Conditional Fgfr1 Deletion in GnRH Neurons Leads to Minor Disruptions in the Reproductive Axis of Male and Female Mice

In humans and mice, inactivating mutations in fibroblast growth factor receptor 1 (Fgfr1) lead to gonadotropin-releasing hormone (GnRH) deficiency and a host of downstream reproductive disorders. It was unclear if Fgfr1 signaling directly upon GnRH neurons critically drove the establishment of a fun...

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Main Authors: Cynthia Dela Cruz, Cassandra A. Horton, Kelsey N. Sanders, Nathan D. Andersen, Pei-San Tsai
Format: Article
Language:English
Published: Frontiers Media S.A. 2021-02-01
Series:Frontiers in Endocrinology
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fendo.2020.588459/full
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spelling doaj-4a1306aa0a0e46bc9849fef0b36a99d92021-02-19T04:52:07ZengFrontiers Media S.A.Frontiers in Endocrinology1664-23922021-02-011110.3389/fendo.2020.588459588459Conditional Fgfr1 Deletion in GnRH Neurons Leads to Minor Disruptions in the Reproductive Axis of Male and Female MiceCynthia Dela CruzCassandra A. HortonKelsey N. SandersNathan D. AndersenPei-San TsaiIn humans and mice, inactivating mutations in fibroblast growth factor receptor 1 (Fgfr1) lead to gonadotropin-releasing hormone (GnRH) deficiency and a host of downstream reproductive disorders. It was unclear if Fgfr1 signaling directly upon GnRH neurons critically drove the establishment of a functional GnRH system. To answer this question, we generated a mouse model with a conditional deletion of Fgfr1 in GnRH neurons using the Cre/loxP approach. These mice, called Fgfr1cKO mice, were examined along with control mice for their pubertal onset and a host of reproductive axis functions. Our results showed that Fgfr1cKO mice harbored no detectable defects in the GnRH system and pubertal onset, suffered only subtle changes in the pituitary function, but exhibited significantly disrupted testicular and ovarian morphology at 25 days of age, indicating impaired gametogenesis at a young age. However, these disruptions were transient and became undetectable in older mice. Our results suggest that Fgfr1 signaling directly on GnRH neurons supports, to some extent, the reproductive axis function in the period leading to the early phase of puberty, but is not critically required for pubertal onset or reproductive maintenance in sexually mature animals.https://www.frontiersin.org/articles/10.3389/fendo.2020.588459/fullgonadotropin-releasing hormone neuronsfibroblast growth factor receptor 1conditional deletionhypothalamic-pituitary gonadal axiscongenital hypogonadotropic hypogonadismKallmann syndrome
collection DOAJ
language English
format Article
sources DOAJ
author Cynthia Dela Cruz
Cassandra A. Horton
Kelsey N. Sanders
Nathan D. Andersen
Pei-San Tsai
spellingShingle Cynthia Dela Cruz
Cassandra A. Horton
Kelsey N. Sanders
Nathan D. Andersen
Pei-San Tsai
Conditional Fgfr1 Deletion in GnRH Neurons Leads to Minor Disruptions in the Reproductive Axis of Male and Female Mice
Frontiers in Endocrinology
gonadotropin-releasing hormone neurons
fibroblast growth factor receptor 1
conditional deletion
hypothalamic-pituitary gonadal axis
congenital hypogonadotropic hypogonadism
Kallmann syndrome
author_facet Cynthia Dela Cruz
Cassandra A. Horton
Kelsey N. Sanders
Nathan D. Andersen
Pei-San Tsai
author_sort Cynthia Dela Cruz
title Conditional Fgfr1 Deletion in GnRH Neurons Leads to Minor Disruptions in the Reproductive Axis of Male and Female Mice
title_short Conditional Fgfr1 Deletion in GnRH Neurons Leads to Minor Disruptions in the Reproductive Axis of Male and Female Mice
title_full Conditional Fgfr1 Deletion in GnRH Neurons Leads to Minor Disruptions in the Reproductive Axis of Male and Female Mice
title_fullStr Conditional Fgfr1 Deletion in GnRH Neurons Leads to Minor Disruptions in the Reproductive Axis of Male and Female Mice
title_full_unstemmed Conditional Fgfr1 Deletion in GnRH Neurons Leads to Minor Disruptions in the Reproductive Axis of Male and Female Mice
title_sort conditional fgfr1 deletion in gnrh neurons leads to minor disruptions in the reproductive axis of male and female mice
publisher Frontiers Media S.A.
series Frontiers in Endocrinology
issn 1664-2392
publishDate 2021-02-01
description In humans and mice, inactivating mutations in fibroblast growth factor receptor 1 (Fgfr1) lead to gonadotropin-releasing hormone (GnRH) deficiency and a host of downstream reproductive disorders. It was unclear if Fgfr1 signaling directly upon GnRH neurons critically drove the establishment of a functional GnRH system. To answer this question, we generated a mouse model with a conditional deletion of Fgfr1 in GnRH neurons using the Cre/loxP approach. These mice, called Fgfr1cKO mice, were examined along with control mice for their pubertal onset and a host of reproductive axis functions. Our results showed that Fgfr1cKO mice harbored no detectable defects in the GnRH system and pubertal onset, suffered only subtle changes in the pituitary function, but exhibited significantly disrupted testicular and ovarian morphology at 25 days of age, indicating impaired gametogenesis at a young age. However, these disruptions were transient and became undetectable in older mice. Our results suggest that Fgfr1 signaling directly on GnRH neurons supports, to some extent, the reproductive axis function in the period leading to the early phase of puberty, but is not critically required for pubertal onset or reproductive maintenance in sexually mature animals.
topic gonadotropin-releasing hormone neurons
fibroblast growth factor receptor 1
conditional deletion
hypothalamic-pituitary gonadal axis
congenital hypogonadotropic hypogonadism
Kallmann syndrome
url https://www.frontiersin.org/articles/10.3389/fendo.2020.588459/full
work_keys_str_mv AT cynthiadelacruz conditionalfgfr1deletioningnrhneuronsleadstominordisruptionsinthereproductiveaxisofmaleandfemalemice
AT cassandraahorton conditionalfgfr1deletioningnrhneuronsleadstominordisruptionsinthereproductiveaxisofmaleandfemalemice
AT kelseynsanders conditionalfgfr1deletioningnrhneuronsleadstominordisruptionsinthereproductiveaxisofmaleandfemalemice
AT nathandandersen conditionalfgfr1deletioningnrhneuronsleadstominordisruptionsinthereproductiveaxisofmaleandfemalemice
AT peisantsai conditionalfgfr1deletioningnrhneuronsleadstominordisruptionsinthereproductiveaxisofmaleandfemalemice
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