Puberty is a critical transition period to achieve reproductive capacity in all mammalian species. At puberty, hypothalamic Kiss1 neurons release kisspeptin, stimulating gonadotropin-releasing hormone (GnRH) release and activating the hypothalamic-pituitary-gonadal (HPG) axis. Here, we show that Kiss1 neurons in the arcuate nucleus of the hypothalamus (Kiss1ARC) of female mice undergo profound intrinsic plasticity at puberty. Kiss1ARC neurons in brain slices from 3-wk-old mice, when depolarized, typically fire a short high-frequency burst of action potentials before falling silent. This would make them unsuitable for the sustained activity that is required to activate pulsatile GnRH secretion and the HPG axis. At 4 wk of age and after puberty, Kiss1ARC neurons can fire a sustained train of action potentials. There is a concomitant hyperpolarization in action potential threshold and postspike minimum voltage and larger medium after-hyperpolarizations (mAHP) and hyperpolarization-induced voltage sags. Transcriptomic profiling showed significant changes in ion channel expression after puberty. Using quantitative PCR, we confirmed changes in genes encoding voltage-gated sodium, calcium, potassium, and cation channels. Blocking hyperpolarization-induced cation channels caused Kiss1ARC neurons from postpuberty mice to fire less sustained trains of action potentials. Recordings from Kiss1ARC neurons in mice after ovariectomy and 17β-estradiol replacement revealed a critical window of estrogen-dependent plasticity between 3 and 6 wk, which is essential for the maturation of Kiss1ARC neurons and the development of their adult electrophysiological activity. This represents an example of sex steroid-dependent plasticity in the mammalian brain at puberty.
While hypothalamic kisspeptin (KP) neurons play well-established roles in the estrogen-dependent regulation of reproduction, little is known about extrahypothalamic KP-producing (KPLS) neurons of the lateral septum. As established previously, Kiss1 expression in this region is low and regulated by estrogen receptor- and GABAB receptor-dependent mechanisms. Our present experiments on Kiss1-Cre/ZsGreen knock-in mice revealed that transgene expression in the LS begins at Postnatal Day (P)33-36 in females and P40-45 in males and is stimulated by estrogen receptor signaling. Fluorescent cell numbers continue to increase in adulthood and are higher in females. Viral tracing uncovered that the bulk of KPLS fibers joins the medial forebrain bundle and terminates in the hypothalamic supramammillary nucleus. Smaller subsets innervate the medial amygdala or project to other limbic structures. One-quarter of gonadotropin-releasing hormone (GnRH)-immunoreactive perikarya in the preoptic area and their dendrites receive appositions from KPLS axons. OVX adult Kiss1-Cre/ZsGreen mice treated for 4 d with 17β-estradiol or vehicle were used for RNA sequencing studies of laser-microdissected KPLS neurons. The transcriptome included markers of GABAergic and neuropeptidergic (Penk, Cartpt, Vgf) cotransmission and 571 estrogen-regulated transcripts. Estrogen treatment upregulated the acetylcholine receptor transcript Chrm2 and, in slice electrophysiology experiments, caused enhanced muscarinic inhibition of KPLS neurons. Finally, we provided immunohistochemical evidence for homologous neurons in the postmortem human brain, suggesting that KPLS neurons may contribute to evolutionarily conserved regulatory mechanisms. Future studies will need to investigate the putative roles of KPLS neurons in the estrogen-dependent control of GnRH neurons and/or various hypothalamic/limbic functions.
The hypothalamus is a singular brain region with essential roles in the control of a wide diversity of vegetative functions, from growth and energy balance to reproduction. These processes are governed by interconnected neuroendocrine pathways that enable proper adjustment of fundamental biological programs to internal and external cues along the lifespan. Puberty is a key maturational phenomenon that permits full sexual and somatic maturation, and attainment of reproductive capacity, together with important psychological changes. Puberty is to a large extent, a brain-driven phenomenon, with the hypothalamus playing a major role as the essential hub for the integration of central and peripheral signals, responsible for driving puberty onset and its modulation by endogenous and environmental factors. Our understanding of the hypothalamic circuits governing puberty has expanded enormously in the last decades, as exemplified by the discovery and later characterization of the roles of neurons producing kisspeptins, aka Kiss1 neurons, as major gatekeepers of puberty onset, mainly through their role as indispensable upstream activators of GnRH neurons. In recent years, the intimate molecular programs and co-players of Kiss1 neurons that participate in pubertal control have been partially exposed. In addition, given the paramount importance of metabolic signals in the modulation of puberty, the nature and mechanisms of action of different factors, converging at the hypothalamus, that participate in pubertal modulation by the metabolic and nutritional status have been disclosed. While characterization of these regulatory circuits is still uncomplete, this review aims to provide a synoptic and updated view of our current knowledge of the essential elements responsible for the hypothalamic control of puberty, also as a means to understand the putative basis for acquired pubertal disorders, including those linked to metabolic perturbations, such as early-onset obesity or undernutrition.
