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Biology subjects

Sato, M. P.

Publications and source records attributed to Sato, M. P..

8 recordsLinked to original sources

A comparative single-cell transcriptomic atlas for diverse populations of vertebrate hair cells

Mechanosensitive hair cells vary widely in morphology and regenerative capacity across vertebrate organs and species. To investigate their underlying transcriptomic diversity, we integrated human, mouse, chicken, and zebrafish single-cell and single-nucleus RNA sequencing datasets and assembled a cross-species atlas of hair cells spanning organs, developmental stages, and species. Analysis of 29 hair cell populations, encompassing the major cochlear, vestibular, and lateral-line hair cell types, identified approximately 5,000 genes enriched in at least one hair cell population compared to supporting cells from the same organs. Unsupervised clustering of these hair cell-enriched (HCE) genes defined species-, organ-, and hair cell state-associated cohorts as well as broadly conserved hair cell-enriched programs. Using an AUC-based scoring framework, we further defined 884 pan hair cell-enriched (pan-HCE) genes with elevated expression in most developing and/or mature hair cell populations, including genes implicated in deafness, mechanotransduction, and synaptic transmission, along with genes not previously linked to hair cell function. Independent analysis of developing hair cells using the same metrics stratified pan-HCE genes based on when they are first enriched and identified an additional 97 genes that are transiently enriched. We used the pan- and developing HCE gene sets to assess transcriptional similarity between baseline hair cell states and hair cells produced during avian hair cell regeneration and in mouse cochlear organoids, as well as hair cell-like populations produced by fibroblast reprogramming. HCE gene sets with different developmental dynamics identified young vs. more mature hair cells when projected onto independent single-cell RNA sequencing datasets from developing zebrafish, mouse, and human. We provide a web-based resource of all HCE metrics and expression profiles, enabling future exploration of vertebrate hair cell gene expression across organs, species, and experimental contexts.

neuroscience↗

Chromosome-scale genome assembly of Cycas revoluta provides insights into cycad diversification and species diversity

Cycads are an ancient group of seed plants. Despite their ancient origin, many extant cycad genera exhibit high species diversity. The specialized reproductive traits in cycads, dioecy governed by the XY sex-determination system and the elaborate co-evolutionary synergy with insect pollinators, may facilitate lineage diversification. Here, we present a chromosome-scale genome sequence of Cycas revoluta, the species in which plant spermatozoids were discovered in 1896. The genome sequence spanned 11.6 Gb, 98.4% of which were anchored onto the 11 cycad chromosomes. Repetitive sequences occupied 9.8 Gb, and 31,481 genes were predicted. Based on this genome assembly, the X- and Y-associated genomic regions were characterized, and candidate genes for sex determination were identified. In addition, the genomic positions of genes for sex-related traits were determined. Subsequently, we analyzed transcriptomes for thermogenesis responsible for attracting insect pollinators. Through these comprehensive analyses, we provide new insights into the genomic basis of cycad diversification and species diversity.

genomics↗

Genomic basis of rapid urban evolution revealed by the subgenome-resolved genome of octoploid Oxalis corniculata

Urbanization is a major driver of contemporary evolution, yet the genomic basis of urban adaptation remains poorly understood, particularly in non-model plants with complex polyploid genomes. Here, we investigate the genetic mechanisms underlying leaf color variation in the octoploid Oxalis corniculata, a phenotype associated with heat tolerance in urban environments. By integrating high-fidelity long-read sequencing and chromosome conformation capture, we generated the subgenome-resolved, chromosome-scale genome assemblies for both red- and green-leaved lines, resolving four distinct subgenomes. LTR insertion timing revealed a two-step hybridization history that established this octoploid genome within the last 1 million years. Leveraging a nationwide citizen science initiative, we collected and analyzed over 1,700 samples across a broad geographic range. We identified a major locus on one subgenome underlying this variation and implicate a coding-sequence repeat-length polymorphism in a MYB transcription factor as the candidate causal variant. This simple sequence repeat likely acts as a molecular "tuning knob" for rapid adaptation to urban heat islands. This study provides a new baseline for evolutionary ecological genomics in plants and highlights the power of integrating advanced genomics with public participation to forecast evolutionary responses in an increasingly urbanized world.

genomics↗

Impaired trap closure in the counting-deficient Venus flytrap mutant DYSCALCULIA is caused by cell wall biomechanics

Living in nutrient-poor environments, the carnivorous Venus flytrap Dionaea muscipula captures animal prey to compensate for this deficiency. Stimulation of trigger hairs located on the inner trap surface elicits an action potential (AP). While two consecutive APs result in fast trap closure in wildtype (WT) plants, sustained AP generation by the insect struggling to escape the trap leads to jasmonic acid (JA) biosynthesis, formation of the digestive "stomach", and release of enzymes needed to decompose the victim. The Dionaea muscipula DYSCALCULIA (DYSC) mutant is able to fire touch-induced APs, but unlike WT plants, it does not snap-close its traps after two consecutive APs. Moreover, DYSC plants fail to properly initiate the JA pathway in response to mechanostimulation and even wounding, a well-known JA-dependent process conserved among plants. As demonstrated in previous studies, this DYSC mutant defect is associated with impaired decoding of mechanostimulation (i.e. touch) -induced Ca2+ signals. External JA application to the trap, however, restores slow trap closure and digestive gland function in DYSC, while rapid trap closure is JA-independent and cannot be rescued by exogenous JA application. Higher frequency mechanostimulation and thus more APs, however, revealed that DYSC is still able to close its traps, albeit much slower than WT plants. To reveal the molecular underpinnings of DYSCs delayed trap movement, we generated a chromosome-scale Dionaea genome assembly and profiled gene expression. The refined transcriptomic analysis uncovered widespread misregulation of cell wall-related genes in DYSC, implicating altered cell wall plasticity in the sluggish mutant. Cell indentation studies by atomic force microscopy revealed a strictly localized and strikingly enhanced stiffening of the cell wall for DYSC that may hinder rapid trap closure and snap buckling. Together, these genomic, transcriptomic, and biophysical data identify cell wall elasticity as a key constraint on voltage and Ca2+ dependent trap kinetics. This finding documents the interrelationship between mechanosensing and Ca2+ signaling in the ultrafast capture organ of the Venus flytrap.

