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Uno, Y.

Publications and source records attributed to Uno, Y..

7 recordsLinked to original sources

Evaluating non-lethal tissue suitability for telomere length measurement in the Japanese eel

Telomere length (TL) is increasingly used in ecology as a biomarker of individual quality and environmental stress, yet research on non-model species with complex life histories remains limited. Because TL varies among tissues and across ages in a species-specific manner, identifying non-lethal tissues that reliably reflect whole-organism telomere dynamics is essential for longitudinal telomere studies in the field. This study aimed to evaluate tissue-specific TL in Japanese eel (Anguilla japonica), an endangered catadromous fish. We first mapped the chromosomal distribution of telomeric sequences using fluorescent in situ hybridization (FISH), the first application of this method in this species. We then tested whether muscle and caudal fin, which can be sampled easily and non-lethally, can serve as suitable proxy tissues for TL measurements in wild individuals. Relative telomere length (RTL) was quantified by qPCR in blood, brain, caudal fin, gonads, heart, liver, and muscle. FISH analysis confirmed telomeric repeats at all chromosomal ends, with only weak interstitial signals on three chromosomal pairs unlikely to affect qPCR-based estimates. A generalized additive mixed model and Wilcoxons signed-rank tests revealed significant inter-tissue differences: RTL was shortest in the brain and muscle and longest in liver, blood and caudal fin. Muscle and caudal fin RTL were significantly correlated with RTL in many other tissues, supporting their use as proxy tissues for longitudinal TL monitoring, including responses to environmental variation. Both total length and age were tested as explanatory variables for RTL, and the model including total length showed a better fit than the age-based model. Non-linear relationships between RTL and total length observed in several tissues suggest physiological shifts associated with growth and sexual differentiation. Overall, these findings advance understanding of telomere dynamics in eels and establish muscle and caudal fin as suitable tissues for repeated, non-lethal TL assessment in ecological and conservation contexts.

molecular biology↗

Shark sexing from forensic, archival, and developmental samples using sex-linked DNA markers

The effective management of threatened shark populations relies on accurate demographic data, particularly operational sex ratios. While sex identification in intact shark bodies is straightforward through the presence of external male organs, namely claspers, it remains impossible for processed fins in the illegal wildlife trade, early-stage embryos in breeding programs, or archived tissue fragments and blood samples where morphological traits are lost. Here, we present a robust molecular sexing framework leveraging recently identified sequences from shark sex chromosomes, consistently organized in the XY system, to our current knowledge. Our approach consists of two distinct methodologies tailored to the the current identification status of sex chromosome sequences in the target species. For the whale shark Rhincodon typus and the brownbanded bamboo shark Chiloscyllium punctatum, we employed end-point PCR assays targeting male-specific Y-linked markers. For the cloudy catshark Scyliorhinus torazame, we developed a quantitative PCR (qPCR) assay targeting differential X chromosome dosage. In this dosage-based system, females (XX) are distinguished by an amplification profile approximately one cycle earlier than males (XY). By integrating X-linked dosage quantification, our framework provides a critical internal control that significantly enhances reliability, allowing researchers to distinguish true females from PCR failures. This toolkit offers a versatile solution for diverse applications, ranging from the study of sex determination mechanisms in pre-phenotypic embryos to the reconstruction of sex ratios from space-constrained tissue archives and global wildlife forensics, thereby contributing to the comprehensive conservation of shark biodiversity.

ecology↗

Sharks and rays have the oldest vertebrate sex chromosome with unique sex determination mechanisms

Sex determination has been investigated across vertebrate lineages to reveal stepwise evolution of sex chromosomes and diversity of responsible molecular mechanisms. However, these studies hardly encompass cartilaginous fishes deeply isolated from the rest of vertebrates, which hinders the comprehensive view of vertebrate sex determination. Here, we produced chromosome-scale genome assemblies of egg-laying shark species and comparatively investigated genome sequences and transcriptome profiles across diverse cartilaginous fishes. Sex chromosome identification, supported by cytogenetic experiments, elucidated the homology of X chromosomes between sharks and rays as well as an extensively degenerating Y chromosome harboring no male-specific genes. These sex chromosomes scarcely included orthologs of previously documented sex determining genes. Transcriptomic analyses combined with histology of embryonic gonads revealed female-biased expressions of X-linked genes including those implicated in TGF-{beta} and IGF signaling pathways, which are attributed to their incomplete dosage compensation. Our findings indicate that sharks and rays share the oldest vertebrate sex chromosomes that originated around 300 million years ago and the dosage-dependent sex determination mechanism comprised of distinct molecules from other vertebrates. This study highlights the antiquity of sex chromosomes and uniqueness of sex determination mechanisms in sharks and rays, which advance our understanding on evolutionary plasticity of vertebrate sex determination.

evolutionary biology↗

LsTT2 encoding R2R3-MYB transcription factor is responsible for a shift from black to white in lettuce seed