Reproduction is safeguarded by multiple, often cooperative regulatory networks. Kisspeptin signaling, via KISS1R, plays a fundamental role in reproductive control, primarily by regulation of hypothalamic GnRH neurons. We disclose herein a pathway for direct kisspeptin actions in astrocytes that contributes to central reproductive modulation. Protein-protein-interaction and ontology analyses of hypothalamic proteomic profiles after kisspeptin stimulation revealed that glial/astrocyte markers are regulated by kisspeptin in mice. This glial-kisspeptin pathway was validated by the demonstrated expression of Kiss1r in mouse astrocytes in vivo and astrocyte cultures from humans, rats and mice, where kisspeptin activated canonical intracellular signaling-pathways. Cellular co-expression of Kiss1r with the astrocyte markers, GFAP and S100-β, occurred in different brain regions, with higher percentage in Kiss1- and GnRH-enriched areas. Conditional ablation of Kiss1r in GFAP-positive cells, in the G-KiRKO mouse, altered gene expression of key factors in PGE2 synthesis in astrocytes, and perturbed astrocyte-GnRH neuronal appositions, as well as LH responses to kisspeptin and LH pulsatility, as surrogate marker of GnRH secretion. G-KiRKO mice also displayed changes in reproductive responses to metabolic stress induced by high-fat diet, affecting female pubertal onset, estrous cyclicity and LH-secretory profiles. Our data unveil a non-neuronal pathway for kisspeptin actions in astrocytes, which cooperates in fine-tuning the reproductive axis and its responses to metabolic stress.
In brief The transcriptional profiles of Kiss1 neurons from the arcuate and the rostral periventricular region of the third ventricle of the hypothalamus have been directly compared in diestrous female mice. Differentially expressed genes provide molecular signatures for these two populations of Kiss1 neurons and insights into their physiology. Abstract The neuropeptide kisspeptin is produced by Kiss1 neurons and is required for normal mammalian fertility. The two main populations of Kiss1 neurons are located in the arcuate (ARC) and the rostral periventricular area of the third ventricle (RP3V) of the hypothalamus. To define the molecular signature of these Kiss1 populations, transcriptomics profiling was performed using purified Kiss1 neurons from diestrous stage female mice. From a data set of 7026 genes, 332 differentially expressed transcripts were identified between the Kiss1 ARC and Kiss1 RP3V neurons. These data have uncovered novel transcripts and expanded the receptor expression, co-transmitter and transcription factor profiles of Kiss1 neurons. Validation by quantitative RT-PCR confirmed differential expression of Cartpt, Ddc, Gal, Gda, Npy2r, Penk, Rasp18, Rxfp3, Slc18a2, and Th in Kiss1 RP3V neurons and Gpr83, Hctr2, Nhlh2, Nmn, Npr3, Nr4a2, Nr5a2, Olfm2, Tac2 and Tacr3 in Kiss1 ARC neurons. Enriched pathways common to both Kiss1 populations included the NF-kB, mTor, endocannabinoid, GPCR, Wnt and oestrogen signalling while some pathways (e.g. cytomegalovirus infection, dopaminergic and serotonergic biosynthesis) were specific to Kiss1 RP3V neurons. Our gene expression data set augments the existing data sets describing the transcriptional profiles of Kiss1 neuronal populations.
