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Biology subjects

Naka, H.

Publications and source records attributed to Naka, H..

3 recordsLinked to original sources

Oxidized phosphatidylinositol impairs lysosomal membrane repair to promote ferroptosis

Ferroptosis is a regulated form of cell death driven by iron-dependent and unrestrained lipid peroxidation, which generates phospholipid hydroperoxides that cause membrane rupture. Oxidized phospholipid species, including oxidized arachidonic acid-containing phosphatidylethanolamines (PE), are abundant during ferroptosis. However, previous studies have examined only a limited number of lipid species, and it remains unclear which oxidized phospholipids consistently arise across distinct cell types and ferroptosis-inducing conditions. Here, we comprehensively profiled oxidized phospholipids generated during ferroptosis across multiple cell lines and animal models. We identified PE 18:0_20:4;O3 and phosphatidylinositol (PI) 18:0_20:4;O3 as oxidized phospholipid species that are consistently detectable across all tested ferroptosis-inducing conditions. Furthermore, oxidized phosphatidylinositol impairs the phosphoinositide-initiated membrane tethering and lipid transport (PITT) pathway, a key mechanism for lysosomal membrane repair. These results indicate that the oxidized phospholipids identified here may serve as markers of ferroptosis while also acting as bioactive mediators that compromise lysosomal membrane homeostasis and repair.

cell biology↗

Evolution of Wolbachia male-killing mechanism within a host species

Male-killing bacterial symbionts, prevalent in arthropods, skew population sex ratios by selectively killing male progeny, profoundly impacting ecology and evolution of their hosts. Male-killing is a convergently evolved trait, with microbes evolving diverse male-killing mechanisms across host species with widely divergent sex determination pathways. A common evolutionary response to MK presence is the spread of suppressor mutations that restore male survival. In this study, we demonstrate evolution of a novel male-killing mechanism that is insensitive to an existing male-killing suppressor. Hypolimnas bolina butterflies from Yogyakarta, Indonesia, showed extreme female biased population sex ratio associated with high prevalence of a male-killing Wolbachia. This strain, wBol1Y, shared a very recent common ancestor with the previously characterized suppressed male-killing strain in the species, wBol1, but retained its male-killing ability in the presence of the male-killing suppressor. The genome of wBol1Y differed from the suppressed wBol1 in carrying an additional prophage that included strong candidate genes for male-killing. In vitro and in vivo data demonstrated that wBol1Y feminized splicing and expression of lepidopteran sex determination pathway genes, and that the gene Hb-oscar - present on wBol1Ys unique prophage insert - was sufficient to disrupt the male sex determination pathway. Our study demonstrates the diversity of male-killing mechanisms is a product both of interaction with varying insect sex determination systems and evolution of male-killing within a host species. Our data indicate male-killer and host may be involved in escalating arms races, where spread male-killing suppression drives evolution of additional systems that reestablish male killing by the symbiont.

evolutionary biology↗

The dual role of TonB genes in turnerbactin uptake and carbohydrate utilization in the shipworm symbiont Teredinibacter turnerae

Teredinibacter turnerae is an intracellular bacterial symbiont that resides in the gills of shipworms, wood-eating bivalve mollusks. This bacterium produces a catechol siderophore, turnerbactin, required for the survival of this bacterium under iron limiting conditions. The turnerbactin biosynthetic genes are contained in one of the secondary metabolite clusters conserved among T. turnerae strains. However, Fe(III)-turnerbactin uptake mechanisms are largely unknown. Here, we show that the first gene of the cluster, fttA a homologue of Fe(III)-siderophore TonB-dependent outer membrane receptor (TBDR) genes is indispensable for iron uptake via the endogenous siderophore, turnerbactin, as well as by an exogenous siderophore, amphi-enterobactin, ubiquitously produced by marine vibrios. Furthermore, three TonB clusters containing four tonB genes were identified, and two of these genes, tonB1b and tonB2, functioned not only for iron transport but also for carbohydrate utilization when cellulose was a sole carbon source. Gene expression analysis revealed that none of the tonB genes and other genes in those clusters were clearly regulated by iron concentration while turnerbactin biosynthesis and uptake genes were up-regulated under iron limiting conditions, highlighting the importance of tonB genes even in iron rich conditions, possibly for utilization of carbohydrates derived from cellulose.

microbiology↗