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Shimada, I. S.

Publications and source records attributed to Shimada, I. S..

2 recordsLinked to original sources

Gamete release in Ciona robusta: roles of gonadotropin-releasing hormone and the photoreception system

Gamete release, an essential event for animals, is regulated by various factors including environmental stimuli, neural circuit, and endocrine molecules. In this study, we investigated the mechanisms regulating gamete release in the ascidian Ciona robusta, part of the sister group of vertebrates. Ciona is a hermaphrodite, releasing sperm first from orange-pigmented organ (OPO) at the end of the spermiduct, followed by eggs from the oviduct beneath the spermiduct knob-like structure. In this study, behavioral and morphological analyses revealed that this sequential release occurs because the knob-like structure compresses the oviduct opening at the onset of gamete release. Observations of transgenic Ciona expressing Kaede under the gonadotropin-releasing hormone 2 (Gnrh2) promoter showed that Gnrh2-expressing neurons and fibers accumulate in the epithelium around the spermiduct openings. In contrast, Gnrh1-expressing neurons are localized in the cerebral ganglion and project toward the ovary, suggesting distinct roles of GnRH1 and GnRH2 in reproductive regulation. RNA-seq and real-time PCR analyses revealed that Opsin2, Opsin3, beta-carotene-15,15-monooxygenase (Bco), and several ion channel genes are specifically expressed in the OPO, along with Gnrh2. In situ hybridization showed that these genes are localized in the innermost OPO layer, suggesting that the OPO functions as a photoreceptive organ. Although, Gnrh2 expression has been considered low in adult Ciona, our study revealed strong OPO-specific expression with photoreceptive genes. Collectively, these findings suggest that GnRH2 plays a central role in gamete release regulation, potentially in coordination with the photoreceptive system, while GnRH1 may regulate ovarian functions. These results indicate that C. robusta employs distinct GnRH systems in a tissue-specific manner to regulate reproduction.

evolutionary biology↗

Spatial ciliary signaling regulates the dorsal/ventral regionalization of human brain organoids

Regionalization of the brain is a fundamental question in human developmental biology. Primary cilia are known for a critical organelle for dorsal/ventral fate of brain formation in mice, but little is known about how signaling in the primary cilia regulate regionalization of the human brain. Here, we found that signaling in the primary cilia function in regionalization of the brain using brain organoids derived from human induced pluripotent stem (iPS) cells. Deletion of a ciliary GTPase, ARL13B, induced partially ventralized neural stem cells in the dorsal cortical organoids, despite using a guided dorsal cortical organoid differentiation protocol. Mechanistically, ARL13B knockout (KO) neural stem cells decreased ciliary localization of GPR161, a negative regulator of SHH signaling in primary cilia and increased SONIC HEDGEHOG (SHH) signaling. GPR161 deletion also induced ventralized neural stem cells in the dorsal cortical organoids, despite using the guided differentiation protocol. GPR161 deletion increased SHH signaling mediated by decreased GLI3 repressor formation. Pharmacological treatment to increase cAMP levels rescued GLI3 repressor formation and the differentiation of dorsal neural stem cells in GPR161 KO brain organoids. Importantly, elevating the amount of ciliary cAMP by optogenetics restored the generation of dorsal neural stem cells in GPR161 KO brain organoids. These data indicate that spatial ciliary signaling, the ARL13B-GPR161-cAMP axis in primary cilia, is a fundamental regulator of the dorsal/ventral regionalization of the human brain.

developmental biology↗