bioRxiv Science⌕ Search

bioRxiv · 10.1101/2023.06.09.544159

Photoperiod regulates gonadotrope cell division in medaka via melatonin, Tsh and folliculostellate cells

Abstract

In vertebrates, pituitary gonadotropins (follicle-stimulating and luteinizing hormones: FSH and LH) regulate gonadal development and maturation, therefore playing an essential role in reproduction. The seasonal regulation of gonadotropins has been widely studied in mammals and birds, and in these taxa thyroid-stimulating hormone (TSH) was found to play a critical role. By contrast, the seasonal regulation of gonadotropins remains unclear in teleost fish. In addition, the seasonal regulation of gonadotrope (gonadotropin-producing cell) proliferation has not been elucidated in any vertebrate group. Using the teleost fish medaka as a model, we show for the first time that long photoperiod enables reproduction by stimulating gonadotropin mRNA synthesis and gonadotrope cell proliferation. In female medaka, this proliferation is achieved by gonadotrope mitosis. We then demonstrate that in female medaka, photoperiod stimulates gonadotropin mRNA production and mitosis via an indirect intra-pituitary pathway, involving pituitary Tsh cells. We show that non-endocrine folliculostellate cells in the pituitary mediate the Tsh signal regulating gonadotrope activity and proliferation, as they are the only pituitary cells to express Tsh receptors and send projections to gonadotropes. Finally, we show that melatonin suppresses pituitary tshba expression in fish exposed to long photoperiod, suggesting that short photoperiod inhibits gonadotropin synthesis via melatonin in both fish and mammals. This study therefore demonstrates that in fish, photoperiod regulates gonadotrope cell activity and mitosis via a melatonin-Tsh pathway. It also reveals the existence of a novel intra-pituitary pathway for seasonal regulation of gonadotropes, involving folliculostellate cells, which we propose might also exist in other vertebrates. SIGNIFICANCEIn seasonally breeding mammals and birds, the production of the hormones that regulate reproduction (gonadotropins) by gonadotropes is controlled by the pituitary thyroid-stimulating hormone (TSH) through an indirect pathway via the brain. However, in fish, how seasonal environmental signals influence gonadotropins remains unclear. Here, we show that in a long day seasonally breeding fish, medaka, photoperiod not only regulates the activity (hormone production) of the gonadotropes but also their proliferation. We also reveal a novel intra-pituitary pathway that regulates gonadotrope cell activity and number. This pathway involves melatonin, Tsh, and folliculostellate cells. Interestingly, as all these components are also found in the mammalian pituitary, this study suggests the existence of an alternative regulatory mechanism of seasonal gonadotropin production across vertebrates.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Royan, M. R., Hodne, k., Rasoul, N.-l., Weltzien, F.-A., Henkel, C., Fontaine, R.. 2023-06-11. Photoperiod regulates gonadotrope cell division in medaka via melatonin, Tsh and folliculostellate cells. https://doi.org/10.1101/2023.06.09.544159

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

Connexin 40 deficiency alters the temporal profile of postictal oxygen dynamics following focal seizures.

Epilepsy is increasingly recognized as a disorder involving both neuronal and vascular dysfunction. While connexin signaling has been implicated in epileptogenesis, the contribution of vascular connexins to seizure associated cerebrovascular pathology remains poorly understood. Connexin40 (Cx40) is an endothelial gap junction protein that plays a crucial role in vascular communication and blood-flow regulation. Seizures induce dynamic changes in cerebral perfusion and oxygenation, including prolonged postictal hypoperfusion/hypoxia. To determine whether Cx40 influences postictal hypoxia following focal seizures, we examined seizure characteristics and postictal oxygen dynamics in Cx40 knockout (Cx40-/-) mice using an established focal hippocampal seizure model. Electrically kindled seizures were elicited in wild-type and Cx40-/- mice, and local hippocampal tissue oxygenation was continuously monitored before and after seizure induction. Seizure duration did not differ between genotypes, indicating comparable seizure severity. Interestingly, Cx40 deletion altered the temporal pattern of postictal oxygen recovery, producing greater early hypoxia and a delayed secondary rebound in pO2 despite similar peak oxygen levels and overall hypoxic burden. These findings demonstrate that loss of Cx40 selectively alters the temporal profile of postictal oxygen dynamics without affecting seizure duration. Taken together, the results suggest that endothelial gap junctional communication contributes to postictal vascular recovery and identify Cx40 as a potential modulator of seizure associated neurovascular dysfunction.

neuroscience↗

Attention Across Scales: From Individual Variation to Social Hierarchies and Brain Networks in Semi-Free-Ranging Macaques

Attention is a fundamental brain function supporting perception, decision-making, and social behavior, and its dysfunction profoundly impairs daily life. It is both dynamic and stable, varying across observations and individuals, changing across the lifespan, and being shaped by social and environmental experience. Yet capturing this complexity remains a central challenge in neuroscience. Here, we integrated longitudinal behavioral assessments of semi-free-ranging macaques living in naturalistic social groups with resting-state fMRI. We quantified performance across days, ages, and social hierarchies and related it to intrinsic brain organization. Distinct attentional phenotypes emerged, including individuals with reduced attentional control. Performance followed an inverted-U lifespan trajectory, improving from childhood to adulthood before declining. Social status modulated attentional performance. Critically, nonlinear lifespan trajectories and associations with individual attentional differences were most clearly expressed in frontoparietal connectivity. Together, these findings reveal how sustained attention is organized across scales, providing a biological framework for its individual diversity, social modulation, and neural basis.

neuroscience↗

Decoding natural scenes from patterned optogenetic responses in mouse visual cortex

A central challenge in developing visual cortical prostheses is to determine how visual stimuli should be transformed into effective patterns of cortical stimulation. Although advances in stimulation technologies, including optogenetics, provide increasingly precise control over cortical activity, it remains unclear whether artificially evoked activity can reproduce the information content of naturally evoked visual representations. Here we establish a quantitative framework for evaluating visual encoding strategies by decoding cortical responses evoked by natural vision and patterned optogenetic stimulation. We developed a novel dual-modal paradigm in awake mice to bridge the gap between endogenous photostimulation and artificial network driving. By co-expressing the high-performance calcium indicator GCaMP6s and the red-shifted, ultra-sensitive opsin rsChRmine-oScarlet in the primary visual cortex (V1), we successfully translated dynamic natural movie frames into patterned, spatiotemporal optogenetic stimulation. Quantitative comparisons of macro-scale dynamics demonstrated that this patterned optogenetic injection evokes cortical states highly comparable and representationally aligned with those driven by actual visual photostimulation. To systematically evaluate the fidelity of these responses, we developed STAR, a deep learning model featuring spatial and temporal attention mechanisms, and successfully reconstructed the frames of natural movies from V1 signals under both experimental modalities. Collectively, our results demonstrate that complex sensory information can be both naturally encoded and synthetically injected into V1 circuits with high decoding fidelity. This work provides an empirical and computational proof-of-concept for intelligent, closed-loop biomimetic encoders, establishing a robust framework for next-generation cortical visual neuroprostheses and bidirectional brain-machine interfaces.

neuroscience↗