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Nakabachi, A.

Publications and source records attributed to Nakabachi, A..

4 recordsLinked to original sources

Highly reduced complementary genomes of dual bacterial symbionts in the mulberry psyllid Anomoneura mori

The genomes of obligately host-restricted bacteria suffer from accumulating mildly deleterious mutations, resulting in a drastic size reduction. Psyllids (Hemiptera) are phloem sap-sucking insects with a specialized organ called the bacteriome, which typically harbors two vertically transmitted bacterial symbionts: the primary symbiont "Candidatus Carsonella ruddii" (Gammaproteobacteria) and a secondary symbiont phylogenetically diverse among psyllid lineages. Genomes of several Carsonella lineages were revealed to be drastically reduced (158-174 kb), AT-rich (14.0-17.9% GC), and structurally conserved with similar gene inventories devoted for synthesizing essential amino acids scarce in the phloem sap. However, genomic information for secondary symbionts was limited. Hence, this study analyzed genomes of the bacteriome-associated dual symbionts, Secondary_AM (Gammaproteobacteria) and Carsonella_AM, in the mulberry psyllid Anomoneura mori (Psyllidae). This revealed that the Secondary_AM genome is as small and AT-rich (229,822 bp, 17.3% GC) as those of Carsonella, including Carsonella_AM (169,120 bp, 16.2% GC), implying that Secondary_AM is an evolutionarily ancient obligate mutualist like Carsonella. Phylogenomic analyses demonstrated that Secondary_AM is sister to "Candidatus Psyllophila symbiotica" of Cacopsylla spp. (Psyllidae), whose genomes (221-237 kb, 17.3-18.6% GC) were recently reported. The Secondary_AM and Psyllophila genomes showed highly conserved synteny, sharing all genes for complementing the incomplete tryptophan biosynthetic pathway of Carsonella and genes for synthesizing B vitamins. However, sulfur assimilation and carotenoid synthesizing genes were retained only in Secondary_AM and Psyllophila, respectively, indicating ongoing gene silencing. Average nucleotide identity, gene ortholog similarity, genome-wide synteny, and substitution rates suggested that the Secondary_AM/Psyllophila genomes are more labile than the Carsonella genomes.

genomics↗

Microbiome of psyllids of the family Aphalaridae, including Aphalara itadori, a potential biocontrol agent against Reynoutria spp.

Several European and North American countries have started releasing the Japanese knotweed psyllid Aphalara itadori (Hemiptera: Aphalaridae) to control the Japanese knotweed Reynoutria japonica (Caryophyllales: Polygonaceae) and its relatives, which are among the worst invasive exotic plants. However, establishing populations of the current Kyushu and Hokkaido strains in the field has not been successful, desiring new lineages. Moreover, little is known about the microbiome of the current strains, which potentially impacts properties as biocontrol agents. Hence, this study analyzed the microbiota of an A. itadori strain newly collected on Honshu Island, along with related species of the family Aphalaridae, using amplicon sequencing of 16S rRNA genes. The A. itadori symbionts were further located using fluorescence in situ hybridization. The results demonstrated that the analyzed A. itadori strain has a dual symbiotic system with "Candidatus Carsonella ruddii" (Gammaproteobacteria: Oceanospirillales) and Sodalis sp. (Gammaproteobacteria: Enterobacterales) harbored in the bacteriome, suggesting their evolutionarily stable mutualistic relationships with A. itadori. The central area of the bacteriome harboring Sodalis appeared to comprise uninucleate bacteriocytes with nuclei larger than those of bacteriocytes for Carsonella, rather than a syncytium with smaller nuclei as previously reported for various psyllid lineages. No known plant pathogens or manipulators of insect reproduction were identified in the analyzed strain, indicating its suitability as a biocontrol agent, posing a minimum risk to the ecosystem. Besides distinct Carsonella lineages, the analysis identified Sodalis independently acquired by Craspedolepta miyatakeai, and an ambiguous Enterobacterales symbiont in Epheloscyta kalopanacis. Only Carsonella was identified in Togepsylla matsumurana.

molecular biology↗

A limited concentration range of diaphorin, a polyketide produced by a bacterial symbiont of the Asian citrus psyllid, promotes the in vitro gene expression with bacterial ribosomes

