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Diversity of bacterial endosymbionts associated with Macrosteles leafhoppers vectoring phytopathogenic phytoplasmas
Yoshiko Ishii1, Yu Matsuura, Shigeyuki Kakizawa
1National Institute of Advanced Industrial Science and Technology (AIST), Tsukuba, Japan.
Abstract:
Here, we investigate the endosymbiotic microbiota of the Macrosteles leafhoppers M. striifrons and M. sexnotatus, known as vectors of phytopathogenic phytoplasmas. PCR, cloning, sequencing, and phylogenetic analyses of bacterial 16S rRNA genes identified two obligate endosymbionts, "Candidatus Sulcia muelleri" and "Candidatus Nasuia deltocephalinicola," and five facultative endosymbionts, Wolbachia, Rickettsia, Burkholderia, Diplorickettsia, and a novel bacterium belonging to the Rickettsiaceae, from the leafhoppers. "Ca. Sulcia muelleri" and "Ca. Nasuia deltocephalinicola" exhibited 100% infection frequencies in the host species and populations and were separately harbored within different bacteriocytes that constituted a pair of coherent bacteriomes in the abdomen of the host insects, as in other deltocephaline leafhoppers. Wolbachia, Rickettsia, Burkholderia, Diplorickettsia, and the novel Rickettsiaceae bacterium exhibited infection frequencies at 7%, 31%, 12%, 0%, and 24% in M. striifrons and at 20%, 0%, 0%, 20%, and 0% in M. sexnotatus, respectively. Although undetected in the above analyses, phytoplasma infections were detected in 16% of M. striifrons and 60% of M. sexnotatus insects by nested PCR of 16S rRNA genes. Two genetically distinct phytoplasmas, namely, "Candidatus Phytoplasma asteris," associated with aster yellows and related plant diseases, and "Candidatus Phytoplasma oryzae," associated with rice yellow dwarf disease, were identified from the leafhoppers. These results highlight strikingly complex endosymbiotic microbiota of the Macrosteles leafhoppers and suggest ecological interactions between the obligate endosymbionts, the facultative endosymbionts, and the phytopathogenic phytoplasmas within the same host insects, which may affect vector competence of the leafhoppers.
Insights
The complex microbial communities in Macrosteles leafhoppers include obligate and facultative endosymbionts. These leafhoppers also carry phytoplasmas, potentially impacting their ability to transmit plant diseases.
Area of Science:
- Microbiology
- Entomology
- Plant Pathology
Background:
- Macrosteles leafhoppers are vectors of phytopathogenic phytoplasmas.
- Understanding their endosymbiotic microbiota is crucial for disease management.
Purpose of the Study:
- To investigate the endosymbiotic microbiota of Macrosteles striifrons and M. sexnotatus.
- To identify obligate and facultative bacterial endosymbionts and co-infecting phytoplasmas.
- To explore potential ecological interactions within the leafhopper's microbial community.
Main Methods:
- PCR, cloning, and sequencing of bacterial 16S rRNA genes.
- Phylogenetic analyses to identify bacterial endosymbionts.
- Nested PCR of 16S rRNA genes to detect phytoplasmas.
Main Results:
- Two obligate endosymbionts, "Ca. Sulcia muelleri" and "Ca. Nasuia deltocephalinicola," were found in all leafhoppers.
- Five facultative endosymbionts (Wolbachia, Rickettsia, Burkholderia, Diplorickettsia, novel Rickettsiaceae) showed variable infection frequencies.
- "Ca. Phytoplasma asteris" and "Ca. Phytoplasma oryzae" were detected in 16% of M. striifrons and 60% of M. sexnotatus.
- Obligate endosymbionts resided in distinct bacteriomes, while facultative endosymbionts and phytoplasmas had varied distributions.
Conclusions:
- Macrosteles leafhoppers harbor a complex and diverse endosymbiotic microbiota.
- Interactions between obligate, facultative endosymbionts, and phytopathogenic phytoplasmas may influence vector competence.
- Further research is needed to elucidate these ecological interactions and their impact on disease transmission.
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