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Mine, A.

Publications and source records attributed to Mine, A..

3 recordsLinked to original sources

Conservation and diversity in transcriptional responses among host plants forming distinct arbuscular mycorrhizal morphotypes

O_LIThe morphotype of arbuscular mycorrhizal (AM) roots is distinct mostly depending on AM host species: Arum, Paris, and Intermediate types. We previously reported that gibberellin (GA) promotes the establishment of Paris-type AM symbiosis in Eustoma grandiflorum despite its negative effects on Arum-type AM symbiosis in model plants. However, the molecular mechanisms underlying the differential effects of GA on different morphotypes, including Intermediate-type AM symbiosis, remain elusive. C_LIO_LIComparative transcriptomics revealed that several symbiosis-related genes were transcriptionally promoted upon AM fungal colonization in Lotus japonicus (Arum-type), Daucus carota (Intermediate-type), and E. grandiflorum (Paris-type). Interestingly, upon GA treatment, the fungal colonization levels and expression of symbiosis-related genes were suppressed in L. japonicus and D. carota but were promoted in E. grandiflorum. C_LIO_LIExogenous GA transcriptionally inhibited the biosynthetic process of a host-derived signal molecule involved in AM symbiosis, strigolactone, in L. japonicus and E. grandiflorum. Additionally, disaccharides mainly metabolized in AM roots would be different between L. japonicus and D. carota/E. grandiflorum. C_LIO_LIThis study uncovered the conserved transcriptional responses during mycorrhization and diverse responses to GA in AM roots with distinct morphotypes among phylogenetically distant host plants. C_LI

plant biology

A versatile Tn7 transposon-based bioluminescence tagging tool for quantitative and spatial detection of bacteria in plants

Investigation of plant-bacteria interactions requires quantification of in planta bacterial titers by means of colony counting assays. However, colony counting assays are cumbersome and time-consuming, and are unable to detect spatial patterns of bacterial colonization in plants. Here, to overcome these shortcomings, we devised a broadly applicable genetic engineering tool for bioluminescence-based quantitative and spatial detection of bacteria in plants. We developed plasmid vectors that have broad host ranges and enable Tn7 transposon-mediated integration of the luxCDABE luciferase operon into a specific genomic location ubiquitously found across bacterial phyla. These vectors allowed for generation of bioluminescent transformants of various plant pathogenic bacteria belonging to the genera Pseudomonas, Rhizobium (Agrobacterium), and Ralstonia. The bioluminescent transformant of Pseudomonas syringae pv. tomato DC3000 (Pto-lux) was as virulent in Arabidopsis thaliana as its parental strain. Direct luminescence measurements of Pto-lux-inoculated plant tissues reported bacterial titers in A. thaliana, Solanum lycopersicum, Nicotiana benthamiana, and Marchantia polymorpha as accurately as conventional colony counting assays. We further showed the utility of our vectors for converting the previously generated Pto derivatives to isogenic bioluminescent strains. Importantly, quantitative bioluminescence assays using these Pto-lux strains accurately reported the effects of plant immunity and bacterial effectors on bacterial growth with a dynamic range of 4 orders of magnitude. Moreover, macroscopic bioluminescence imaging illuminated spatial colonization patterns of the Pto-lux in/on inoculated plant tissues. Taken together, our vectors offer untapped opportunities for developing bioluminescence-based quantitative and spatial analysis of bacterial growth in a variety of plant-bacteria interactions. SIGNIFICANCE STATEMENTWe developed broad-host-range plasmid vectors that integrate the luciferase operon, luxCDABE, into a specific genomic location ubiquitously found across bacterial phyla. Using these vectors, we established a high-throughput method for bioluminescence-based quantitative assays of in planta bacterial growth with a dynamic range of 4 orders of magnitude and visualized spatiotemporal patterns of bacterial colonization in/on inoculated plant tissues.

plant biology

Ribosome stalling caused by the Argonaute-miRNA-SGS3 complex regulates production of secondary siRNA biogenesis in plants

The path of ribosomes on mRNAs can be impeded by various obstacles. One such example is halting of ribosome movement by microRNAs, though the exact mechanism and physiological role remain unclear. Here, we find that ribosome stalling caused by the Argonaute-microRNA-SGS3 complex regulates the production of secondary small interfering RNAs (siRNAs) in plants. We show that the double-stranded RNA-binding protein SGS3 directly interacts with the 3' end of the microRNA in an Argonaute protein, resulting in ribosome stalling. Importantly, microRNA-mediated ribosome stalling positively correlates with efficient production of secondary siRNAs from target mRNAs. Our results illustrate a role for paused ribosomes in regulation of small RNA function that may have broad biological implications across the plant kingdom.

molecular biology