Estradiol elicits distinct firing patterns in arcuate nucleus kisspeptin neurons of females through altering ion channel conductances

Author:

Qiu Jian1ORCID,Voliotis Margaritis23ORCID,Bosch Martha A1,Li Xiao Feng4,Zweifel Larry S56ORCID,Tsaneva-Atanasova Krasimira23ORCID,O’Byrne Kevin T4ORCID,Rønnekleiv Oline K17ORCID,Kelly Martin J17ORCID

Affiliation:

1. Department of Chemical Physiology and Biochemistry, Oregon Health and Science University

2. Department of Mathematics and Statistics, University of Exeter

3. Living Systems Institute, University of Exeter

4. Department of Women and Children’s Health, School of Life Course and Population Sciences, King’s College London

5. Department of Psychiatry and Behavioral Sciences, University of Washington

6. University of Washington

7. Division of Neuroscience, Oregon National Primate Research Center

Abstract

Hypothalamic kisspeptin (Kiss1) neurons are vital for pubertal development and reproduction. Arcuate nucleus Kiss1 (Kiss1 ARH ) neurons are responsible for the pulsatile release of Gonadotropin-releasing Hormone (GnRH). In females, the behavior of Kiss1 ARH neurons, expressing Kiss1, Neurokinin B (NKB), and Dynorphin (Dyn), varies throughout the ovarian cycle. Studies indicate that 17β-estradiol (E2) reduces peptide expression but increases Vglut2 mRNA and glutamate neurotransmission in these neurons, suggesting a shift from peptidergic to glutamatergic signaling. To investigate this shift, we combined transcriptomics, electrophysiology, and mathematical modeling. Our results demonstrate that E2 treatment upregulates the mRNA expression of voltage-activated calcium channels, elevating the whole-cell calcium current and that contribute to high-frequency burst firing. Additionally, E2 treatment decreased the mRNA levels of Canonical Transient Receptor Potential (TPRC) 5 and G protein-coupled K + (GIRK) channels. When TRPC5 channels in Kiss1 ARH neurons were deleted using CRISPR, the slow excitatory postsynaptic potential (sEPSP) was eliminated. Our data enabled us to formulate a biophysically realistic mathematical model of the Kiss1 ARH neuron, suggesting that E2 modifies ionic conductances in Kiss1 ARH neurons, enabling the transition from high frequency synchronous firing through NKB-driven activation of TRPC5 channels to a short bursting mode facilitating glutamate release. In a low E2 milieu, synchronous firing of Kiss1 ARH neurons drives pulsatile release of GnRH, while the transition to burst firing with high, preovulatory levels of E2 would facilitate the GnRH surge through its glutamatergic synaptic connection to preoptic Kiss1 neurons.

Publisher

eLife Sciences Publications, Ltd

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