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Kawai-Toyooka, H.

Publications and source records attributed to Kawai-Toyooka, H..

2 recordsLinked to original sources

Synergistic effects of proteinaceous pheromone and nitrogen starvation on male gametogenesis in the anisogamous volvocine alga Eudorina

In volvocine algae, gametogenesis is triggered by different cues depending on the species and their sexual systems. In isogamous unicellular organisms such as Chlamydomonas reinhardtii, which produce gametes of equal size and morphology, nitrogen depletion induces gametogenesis. In contrast, in oogamous multicellular species of the genus Volvox, which produce large, immobile eggs and small motile sperm, male gametogenesis is induced by a sex pheromone secreted by sperm packets (SPs), i.e., bundles of male gametes. Eudorina, an anisogamous multicellular volvocine alga that produces motile gametes of different sizes, is known to form SPs under nitrogen-depleted conditions. Intriguingly, a pheromone-like factor, present in male conditioned medium (CM), has also been implicated in SP formation. To clarify the relative contributions of nitrogen starvation and pheromone signaling, we conducted semi-quantitative analyses of SP induction using synchronously cultured male colonies of Eudorina. When CM was added to male cultures during an early maturation stage, most colonies formed SPs regardless of nitrogen availability. However, when the CM was diluted 100- to 100,000-fold, SP formation was significantly more efficient under nitrogen-depleted conditions than under nitrogen-replete conditions. Notably, SPs never formed without the addition of CM, even in a nitrogen-depleted medium. The SP-inducing activity of the CM was found to markedly decrease with protease treatment. These findings suggest that spermatogenesis in Eudorina is induced by a proteinaceous sex pheromone secreted by male colonies, and that nitrogen depletion, while not essential, enhances this pheromone activity.

cell biology↗

Chlamydomonas γ-tubulin mutations reveal a critical role of γ-TuRC in maintaining the stability of centriolar microtubules

The centriolar triplet microtubule consists of an A-tubule with 13 protofilaments, and B-and C-tubules, each with 10 protofilaments. Although the formation of the triplets has been shown to require {gamma}-tubulin, its specific role in the formation of each tubule remains elusive. We isolated two novel Chlamydomonas reinhardtii mutants, bld13-1 and bld13-2, each expressing {gamma}-tubulin with a single amino-acid substitution (T292I or E89D). Similar to known centriole-deficient mutants, both mutants exhibited defects in ciliary assembly, nuclear number, as well as the number and orientation of cytoplasmic microtubules. Genetic analyses of the mutants, along with the expression of the mutant {gamma}-tubulins in the wild-type cells, suggested that both mutants exert dominant-negative effects over wild-type {gamma}-tubulin. Interestingly, although the centrioles in these mutants retained the typical nine triplet structure, their triplets frequently lacked several protofilaments in specific regions of the A- and C-tubules. The protofilament loss occurs more frequently in the proximal region of the centriole. These structural defects suggest a critical role for {gamma}-tubulin in maintaining the stability of the A- and C-tubules of centriolar triplets. Summary statementNovel Chlamydomonas {gamma}-tubulin mutations cause a partial loss of protofilaments in centriolar microtubules, indicating a critical role of {gamma}-tubulin in structural stabilization of triplet microtubules.

cell biology↗