While hypothalamic kisspeptin (KP) neurons play well-established roles in the estrogen-dependent regulation of reproduction, little is known about extrahypothalamic KP-producing (KPLS) neurons of the lateral septum. Our studies on Kiss1-Cre/ZsGreen transgenic mice revealed that KP expression in the LS is linked to puberty and estrogen receptor signaling and neurons reach higher numbers in females. Viral tracing uncovered that KPLS axons abundantly innervate gonadotropin-releasing hormone neurons, the hypothalamic supramammillary nucleus and various limbic structures. RNA-Seq analysis of laser-microdissected KPLS neurons revealed a unique transcriptome profile containing markers of GABAergic and peptidergic (Penk, Cartpt, Vgf) cotransmission and 571 estrogen-dependent transcripts. Immunohistochemical evidence for homologous neurons in the post mortem human brain indicate that the KPLS neurons may contribute to evolutionarily conserved regulatory mechanisms. The KPLS system now emerges as a novel player in the estrogen-dependent control of gonadotropin-releasing hormone neurons and currently unknown hypothalamic and limbic functions requiring clarification. ### Competing Interest Statement The authors have declared no competing interest.
Puberty is a critical transition period to achieve fertility and reproductive capacity in all mammalian species. At puberty, the hypothalamic-pituitary-gonadal (HPG) is activated by neuroendocrine changes in the brain. Central to this are Kiss1 neurons that produce kisspeptin, a neuropeptide which is a potent stimulator of gonadotropin releasing hormone (GnRH) secretion. Kiss1 neurons in the arcuate region of the hypothalamus (Kiss1ARC) increase pulsatile secretion of GnRH at puberty. Other developmental maturational changes in the brain are often accompanied by neuronal plasticity changes but this has not been studied in Kiss1 neurons. Electrophysiological characterisation of Kiss1ARC neurons from female mice shows that these neurons undergo profound intrinsic plasticity at puberty with a critical window between 3 and 4 weeks. Immature Kiss1ARC neurons cannot sustain depolarisation-evoked firing for even 500 ms and instead fire a brief burst of high frequency spikes before falling silent. This would make them unsuitable for the sustained activity that is needed to activate GnRH neurons and trigger LH secretion in the HPG axis. After puberty, sustained firing can be maintained, which endows post-puberty Kiss1ARC neurons with a mature physiological phenotype that is amenable to neuropeptide modulation for generation of burst firing and pulsatile release of kisspeptin. There is a corresponding decrease in the threshold for action potential initiation, a more hyperpolarised post-spike trough and a larger medium after-hyperpolarisation (mAHP). Gene expression analysis showed a significant decrease in Scn2a (Nav1.2 channel), Kcnq2 (Kv7.2 channel) and Lrrc55 (BK channel auxiliary γ3-subunit) expression and an increase in Hcn1 (hyperpolarization activated cyclic nucleotide-gated potassium channel) expression which may contribute to the observed electrophysiological changes. Ovariectomy and β-estradiol replacement defined a window of estrogen-dependent plasticity of action potential firing at puberty, such that post-puberty Kiss1ARC neurons achieve a mature physiological phenotype for activation of the HPG axis. ### Competing Interest Statement The authors have declared no competing interest.
Coupling the release of pituitary hormones to the developmental stage of the oocyte is essential for female fertility. It requires estrogen to restrain kisspeptin (KISS1)-neuron pulsatility in the arcuate hypothalamic nucleus, while also exerting a surge-like effect on KISS1-neuron activity in the AVPV hypothalamic nucleus. However, a mechanistic basis for this region-specific effect has remained elusive. Our genomic analysis in female mice demonstrate that some processes, such as restraint of KISS1-neuron activity in the arcuate nucleus, may be explained by region-specific estrogen receptor alpha (ERα) DNA binding at gene regulatory regions. Furthermore, we find that the Kiss1-locus is uniquely regulated in these hypothalamic nuclei, and that the nuclear receptor co-repressor NR0B1 (DAX1) restrains its transcription specifically in the arcuate nucleus. These studies provide mechanistic insight into how ERα may control the KISS1-neuron, and Kiss1 gene expression, to couple gonadotropin release to the developmental stage of the oocyte.
