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Ushijima, K.

Publications and source records attributed to Ushijima, K..

7 recordsLinked to original sources

Rapid and dynamic evolution of a giant Y chromosome in Silene latifolia

To test hypotheses about the evolution of massive sex-linked regions in plants, we sequenced the genome of Silene latifolia, whose giant heteromorphic sex chromosomes were first discovered in 1923. It has long been known that the Y consists mainly of a male-specific region which does not recombine with the X in male meiosis, and that this region carries the primary sex-determining genes, and other genes contributing to male functioning. However, only with a whole Y chromosome assembly can the candidates be validated experimentally, as we describe. Our new results also illuminate the genomic changes as the ancestral chromosome evolved into the current XY pair, testing ideas about why large regions of sex-linkage evolve, and the mechanisms creating the present recombination pattern. One sentence summaryBased on the whole genome sequences of Silene latifolia, a model species for plant sex chromosome evolution, we describe discovery of genes underlying male-female flower differences, and relate the results to ideas about the evolution of the vast non-recombining regions of the Y chromosome.

genetics↗

Genetic basis of lineage-specific evolution of fruit traits in hexaploid persimmon

Frequent polyploidization events in plants have led to the establishment of many lineage-specific traits representing each species. Little is known about the genetic bases for these specific traits in polyploids, presumably due to plant genomic complexity and their difficulties of applying genetic approaches. Hexaploid Oriental persimmon (Diospyros kaki) has evolved specific fruit characters, including wide variations in fruit shapes and astringency. In this study, using whole-genome diploidized/quantitative genotypes from ddRAD-Seq data of 173 persimmon cultivars, we examined their population structures and potential correlations between their structural transitions and variations in nine fruit traits. The population structures of persimmon cultivars were highly randomized and not substantially correlated with the representative fruit traits focused on in this study, except for fruit astringency. With genome-wide association analytic tools considering polyploid alleles, we identified the loci associated with the nine fruit traits; we mainly focused on fruit-shape variations, which have been numerically characterized by principal component analysis of elliptic Fourier descriptors. The genomic regions that putatively underwent selective sweep exhibited no overlap with the loci associated with these persimmon-specific fruit traits. These insights will contribute to understanding of the genetic mechanisms by which fruit traits are independently established, possibly due to polyploidization events.

plant biology↗

Ongoing rapid evolution of a post-Y region revealed by chromosome-scale genome assembly of a hexaploid monoecious persimmon (Diospyros kaki)

Sex chromosomes have evolved independently in many plant lineages. They have often undergone rapid structural degeneration and extension of non-recombining regions, which is conventionally considered to be strongly associated with the expression of sexually dimorphic traits. In this study, we assembled a monoecious hexaploid persimmon (Diospyros kaki) in which the Y chromosome had lost its function in male determination. Comparative genomic analysis among D. kaki and its dioecious relatives revealed that the non-functional Y chromosome (Ym) via silencing of the sex-determining gene, OGI, arose approximately two million years ago. Comparative analyses of the whole X and Ym chromosomes suggested that the non-functional male-specific region of the Y-chromosome (MSY), or post-MSY, retained certain conserved characteristics of the original functional MSY. Specifically, comparison of the functional MSY in D. lotus and the non-functional post-MSY in D. kaki indicated that the post-MSY had been rapidly rearranged mainly via ongoing transposable element bursts, as well as in the functional MSY. These results suggest a novel interpretation that the rapid evolution of the post-MSY (and possibly also MSYs in dioecious Diospyros species) might reflect the ancestral genomic properties of these regions, rather than the evolution of male-determining functions and/or sexually dimorphic traits.

plant biology↗

Degenerate oligonucleotide primer MIG-seq: an effective PCR-based method for high-throughput genotyping

Multiplexed inter-simple sequence repeats genotyping by sequencing (MIG-seq) is an next-generation sequencing library construction method developed for the analysis of DNA in ecology. Although MIG-seq can generate libraries from low-quality DNA, few polymorphisms can be obtained in species with small genomes. In this study, we developed degenerate oligonucleotide primer MIG-seq (dpMIG-seq) as an effective polymorphism discovery method that allows for variation in the number of polymorphisms while retaining the advantages of MIG-seq, including independence from DNA quality. In dpMIG-seq, a proportion of the simple sequence repeats in the primer sequence of the first PCR in MIG-seq was changed to degenerate oligonucleotides to enable annealing to a wider range of sequences. In tests of several crop species other than wheat, the number of loci that could be sequenced using dpMIG-seq with a data volume of 0.3 gigabases (Gb) was increased compared with that sequenced using MIG-seq. In wheat, the number of polymorphisms obtained via dpMIG-seq was higher than that obtained via MIG-seq when a data volume of about [≥]2 Gb was obtained. In dpMIG-seq, different loci could be sequenced by changing the positions of the degenerate oligonucleotides. By applying dpMIG-seq, we constructed a linkage map consisting of 5,142 markers for the rice inter-subspecies F2 population, and we detected quantitative trait loci for heading date in the regions where known heading-related genes were located. Overall, our results show that dpMIG-seq is a useful tool for the genetic analysis of crop species.

