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Pakulat, L. M.

Publications and source records attributed to Pakulat, L. M..

2 recordsLinked to original sources

Kiss1 neurons in the medial amygdala of mice are sexually dimorphic and unique from hypothalamic anteroventral periventricular Kiss1 neurons in their action potential firing properties

Abstract The importance of hypothalamic kisspeptin (Kiss1) neurons in controlling the reproductive axis is well established, while a population of extra-hypothalamic Kiss1 neurons is found in the medial amygdala (MeA) of both males and females in rodents and is less well understood. The MeA is connected with the olfactory bulbs, the hypothalamus and cortical areas. MeA Kiss1 neurons have been implicated in sexual behaviour and modulation of the reproductive axis; however, little is known about their action potential firing properties, which would influence kisspeptin release in target brain regions, nor whether their physiological properties are sex- or estrous cycle-dependent. In this study, whole-cell patch-clamp recordings were made from Kiss1 neurons in brain slices containing the MeA of adult female (estrous and diestrous) and male mice. MeA Kiss1 (Kiss1MeA) neurons were sexually dimorphic, with greater numbers in male compared to female mice and a slower change in excitability in estrous females compared with males. However, combining a range of electrophysiological parameters using principal component analysis did not reveal a distinct sex- or estrous cycle-linked phenotype, suggesting that the properties of Kiss1MeA neurons- and therefore kisspeptin release- are broadly similar. Interestingly, Kiss1MeA neurons had unique electrophysiological properties compared with anteroventral periventricular (AVPV) hypothalamic Kiss1 (Kiss1AVPV) neurons in female mice; with their reduced excitability, achieving action potential firing frequencies greater than 10Hz required a larger current input, indicating that Kiss1MeA neurons require stronger synaptic input to achieve firing frequencies that drive kisspeptin release. These findings provide new information about the physiological properties of Kiss1MeA neurons, showing subtle sex differences and profound regional differences between the MeA and AVPV.

neuroscience↗

Neuronal plasticity at puberty in hypothalamic neurons controlling fertility in female mice

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 {gamma}3-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 {beta}-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.

neuroscience↗