Prickly lettuce (Lactuca serriola), which is considered the wild ancestor of lettuce, has black seeds, whereas the major seed color of domesticated lettuce is black or white. The successfully-selected white seed trait is a key domestication trait for lettuce cultivation and breeding; however, the mechanism underlying the shift from black to white seeds remains to be clarified. We aimed to identify the gene/s responsible for white seed trait in lettuce. Genetic mapping of a candidate gene was performed with double-digest RAD sequencing using an F2 population derived from a cross between ShinanoPower (white seed) and Escort (black seed). The white seed trait was controlled by a single recessive locus (48.055-50.197 Mbp) in linkage group 7. Narrowing down using five PCR-based markers and 84 cultivars, eight candidate genes were mapped in the locus. Only the LG7_v8_49.251Mbp_HinfI marker, which employs a single nucleotide mutation in the stop codon of Lsat_1_v5_gn_7_35020.1 was completely linked to the seed color phenotype. In addition, the sequences of the coding region for candidate genes except for Lsat_1_v5_gn_7_35020.1 were identical in the resequence analysis of ShinanoPower (white seed) and Escort (black seed). Therefore, we proposed Lsat_1_v5_gn_7_35020.1, a gene located in the locus, as the candidate gene and designated it as LsTT2, an ortholog encoding the R2R3 MYB transcription factor in Arabidopsis. When we validated the role of LsTT2 in seed color through genome editing, LsTT2 knockout mutants harboring an early termination codon showed a change in seed color from black to white. White seeds accumulated less proanthocyanidins than black seeds, which was similar to the phenotype observed in Arabidopsis TRANSPARENT TESTA 2 (TT2) mutants. Therefore, LsTT2 was the allele responsible for the shift in seed color from black to white. The development of a robust marker for marker-assisted selection and identification of the gene responsible for white seeds has implications for future breeding technology and physiological analysis.

genetics↗

Shark and ray genome size estimation: methodological optimization for inclusive and controllable biodiversity genomics

Estimate of nuclear DNA content serves as an independent tool for validating the completeness of whole genome sequences and investigating the among-species variation of genome sizes, but for some species, the requirement of fresh cells makes this tool highly inaccessible. Here we focused on elasmobranch species (sharks and rays), and using flow cytometry or quantitative PCR (qPCR), estimated the nuclear DNA contents of brownbanded bamboo shark, white spotted bamboo shark, zebra shark, small-spotted catshark, sandbar shark, slendertail lanternshark, megamouth shark, red stingray, and ocellate spot skate. Our results revealed their genome sizes spanning from 3.40 pg (for ocellate spot skate) to 13.34 pg (for slendertail lanternshark), in accordance with the huge variation of genome sizes already documented for elasmobranchs. Our improved qPCR-based method enabled accurate genome size estimation without using live cells, which has been a severe limitation with elasmobranchs. These findings and our methodology are expected to contribute to better understanding of the diversity of genome sizes in elasmobranchs even including species with limited availability of fresh tissue materials. It will also help validate the completeness of already obtained or anticipated whole genome sequences.

genomics↗

Elasmobranch genome sequencing reveals evolutionary trends of vertebrate karyotypic organization

Genomic studies of vertebrate chromosome evolution have long been hindered by the scarcity of chromosome-scale DNA sequences of some key taxa. One of those limiting taxa has been the elasmobranchs (sharks and rays), which harbor species often with numerous chromosomes and enlarged genomes. Here, we report the chromosome-scale genome assembly for the zebra shark Stegostoma tigrinum, an endangered species that has the smallest genome sequenced to date among sharks (3.71 Gb), as well as for the whale shark Rhincodon typus. Our analysis employing a male-female comparison identified an X chromosome, the first genomically characterized shark sex chromosome. The X chromosome harbors a Hox C cluster whose intact linkage has not been shown for an elasmobranch fish. The sequenced shark genomes exhibit a gradualism of chromosome length with remarkable length-dependent characteristics--shorter chromosomes tend to have higher GC content, gene density, synonymous substitution rate, and simple tandem repeat content as well as smaller gene length, which resemble the edges of longer chromosomes. This pattern of intragenomic heterogeneity, previously recognized as peculiar to species with so-called microchromosomes, occurs in more vertebrates including elasmobranchs. We challenge the traditional binary classification of karyotypes as with and without microchromosomes, as even without microchromosomes, shorter chromosomes tend to have higher contents of GC and simple tandem repeats and harbor shorter and more rapid-evolving genes. Such characteristics also appear on the edges of longer chromosomes. Our investigation of elasmobranch karyotypes underpins their unique characteristics and provides clues for understanding how vertebrate karyotypes accommodate intragenomic heterogeneity to realize a complex readout.

evolutionary biology↗

Cell culture-based shark karyotyping as a resource for chromosome-scale genome analysis

Karyotyping is indispensable for validating genome assemblies whose sequence lengths can be scaled up to chromosome sizes using modern methods and is traditionally performed using cytogenetic techniques. Karyotype reports of chondrichthyans are scarce, mainly because of their unique osmoregulatory mechanism, which hinders cell culture. Here, we focused on carpet shark species and the culture conditions for fibroblasts and lymphocytes. Using this method, we performed high-fidelity characterization of their karyotypes, namely 2n = 102 for the whale shark (Rhincodon typus) and zebra shark (Stegostoma fasciatum), and 2n = 106 for the brownbanded bamboo shark (Chiloscyllium punctatum) and whitespotted bamboo shark (C. plagiosum). We identified heteromorphic XX/XY sex chromosomes for the two latter species and demonstrated the first-ever fluorescence in situ hybridization of shark chromosomes prepared from cultured cells. Our technical solution is applicable to diverse chondrichthyan species and will deepen the understanding of early vertebrate evolution at the molecular level.

genomics↗