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Progressive hypothalamic neuroinflammation in ovariectomized mice parallels aging-related transcriptomic changes in the female human hypothalamus
Jordana C.B. Bloom, Encarnación Torres, Sidney A. Pereira, Liliana Arvizu-Sanchez, Audrey N. Fontes, Hadine Joffe, David C. Page, Victor M. Navarro
Jordana C.B. Bloom, Encarnación Torres, Sidney A. Pereira, Liliana Arvizu-Sanchez, Audrey N. Fontes, Hadine Joffe, David C. Page, Victor M. Navarro
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Research Article Endocrinology Neuroscience Reproductive biology

Progressive hypothalamic neuroinflammation in ovariectomized mice parallels aging-related transcriptomic changes in the female human hypothalamus

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Abstract

The hypothalamic changes that occur after the loss of ovarian estrogen remain poorly characterized. Here, we performed a comprehensive temporal characterization of the mouse hypothalamus after ovariectomy (OVX), combining physiological measurements with bulk RNA-seq of the posterior hypothalamus (PH) and preoptic area at 14 days and 4 months after OVX. Serum luteinizing hormone levels rose progressively and then declined, and core temperature peaked early and subsequently normalized, recapitulating the endocrine and thermoregulatory dynamics of reproductive aging in humans. Transcriptomic analysis revealed time-dependent activation of inflammatory pathways, glial markers, and KNDy neuron-related gene networks, with the most pronounced changes emerging at 4 months after OVX, particularly in the PH. Immunofluorescence confirmed increased neurokinin B release, declining KNDy neuronal activity, and heightened astrocytic reactivity in the arcuate nucleus after prolonged estrogen withdrawal. To contextualize these findings, we analyzed publicly available human hypothalamic RNA-seq data across chronological age. Age-related transcriptomic patterns, including progressive inflammatory signaling, glial activation, and altered KNDy gene expression, showed significant correlation with the OVX mouse model, particularly at the pathway level. These findings establish a temporal framework for hypothalamic molecular changes after estrogen withdrawal, identify conserved neuroinflammatory signatures across species, and provide a preclinical platform for testing interventions targeting menopause-associated hypothalamic dysfunction.

Authors

Jordana C.B. Bloom, Encarnación Torres, Sidney A. Pereira, Liliana Arvizu-Sanchez, Audrey N. Fontes, Hadine Joffe, David C. Page, Victor M. Navarro

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Figure 3

Differential NKB distribution, neuronal activity, and astrocyte reactivity in the arcuate nucleus after OVX.

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Differential NKB distribution, neuronal activity, and astrocyte reactivi...
Representative immunofluorescence staining of NKB (A, D, and G), cFos (B, E, and H), and GFAP (C, F, and I) in the arcuate nucleus (ARC) from intact (A–C), 14-day post-OVX (D–F), and 4-month post-OVX mice (G–I, n = 3–5/group). (J) Quantification of NKB area (mm2) in the ARC from intact, 14-day post-OVX, and 4-month post-OVX mice. (K) Quantification of cFos-positive cells in the ARC from intact, 14-day post-OVX, and 4-month post-OVX mice. (L) Quantification of GFAP area (mm2) in the ARC from intact, 14-day post-OVX, and 4-month post-OVX mice. (M) Representative images of NKB and cFos colocalization in the ARC from 14-day and 4-month post-OVX mice (n = 3–5/group). (N) Percentage of activated (cFos+) cells coexpressing NKB. Data from J–L and N shown as mean ± SEM. Statistical significance determined by Mann-Whitney U test (intact vs. OVX). *P < 0.05, **P < 0.01.

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ISSN 2379-3708

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