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Biology subjects

Ishizaki, T.

Publications and source records attributed to Ishizaki, T..

4 recordsLinked to original sources

Natural variation in IBF1 disrupts its interaction with CHS1 and affects metabolism of hulls in rice

Secondary metabolites in plants have various physiological functions, including antioxidant and antibacterial activities. Previous studies have suggested genes and associated molecular mechanisms involved in the production of diverse secondary metabolites. However, much less is known about the genetic bases underlying within-species diversity in metabolite accumulation patterns, particularly in less focused tissues such as rice hulls. In this study, we aimed to identify the causal variant that affects flavonoid accumulation in rice hulls. We identified an F-box containing protein IBF1 is causal for genotypic differences in hull color through positional cloning. The variety IR64, with straw-white hulls, harbors functional IBF1 proteins that interact with a chalcone synthase, CHS1. Conversely, frame-shift mutations of IBF1 in the variety DJ123, which has pigmented hull color, resulted in a lack of a Kelch domain essential for the IBF1-CHS1 interaction. As a result, the DJ123 variant of IBF1 (IBF1DJ123) no longer interacted with CHS1, which was further supported by deep learning-based protein structural modeling. Further metabolome and transcriptome analyses using IR64 and an IR64-based chromosomal segment substitution line (CSSL) carrying IBF1DJ123 revealed an increase in the content of multiple flavonoids (such as naringenin and luteolin), while suppressing the expression of CAD involved in lignin synthesis. Metabolites in the CSSL carrying IBF1DJ123 suppressed the growth and siderophore generation activity of Pantoea species, which can act as beneficial or pathogenic endophytes. This study highlights the impact of a single gene on diverse metabolite accumulation patterns and suggests that this change may provide defense against pathogens.

plant biology↗

Whole-genome sequencing reveals the molecular basis of sex determination in the dioecious wild yam Dioscorea tokoro

Dioecious plants, which have distinct male and female individuals, constitute [~]5% of angiosperm species and have emerged frequently and independently from hermaphroditic ancestors. Although recent molecular studies of sex determination have started to reveal the diversity of the genetic systems underlying dioecy, research on the evolution of dioecy is limited, especially in monocots. Here, we describe the molecular basis of sex determination in the monocot Dioscorea tokoro, a dioecious wild yam endemic to East Asia. Chromosome-scale and haplotype-resolved genome assemblies and linkage analysis suggested that this plant has a male heterogametic sex determination (XY) system, with sex determination regions located on chromosome 3. Sequence read coverage analysis of the sex chromosomes revealed X- and Y-specific regions in putative pericentromeric chromosome regions. Within the Y-specific region, we identified two candidate genes that are likely involved in sex determination: BLH9, encoding a homeobox protein, and HSP90, encoding a molecular chaperone. BLH9 has similar functions to AtBLH9 in Arabidopsis thaliana. BLH9 is thought to suppress female organ development, whereas HSP90 might be required for pollen development. These results shed light on the complex evolution of dioecy in plants. Author summarySexual reproduction is a nearly universal, indispensable feature of evolution in eukaryotes. The molecular mechanisms underlying sex determination vary depending on the taxon. However, most information about this process was derived from studies of model organisms and/or domesticated species. To elucidate the diversity and evolution of sex determination, we need to expand the taxonomic breadth of these investigations. Here, we focused on the monocot genus Dioscorea, which contains species with multiple sex-determination systems, suggesting that frequent evolutionary transitions occur between the different sex-determination systems. We investigated the genetics of sex determination in Dioscorea tokoro, a dioecious wild yam endemic to East Asia. Whole-genome assembly and genetic analysis, along with transcriptome analysis, suggested that this species employs a male heterogametic sex determination (XY) system, with two Y-chromosome-specific genes that might be involved in male and female differentiation. These findings enhance our understanding of the complex evolution of dioecy.

plant biology↗

Erythrocyte membrane protein 3 (EMAP3) is exposed on the surface of the Plasmodium berghei infected red blood cell

The human malaria parasite Plasmodium falciparum invades red blood cells (RBC) and exports parasite proteins to transform the host cell for its survival. These exported proteins facilitate uptake of nutrients and cytoadherence of the infected RBC (iRBC) to endothelial cells of small blood vessels, thus protecting the iRBC from splenic clearance. The parasite protein PfEMP1 and the host protein CD36 play a major role in P. falciparum iRBC cytoadherence. The murine parasite Plasmodium berghei is a widely used experimental model that combines high genetic tractability with access to in vivo studies. P. berghei iRBC also sequesters in small blood vessels, mediated by binding to CD36. However, the parasite proteins binding to CD36 are unknown and only very few parasite proteins, including EMAP1 and EMAP2, have been identified that are present at the iRBC membrane. We have identified a new protein named EMAP3 and demonstrated its export to the iRBC membrane where it interacts with EMAP1, with only EMAP3 exposed on the outer surface of the iRBC. Parasites lacking EMAP3 display no significant reduction in growth or sequestration, indicating that EMAP3 is not the major CD36-binding protein. The outer-surface location of EMAP3 offers a new scaffold for displaying P. falciparum proteins on the surface of the P. berghei iRBC, providing a platform to screen in vivo putative inhibitors of P. falciparum cytoadherence.

microbiology↗

A scalable CRISPR-Cas9 gene editing system facilitates CRISPR screens in the malaria parasite Plasmodium berghei

Many Plasmodium genes remain uncharacterised due to low genetic tractability. Previous large scale knockout screens have only been able to target about half of the genome in the more genetically tractable rodent malaria parasite Plasmodium berghei. To overcome this limitation, we have developed a scalable CRISPR system called PbHiT, which uses a single cloning step to generate targeting vectors with 100 bp homology arms physically linked to a guide RNA (gRNA) that effectively integrate into the target locus. We show that PbHiT coupled with gRNA sequencing robustly recapitulates known knockout mutant phenotypes in pooled transfections. Furthermore, we provide vector designs and sequences to target the entire P. berghei genome and scale-up vector production using a pooled ligation approach. This work presents for the first time a tool for high-throughput CRISPR screens in Plasmodium for studying the parasites biology at scale.

molecular biology↗