Kisspeptin neurons in the mediobasal hypothalamus (MBH) are critical targets of ovarian estrogen feedback regulating mammalian fertility. To reveal molecular mechanisms underlying this signaling, we thoroughly characterized the estrogen-regulated transcriptome of kisspeptin cells from ovariectomized transgenic mice substituted with 17β-estradiol or vehicle. MBH kisspeptin neurons were harvested using laser-capture microdissection, pooled, and subjected to RNA sequencing. Estrogen treatment significantly ( p.adj . < 0.05) up-regulated 1,190 and down-regulated 1,139 transcripts, including transcription factors, neuropeptides, ribosomal and mitochondrial proteins, ion channels, transporters, receptors, and regulatory RNAs. Reduced expression of the excitatory serotonin receptor-4 transcript ( Htr4 ) diminished kisspeptin neuron responsiveness to serotonergic stimulation. Many estrogen-regulated transcripts have been implicated in puberty/fertility disorders. Patients ( n = 337) with congenital hypogonadotropic hypogonadism (CHH) showed enrichment of rare variants in putative CHH-candidate genes (e.g., LRP1B , CACNA1G , FNDC3A ). Comprehensive characterization of the estrogen-dependent kisspeptin neuron transcriptome sheds light on the molecular mechanisms of ovary–brain communication and informs genetic research on human fertility disorders.
Kisspeptin neurons in the arcuate nucleus of the hypothalamus generate gonadotrophin‐releasing hormone (GnRH) pulses, and act as critical initiators of functional gonadotrophin secretion and reproductive competency. However, kisspeptin in other brain regions, most notably the posterodorsal subnucleus of the medial amygdala (MePD), plays a significant modulatory role over the hypothalamic kisspeptin population; our recent studies using optogenetics have shown that low‐frequency light stimulation of MePD kisspeptin results in increased luteinsing hormone pulse frequency. Nonetheless, the neurochemical pathways that underpin this regulatory function remain unknown. To study this, we have utilised an optofluid technology, precisely combining optogenetic stimulation with intra‐nuclear pharmacological receptor antagonism, to investigate the neurotransmission involved in this circuitry. We have shown experimentally and verified using a mathematical model that functional neurotransmission of both GABA and glutamate is a requirement for effective modulation of the GnRH pulse generator by amygdala kisspeptin neurons.
Kisspeptin neurons residing in the rostral periventricular area of the third ventricle (KPRP3V) and the arcuate nucleus (KPARC) mediate positive and negative estrogen feedback, respectively. Here, we aim to compare transcriptional responses of KPRP3V and KPARC neurons to estrogen. Transgenic mice were ovariectomized and supplemented with either 17β-estradiol (E2) or vehicle. Fluorescently tagged KPRP3V neurons collected by laser-capture microdissection were subjected to RNA-seq. Bioinformatics identified 222 E2-dependent genes. Four genes encoding neuropeptide precursors (Nmb, Kiss1, Nts, Penk) were robustly, and Cartpt was subsignificantly upregulated, suggesting putative contribution of multiple neuropeptides to estrogen feedback mechanisms. Using overrepresentation analysis, the most affected KEGG pathways were neuroactive ligand-receptor interaction and dopaminergic synapse. Next, we re-analyzed our previously obtained KPARC neuron RNA-seq data from the same animals using identical bioinformatic criteria. The identified 1583 E2-induced changes included suppression of many neuropeptide precursors, granins, protein processing enzymes, and other genes related to the secretory pathway. In addition to distinct regulatory responses, KPRP3V and KPARC neurons exhibited sixty-two common changes in genes encoding three hormone receptors (Ghsr, Pgr, Npr2), GAD-65 (Gad2), calmodulin and its regulator (Calm1, Pcp4), among others. Thirty-four oppositely regulated genes (Kiss1, Vgf, Chrna7, Tmem35a) were also identified. The strikingly different transcriptional responses in the two neuron populations prompted us to explore the transcriptional mechanism further. We identified ten E2-dependent transcription factors in KPRP3V and seventy in KPARC neurons. While none of the ten transcription factors interacted with estrogen receptor-α, eight of the seventy did. We propose that an intricate, multi-layered transcriptional mechanism exists in KPARC neurons and a less complex one in KPRP3V neurons. These results shed new light on the complexity of estrogen-dependent regulatory mechanisms acting in the two functionally distinct kisspeptin neuron populations and implicate additional neuropeptides and mechanisms in estrogen feedback.