Diaphorin is a polyketide produced by "Candidatus Profftella armatura" (Gammaproteobacteria: Burkholderiales), an obligate symbiont of a devastating agricultural pest, the Asian citrus psyllid Diaphorina citri (Hemiptera: Psyllidae). Physiological concentrations of diaphorin, which D. citri contains at levels as high as 2-20 mM, are inhibitory to various eukaryotes and Bacillus subtilis (Firmicutes: Bacilli) but promote the growth and metabolic activity of Escherichia coli (Gammaproteobacteria: Enterobacterales). Our previous study demonstrated that five-millimolar diaphorin, which exhibits significant inhibitory and promoting effects on cultured B. subtilis and E. coli, respectively, inhibits in vitro gene expression utilizing purified B. subtilis and E. coli ribosomes. This suggested that the adverse effects of diaphorin on B. subtilis are partly due to its influence on gene expression. However, the result appeared inconsistent with the positive effects on E. coli. Moreover, the diaphorin concentration in bacterial cells, where genes are expressed in vivo, may be lower than in culture media. Therefore, the present study analyzed the effects of 50 and 500 M of diaphorin on bacterial gene expression using the same analytical method. The result revealed that this concentration range of diaphorin, in contrast to five-millimolar diaphorin, promotes the in vitro translation with the B. subtilis and E. coli ribosomes, suggesting that the positive effects of diaphorin on E. coli are due to its direct effects on translation. This study demonstrated for the first time that a pederin-type compound promotes gene expression, establishing a basis for utilizing its potential in pest management and industrial applications. ImportanceThis study revealed that a limited concentration range of diaphorin, a secondary metabolite produced by a bacterial symbiont of an agricultural pest, promotes cell-free gene expression utilizing substrates and proteins purified from bacteria. The unique property of diaphorin, which is inhibitory to various eukaryotes and Bacillus subtilis but promotes the growth and metabolic activity of Escherichia coli, may affect the microbial flora of the pest insect, potentially influencing the transmission of devastating plant pathogens. Moreover, the activity may be exploited to improve the efficacy of industrial production by E. coli, which is often used to produce various important materials, including pharmaceuticals, enzymes, amino acids, and biofuels. This study elucidated a part of the mechanism by which the unique activity of diaphorin is expressed, constructing a foundation for applying the unique property to pest management and industrial use.

microbiology↗

Diaphorin, a polyketide produced by a bacterial symbiont of the Asian citrus psyllid, inhibits the growth of Bacillus subtilis but promotes the growth of Escherichia coli

Diaphorin is a polyketide produced by Candidatus Profftella armatura (Gammaproteobacteria: Burkholderiales), an obligate symbiont of a notorious agricultural pest, the Asian citrus psyllid Diaphorina citri (Hemiptera: Psyllidae). Diaphorin belongs to the pederin family of bioactive agents found in various host-symbiont systems, including beetles, lichens, and sponges, harboring phylogenetically diverse bacterial producers. Previous studies showed that diaphorin has inhibitory effects on various eukaryotes, including the natural enemies of D. citri. However, little is known about its effects on prokaryotic organisms. To address this issue, the present study assessed the biological activities of diaphorin on two model prokaryotes, Escherichia coli (Gammaproteobacteria: Enterobacterales) and Bacillus subtilis (Firmicutes: Bacilli). The analyses revealed that diaphorin inhibits the growth of B. subtilis but moderately promotes the growth of E. coli. This finding implies that diaphorin functions as a defensive agent of the holobiont (host + symbionts) against some bacterial lineages but is beneficial for others, which potentially include obligate symbionts of D. citri. ImportanceCertain secondary metabolites, including antibiotics, evolve to mediate interactions among organisms. These molecules have distinct spectra for microorganisms and are often more effective against Gram-positive bacteria than Gram-negative ones. However, it is rare that a single molecule has completely opposite activities on distinct bacterial lineages. The present study revealed that a secondary metabolite synthesized by an organelle-like bacterial symbiont of psyllids inhibits the growth of Gram-positive Bacillus subtilis but promotes the growth of Gram-negative Escherichia coli. This finding not only provides insights into the evolution of symbiosis between animal hosts and bacteria but may also potentially be exploited to promote the effectiveness of industrial material production by microorganisms.

microbiology↗