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Biology subjects

Suzaki, T.

Publications and source records attributed to Suzaki, T..

3 recordsLinked to original sources

An NLP-inherited motif confers broad DNA-binding specificity to NIN in root nodule symbiosis

Nitrogen-fixing root nodule symbiosis (RNS) occurs in some eudicots, including legumes, and is regulated by the transcription factor NODULE INCEPTION (NIN), derived from the NIN-LIKE PROTEIN (NLP) family. However, how the NIN protein acquired RNS-specific functions remains unclear. We identify a previously undescribed motif in Lotus japonicus NIN, located downstream of the RWP-RK domain, which we term the FR. This motif broadens the DNA-binding specificity of NIN by stabilizing the RWP-RK dimer interface. nin mutants lacking the FR motif show defective nodulation and impaired nitrogen fixation. Arabidopsis NLP2 carries a NIN-type FR and shares key features with NIN. Furthermore, the NIN-type FR likely originated as early as gymnosperms, suggesting that the molecular feature of NIN for RNS regulation was inherited from ancestral NLPs before RNS emerged.

plant biology↗

Characterization of an enigmatic tubular ultrastructure in the bacterial defensive symbiont of the Asian citrus psyllid

"Candidatus Profftella armatura" (Betaproteobacteria) is a unique organelle-like defensive symbiont harbored intracellularly within the symbiotic organ of a devastating citrus pest, the Asian citrus psyllid Diaphorina citri (Insecta: Hemiptera). Our previous two-dimensional transmission electron microscopy identified an unprecedented ultrastructure that appeared tubular in Profftella, but their detailed architecture, three-dimensional arrangement, and components were unknown. To address these issues, this study conducted serial block-face scanning electron microscopy, high-voltage electron tomography, and fluorescence in situ hybridization. The results revealed that highly elongated (2.8-136 {micro}m observed), string-shaped Profftella cells contain tubes of various numbers (1-43 per cell observed) and length (up to 45 m observed), depending on the cell length. The tubes were evenly distributed throughout the cells, occupying an average of 6.3% of the total cell volume. Each tube consisted of five or six thin fibers twisted into a right-handed helix, maintaining a consistent diameter of approximately 230 nm along its entire length. Even without fixation or embedding, the tubes retained their shape under high vacuum conditions in electron microscopes, demonstrating their remarkable stability and robustness. These findings suggest that the tubes may help provide mechanical stability to the highly elongated and potentially vulnerable Profftella cells. Further analysis showed that the tubes are closely associated with ribosomes, suggesting a role in protein synthesis. Overall, these results offer new insights into the structural and functional evolution of bacteria, with potential implications for developing novel pest control strategies. Significance statementBacteria generally have simple intracellular structures, lacking organelles. Here, we report a highly elongated, elaborate organelle-like structure with a tubular shape in a bacterial symbiont of an important agricultural pest. The tube, which exhibits high durability and robustness, may contribute to the mechanical stability of the notably elongated symbiont cell. They are closely associated with numerous ribosomes, suggesting a potential role in gene expression. These findings not only enhance our understanding of bacterial evolution but may also provide clues for developing novel strategies for pest control.

microbiology↗

Euglenozoan kleptoplasty illuminates the early evolution of photoendosymbiosis

Kleptoplasts are distinct among photosynthetic organelles in eukaryotes (i.e, plastids) because they are routinely sequestered from prey algal cells and function only temporarily in the new host cell. Therefore, the hosts of kleptoplasts benefit from photosynthesis without constitutive photoendosymbiosis. Here, we report that the euglenozoan Rapaza viridis has only kleptoplasts derived from a specific strain of green alga, Tetraselmis sp., but no canonical plastids like those found in its sister group, the Euglenophyceae. R. viridis showed a dynamic change in the accumulation of cytosolic polysaccharides in response to light- dark cycles, and 13C isotopic labeling of ambient bicarbonate demonstrated that these polysaccharides originate in situ via photosynthesis; these data indicate that the kleptoplasts of R. viridis are functionally active. We also identified 247 sequences encoding putative plastid-targeting proteins and 35 sequences of presumed kleptoplast transporters in the transcriptome of R. viridis. These genes originated in a wide range of algae other than Tetraselmis sp., the source of the kleptoplasts, suggesting a long history of repeated horizontal gene transfer events from different algal prey cells. Many of the kleptoplast proteins, as well as the protein-targeting system, in R. viridis were shared with members of the Euglenophyceae, providing evidence that the early stages in the endosymbiotic origin of euglenophyte plastids also involved kleptoplasty.

evolutionary biology↗