Cargando…

Continent-Scale Sampling Reveals Fine-Scale Turnover in a Beneficial Bug Symbiont

Many members of animal-associated microbial communities, including the gut flora, are acquired from their host’s environment. While many of these communities are species rich, some true bugs (Hemiptera) in the superfamilies Lygaeoidea and Coreidae allow only ingested Burkholderia to colonize and rep...

Descripción completa

Detalles Bibliográficos
Autores principales: Ravenscraft, Alison, Thairu, Margaret W., Hansen, Allison K., Hunter, Martha S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7316890/
https://www.ncbi.nlm.nih.gov/pubmed/32636818
http://dx.doi.org/10.3389/fmicb.2020.01276
_version_ 1783550517059780608
author Ravenscraft, Alison
Thairu, Margaret W.
Hansen, Allison K.
Hunter, Martha S.
author_facet Ravenscraft, Alison
Thairu, Margaret W.
Hansen, Allison K.
Hunter, Martha S.
author_sort Ravenscraft, Alison
collection PubMed
description Many members of animal-associated microbial communities, including the gut flora, are acquired from their host’s environment. While many of these communities are species rich, some true bugs (Hemiptera) in the superfamilies Lygaeoidea and Coreidae allow only ingested Burkholderia to colonize and reproduce in a large portion of the midgut. We studied the spatial structuring of Burkholderia associated with a widespread omnivorous bug genus, Jalysus (Berytidae). We sampled Wickham’s stilt bug, Jalysus wickhami, across the United States and performed limited sampling of its sister species, the spined stilt bug Jalysus spinosus. We asked: (1) What Burkholderia strains are hosted by Jalysus at different locations? (2) Does host insect species, host plant species, or location influence the strain these insects acquire? (3) How does Burkholderia affect the development and reproductive fitness of J. wickhami? We found: (1) Sixty-one Burkholderia strains were present across a sample of 352 individuals, but one strain dominated, accounting for almost half of all symbiont reads. Most strains were closely related to other hemipteran Burkholderia symbionts. (2) Many individuals hosted more than one strain of Burkholderia. (3) J. wickhami and J. spinosus did not differ in the strains they hosted. (4) Insects that fed on different plant species tended to host different Burkholderia, but this accounted for only 4% of the variation in strains hosted. In contrast, the location at which an insect was collected explained 27% of the variation in symbiont strains. (5) Burkholderia confers important fitness benefits to J. wickhami. In laboratory experiments, aposymbiotic (Burkholderia-free) insects developed more slowly and laid fewer eggs than symbiotic (Burkholderia-colonized) insects. (6) In the lab, nymphs sometimes acquired Burkholderia via indirect exposure to adults, indicating that horizontal symbiont transmission can occur via adult insect-mediated enrichment of Burkholderia in the local environment – a phenomenon not previously reported in bug-Burkholderia relationships. Taken together, the results suggest that for these bugs, critical nutritional requirements are outsourced to a highly diverse and spatially structured collection of Burkholderia strains acquired from the environment and, occasionally, from conspecific adults.
format Online
Article
Text
id pubmed-7316890
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-73168902020-07-06 Continent-Scale Sampling Reveals Fine-Scale Turnover in a Beneficial Bug Symbiont Ravenscraft, Alison Thairu, Margaret W. Hansen, Allison K. Hunter, Martha S. Front Microbiol Microbiology Many members of animal-associated microbial communities, including the gut flora, are acquired from their host’s environment. While many of these communities are species rich, some true bugs (Hemiptera) in the superfamilies Lygaeoidea and Coreidae allow only ingested Burkholderia to colonize and reproduce in a large portion of the midgut. We studied the spatial structuring of Burkholderia associated with a widespread omnivorous bug genus, Jalysus (Berytidae). We sampled Wickham’s stilt bug, Jalysus wickhami, across the United States and performed limited sampling of its sister species, the spined stilt bug Jalysus spinosus. We asked: (1) What Burkholderia strains are hosted by Jalysus at different locations? (2) Does host insect species, host plant species, or location influence the strain these insects acquire? (3) How does Burkholderia affect the development and reproductive fitness of J. wickhami? We found: (1) Sixty-one Burkholderia strains were present across a sample of 352 individuals, but one strain dominated, accounting for almost half of all symbiont reads. Most strains were closely related to other hemipteran Burkholderia symbionts. (2) Many individuals hosted more than one strain of Burkholderia. (3) J. wickhami and J. spinosus did not differ in the strains they hosted. (4) Insects that fed on different plant species tended to host different Burkholderia, but this accounted for only 4% of the variation in strains hosted. In contrast, the location at which an insect was collected explained 27% of the variation in symbiont strains. (5) Burkholderia confers important fitness benefits to J. wickhami. In laboratory experiments, aposymbiotic (Burkholderia-free) insects developed more slowly and laid fewer eggs than symbiotic (Burkholderia-colonized) insects. (6) In the lab, nymphs sometimes acquired Burkholderia via indirect exposure to adults, indicating that horizontal symbiont transmission can occur via adult insect-mediated enrichment of Burkholderia in the local environment – a phenomenon not previously reported in bug-Burkholderia relationships. Taken together, the results suggest that for these bugs, critical nutritional requirements are outsourced to a highly diverse and spatially structured collection of Burkholderia strains acquired from the environment and, occasionally, from conspecific adults. Frontiers Media S.A. 2020-06-19 /pmc/articles/PMC7316890/ /pubmed/32636818 http://dx.doi.org/10.3389/fmicb.2020.01276 Text en Copyright © 2020 Ravenscraft, Thairu, Hansen and Hunter. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Microbiology
Ravenscraft, Alison
Thairu, Margaret W.
Hansen, Allison K.
Hunter, Martha S.
Continent-Scale Sampling Reveals Fine-Scale Turnover in a Beneficial Bug Symbiont
title Continent-Scale Sampling Reveals Fine-Scale Turnover in a Beneficial Bug Symbiont
title_full Continent-Scale Sampling Reveals Fine-Scale Turnover in a Beneficial Bug Symbiont
title_fullStr Continent-Scale Sampling Reveals Fine-Scale Turnover in a Beneficial Bug Symbiont
title_full_unstemmed Continent-Scale Sampling Reveals Fine-Scale Turnover in a Beneficial Bug Symbiont
title_short Continent-Scale Sampling Reveals Fine-Scale Turnover in a Beneficial Bug Symbiont
title_sort continent-scale sampling reveals fine-scale turnover in a beneficial bug symbiont
topic Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7316890/
https://www.ncbi.nlm.nih.gov/pubmed/32636818
http://dx.doi.org/10.3389/fmicb.2020.01276
work_keys_str_mv AT ravenscraftalison continentscalesamplingrevealsfinescaleturnoverinabeneficialbugsymbiont
AT thairumargaretw continentscalesamplingrevealsfinescaleturnoverinabeneficialbugsymbiont
AT hansenallisonk continentscalesamplingrevealsfinescaleturnoverinabeneficialbugsymbiont
AT huntermarthas continentscalesamplingrevealsfinescaleturnoverinabeneficialbugsymbiont