endosymbiont <i>Spiroplasma poulsonii</i>. Using a combination of functional assays, metabolomics, and proteomics, we show that the abundance and amino acid composition of a single <i>Spiroplasma</i> membrane lectin, Spiralin B (SpiB), dictates the amino acid requirements of the endosymbiont and determines its proliferation within host tissues. Ectopically increasing SpiB levels in host tissues disrupts localization of endosymbionts in the fly egg chambers and decreases vertical transmission. We find that SpiB is likely to be required by the endosymbiont to enter host oocytes, which may explain the massive investment of <i>S. poulsonii</i> in SpiB synthesis. SpiB both permits vertical transmission of the symbiont and limits its growth in nutrient-limiting conditions for the host; therefore, a single protein plays a pivotal role in ensuring durability of the interaction in a variable environment.
Medical subject headings
- Bacterial Outer Membrane Proteins
- Drosophila melanogaster
- Host Microbial Interactions
- Spiroplasma
- Symbiosis