plant biology↗

Near-complete telomere-to-telomere de novo genome assemblies of Egyptian clover (Trifolium alexandrinum)

Egyptian clover (Trifolium alexandrinum L.), also known as berseem clover, is an important forage crop to semi-arid conditions that was domesticated in ancient Egypt and introduced and well adapted to numerous countries. Despite its agricultural importance, genomic research on Egyptian clover has been limited to developing efficient modern breeding programs. In the present study, we constructed near-complete telomere-to-telomere-level genome assemblies for two Egyptian clover cultivars, Helaly and Fahl. Initial assemblies were established by using highly-fidelity long-read technology. To extend sequence contiguity, we developed a gap-targeted sequencing (GAP-Seq) method, in which contig ends are targeted for sequencing to obtain long reads bridging two contigs. The total length of the resultant chromosome-level assemblies was 547.7 Mb for Helaly and 536.3 Mb for Fahl. These differences in sequence length can be attributed to the expansion of DNA transposons. Population genomic analysis using single-nucleotide polymorphisms revealed 38 highly conserved genomic regions within Helaly. Growth- and stress response-associated gene ontologies were enriched in the 38 regions, indicating that these genes may determine the unique characteristics of Helaly. Comprehensive genomic resources can provide valuable insights into genetic improvements in Egyptian clover and legume genomics.

genomics↗

CAP peptide artificially induces insect gall

Galls caused by gall-inducing insects in their host plants clearly illustrate the concept of extended phenotype, which refers to traits expressed in a host organism when manipulated by a parasite. Candidate effector molecules involved in gall formation, such as phytohormones, amino acids, and proteins, have been reported in numerous studies. However, to date, no attempts to artificially regenerate gall structures using effector candidates have been reported. In this study, we tested the peptide from Cysteine-rich secretory proteins, Antigen 5, and Pathogenesis-related 1 proteins, CAP peptide as a gall-inducing effector candidate obtained from transcripts isolated from the horned gall aphid, (Schlechtendalia chinensis) through in silico screening and the Arabidopsis-based gall-forming assay, which is a bioassay system for analysing the molecular mechanisms of gall formation. Furthermore, we succeeded in generating an artificial gall in the host plant Veronica peregrina, without any insect parasitism, using three minimal effector elements: CAP peptide, auxin, and cytokinin. Given the strong similarities observed in organ structure with a central cavity and three types of tissue and gene expression patterns between the native and artificial galls, we concluded that CAP peptide is a general gall-inducing effector peptide secreted by gall-inducing insects.

molecular biology↗

Telomere-to-telomere genome assembly of an allotetraploid pernicious weed, Echinochloa phyllopogon

Echinochloa phyllopogon is an allotetraploid pernicious weed species found in rice fields worldwide that often exhibits resistance to multiple herbicides. An accurate genome sequence is essential to comprehensively understand the genetic basis underlying the traits of this species. Here, the telomere-to-telomere genome sequence of E. phyllopogon was presented. Eighteen chromosome sequences spanning 1.0 Gb were constructed using the PacBio highly-fidelity long technology. Of the 18 chromosomes, 12 sequences were entirely assembled into telomere-to-telomere and gap-free contigs, whereas the remaining six sequences were constructed at the chromosomal level with only eight gaps. The sequences were assigned to the A and B genomes with total lengths of 453 and 520 Mb, respectively. Repetitive sequences occupied 42.93% of the A genome and 48.47% of the B genome, although 32,337, and 30,889 high-confidence genes were predicted in the A and B genomes, respectively. This suggested that genome extensions and gene disruptions caused by repeated sequence accumulation often occur in the B genome before polyploidization to establish a tetraploid genome. The highly accurate and comprehensive genome sequence would contribute to elucidating the population structure of this species and could be a milestone in understanding the molecular mechanisms of the pernicious traits and to developing effective weed control strategies to avoid yield loss in rice production.

genomics↗

Telomere-to-telomere genome assembly of matsutake (Tricholoma matsutake)

Here, we report the first telomere-to-telomere genome assembly of matsutake (Tricholoma matsutake), which consists of 13 chromosomes (spanning 160.7 Mb) and a 76 kb circular mitochondrial genome. The chromosome sequences were supported with telomeric repeats at the ends. GC-rich regions are located at the middle of the chromosomes and are enriched with long interspersed nuclear elements (LINEs). Repetitive sequences including long-terminal repeats (LTRs) and LINEs occupy 71.7% of the genome. A total of 28,322 potential protein-coding genes and 324 tRNA genes were predicted. Sequence and structure variant analysis revealed 2,322,349 single nucleotide polymorphisms and 102,831 insertions and deletions, 0.6% of which disrupted gene structure and function and were therefore classified as deleterious mutations. As many as 683 copies of the LTR retrotransposon MarY1 were detected in the matsutake genome, 91 of which were inserted in gene sequences. In addition, 187 sequence variations were found in the mitochondrial genome. The genomic data reported in this study would serve as a great reference for exploring the genetics and genomics of matsutake in the future, and the information gained would ultimately facilitate the conservation of this vulnerable genetic resource.

genomics↗