Sex steroid hormones act on hypothalamic kisspeptin neurons to regulate reproductive neural circuits in the brain. Kisspeptin neurons start to express estrogen receptors in utero, suggesting steroid hormone action on these cells early during development. Whether neurosteroids are locally produced in the embryonic brain and impinge onto kisspeptin/reproductive neural circuitry is not known. To address this question, we analyzed aromatase expression, a key enzyme in estrogen synthesis, in male and female mouse embryos. We identified an aromatase neuronal network comprising ∼6000 neurons in the hypothalamus and amygdala. By birth, this network has become sexually dimorphic in a cluster of aromatase neurons in the arcuate nucleus adjacent to kisspeptin neurons. We demonstrate that male arcuate aromatase neurons convert testosterone to estrogen to regulate kisspeptin neuron activity. We provide spatiotemporal information on aromatase neuronal network development and highlight a novel mechanism whereby aromatase neurons regulate the activity of distinct neuronal populations expressing estrogen receptors.SIGNIFICANCE STATEMENT Sex steroid hormones, such as estradiol, are important regulators of neural circuits controlling reproductive physiology in the brain. Embryonic kisspeptin neurons in the hypothalamus express steroid hormone receptors, suggesting hormone action on these cells in utero Whether neurosteroids are locally produced in the brain and impinge onto reproductive neural circuitry is insufficiently understood. To address this question, we analyzed aromatase expression, a key enzyme in estradiol synthesis, in mouse embryos and identified a network comprising ∼6000 neurons in the brain. By birth, this network has become sexually dimorphic in a cluster of aromatase neurons in the arcuate nucleus adjacent to kisspeptin neurons. We demonstrate that male aromatase neurons convert testosterone to estradiol to regulate kisspeptin neuron activity.
Mouse embryonic stem cells (ESCs) have played a crucial role in biomedical research where they can be used to elucidate gene function through the generation of genetically modified mice. A critical requirement for the success of this technology is the ability of ESCs to contribute to viable chimaeras with germ-line transmission of the genetically modified allele. We have identified several ESC clones that cause embryonic death of chimaeras at mid to late gestation stages. These clones had a normal karyotype, were pathogen free and their in vitro differentiation potential was not compromised. Chimaeric embryos developed normally up to E13.5 but showed a significant decrease in embryo survival by E17.5 with frequent haemorrhaging. We investigated the relationship between the ESCs transcriptional and epigenomic state and their ability to contribute to viable chimaeras. RNA sequencing identified four genes (Gtl2, Rian, Mirg and Rtl1as) located in the Dlk1-Dio3 imprinted locus that were expressed at lower levels in the compromised ESC clones and this was confirmed by qRT-PCR. Bisulphite sequencing analysis showed significant hypermethylation at the Dlk1-Dio3 imprinted locus with no consistent differences in methylation patterns at other imprinted loci. Treatment of the compromised ESCs with 5-azacytidine reactivated stable expression of Gtl2 and rescued the lethal phenotype but only gave low level chimaeras.
Kiss1 neurons of the arcuate (ARC) nucleus form an interconnected network of cells that communicate via neurokinin B (encoded by Tac2) and its receptor (encoded by Tacr3) and play key roles in the control of the reproductive axis through sex hormone-regulated synthesis and release of kisspeptin peptides (Kp, encoded by Kiss1). The aim of this study was to determine whether the Kiss1 cell population of the ARC already displays sexually dimorphic features at embryonic age E16.5 in mice. At this time of development, Kiss1-GFP- and Kp-immunoreactive cell bodies were restricted to the ARC and not found in the pre-optic area (POA). The Kiss1-GFP cell population was identical in size between sexes but had significantly lower Kiss1, Tac2, and Tacr3 mRNA levels and lower Kp-ir fiber density in the POA in male compared to female fetuses. Receptors for androgen (Ar) and estrogen (Esr1, Esr2, Gpr30) and the Cyp19a1 gene (encoding the estradiol-producing enzyme aromatase) transcripts were also detected in fetal ARC Kiss1-GFP cells with significant sex differences for Ar (higher in males) and Esr1 (higher in females). Functional studies on primary cultures of sorted fetal Kiss1-GFP cells revealed a significant negative effect of estradiol treatment on neurite outgrowth on the fourth day of culture in the female group specifically. We conclude that the ARC Kiss1 cell population is already sexually differentiated at E16.5 and that its morphogenetic development may be particularly vulnerable to estradiol exposure at this early developmental time.