genetics↗

Genome-wide cis-decoding for expression designing in tomato using cistrome data and explainable deep learning

In the evolutionary paths of plants, variations of the cis-regulatory elements (CREs) resulting in expression diversification have played a central role in driving the establishment of lineage-specific traits. However, it is difficult to predict expression behaviors from the CRE patterns to properly harness them, mainly because the biological processes are complex. In this study, we used cistrome datasets and explainable convolutional neural network (CNN) frameworks to predict genome-wide expression patterns in tomato fruits from the DNA sequences in gene regulatory regions. By fixing the effects of trans-elements using single cell-type spatiotemporal transcriptome data for the response variables, we developed a prediction model of a key expression pattern for the initiation of tomato fruit ripening. Feature visualization of the CNNs identified nucleotide residues critical to the objective expression pattern in each gene and their effects, were validated experimentally in ripening tomato fruits. This cis-decoding framework will not only contribute to understanding the regulatory networks derived from CREs and transcription factor interactions, but also provide a flexible way of designing alleles with optimized expression.

plant biology↗

Postharvest properties of ultra-late maturing peach cultivars and their attributions to Melting Flesh (M) locus: Re-evaluation of M locus in association with flesh texture

The postharvest properties of two ultra-late maturing peach cultivars, Tobihaku (TH) and Daijumitsuto (DJ), were investigated. Fruit were harvested at commercial maturity and held at 25{degrees}C. TH exhibited the characteristics of normal melting flesh (MF) peach, including rapid fruit softening associated with an increase in endogenous ethylene production In contrast, DJ did not soften at all during three-week experimental period even though substantial ethylene production was observed. Fruit of TH and DJ were treated with 5000 ppm of propylene, an ethylene analog, continuously for seven days. TH softened rapidly whereas DJ maintained high flesh firmness in spite of an increase in endogenous ethylene production, suggesting that DJ but not TH lacked the ability to be softened in response to endogenous and exogenous ethylene/propylene. DNA-seq analysis showed that tandem endo-polygalacturonase (endoPG) genes located at melting flesh (M) locus, Pp-endoPGM (PGM) and Pp-endoPGF (PGF), were deleted in DJ. The endoPG genes at M locus are known to control flesh texture of peach fruit, and it was suggested that the non-softening property of DJ is due to the lack of endoPG genes. On the other hand, TH possessed an unidentified M haplotype that is involved in determination of MF phenotype. Structural identification of the unknown M haplotype, designated as M0, through comparison with previously reported M haplotypes revealed distinct differences between PGM on M0 haplotype (PGM-M0) and PGM on other haplotypes (PGM-M1). Peach M haplotypes were classified into four main haplotypes: M0 with PGM-M0; M1 with both PGM-M1 and PGF; M2 with PGM-M1; and M3 lacking both PGM and PGF. Re-evaluation of M locus in association with MF/non-melting flesh (NMF) phenotypes in more than 400 accessions by using whole genome shotgun sequencing data on database and/or by PCR genotyping demonstrated that M0 haplotype was the common haplotype in MF accessions, and M0 and M1 haplotypes were dominant over M2 and M3 haplotypes and co-dominantly determined the MF trait. It was also assumed on the basis of structural comparison of M haplotypes among Prunus species that the ancestral haplotype of M0 diverged from those of the other haplotypes before the speciation of Prunus persica.

plant biology↗

Low temperature transcriptionally modulates natural peel degreening in lemon (Citrus limon L.) fruit independently of endogenous ethylene

AbstractPeel degreening is an important aspect of fruit ripening in many citrus fruit, and earlier studies have shown that it can be advanced either by ethylene treatment or during low temperature storage. However, the important regulators and pathways involved in natural peel degreening remain largely unknown. To understand how natural peel degreening is regulated in lemon (Citrus limon L.) fruit, flavedo transcriptome and physiochemical changes in response to either ethylene treatment or low temperature were studied. Ethylene treatment induced rapid peel degreening which was strongly inhibited by the ethylene antagonist, 1-methylcyclopropene (1-MCP). Compared with 25{degrees}C, moderately low temperatures (5{degrees}C, 10{degrees}C, 15{degrees}C and 20{degrees}C) also triggered peel degreening. Surprisingly, repeated 1-MCP treatments failed to inhibit the peel degreening induced by low temperature. Transcriptome analysis revealed that low temperature and ethylene independently regulated genes associated with chlorophyll degradation, carotenoid metabolism, photosystem proteins, phytohormone biosynthesis and signalling, and transcription factors. On-tree peel degreening occurred along with environmental temperature drops, and it coincided with the differential expression of low temperature-regulated genes. In contrast, genes that were uniquely regulated by ethylene showed no significant expression changes during on-tree peel degreening. Based on these findings, we hypothesize that low temperature plays a prominent role in regulating natural peel degreening independently of ethylene in citrus fruit. HighlightCitrus peel degreening is promoted by low temperature via modulation of multiple genes associated with chlorophyll degradation, carotenoid biosynthesis, photosystem disassembly, phytohormones and transcription factors without involving ethylene signalling.

plant biology↗