Asset Details
MbrlCatalogueTitleDetail
Do you wish to reserve the book?
Circadian glucocorticoid oscillations preserve a population of adult hippocampal neural stem cells in the aging brain
by
Gradari, S
, De Pietri Tonelli D
, Encinas, J M
, Gebara, E
, Garcia-Corzo, L
, Passchier E M J
, Martín-Suárez, S
, De Vries H E
, Bielefeld, P
, Lucassen, P J
, Pons-Espinal, M
, Schouten, M
, Trejo, J L
, Mira, H
, Toni, N
, Schwarzacher, S W
, Jungenitz, T
, Fitzsimons, C P
in
Adrenal glands
/ Age
/ Aging
/ Cell cycle
/ Cell proliferation
/ Circadian rhythms
/ Cognitive ability
/ Dendritic plasticity
/ Dendritic spines
/ DNA methylation
/ Epigenetics
/ Genomes
/ Glucocorticoids
/ Granule cells
/ Hippocampal plasticity
/ Hippocampus
/ Neural stem cells
/ Neurogenesis
/ Neuroplasticity
/ Oscillations
/ Signal transduction
/ Stem cell transplantation
/ Stem cells
/ Wnt protein
2020
Hey, we have placed the reservation for you!
By the way, why not check out events that you can attend while you pick your title.
You are currently in the queue to collect this book. You will be notified once it is your turn to collect the book.
Oops! Something went wrong.
Looks like we were not able to place the reservation. Kindly try again later.
Are you sure you want to remove the book from the shelf?
Circadian glucocorticoid oscillations preserve a population of adult hippocampal neural stem cells in the aging brain
by
Gradari, S
, De Pietri Tonelli D
, Encinas, J M
, Gebara, E
, Garcia-Corzo, L
, Passchier E M J
, Martín-Suárez, S
, De Vries H E
, Bielefeld, P
, Lucassen, P J
, Pons-Espinal, M
, Schouten, M
, Trejo, J L
, Mira, H
, Toni, N
, Schwarzacher, S W
, Jungenitz, T
, Fitzsimons, C P
in
Adrenal glands
/ Age
/ Aging
/ Cell cycle
/ Cell proliferation
/ Circadian rhythms
/ Cognitive ability
/ Dendritic plasticity
/ Dendritic spines
/ DNA methylation
/ Epigenetics
/ Genomes
/ Glucocorticoids
/ Granule cells
/ Hippocampal plasticity
/ Hippocampus
/ Neural stem cells
/ Neurogenesis
/ Neuroplasticity
/ Oscillations
/ Signal transduction
/ Stem cell transplantation
/ Stem cells
/ Wnt protein
2020
Oops! Something went wrong.
While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
Circadian glucocorticoid oscillations preserve a population of adult hippocampal neural stem cells in the aging brain
by
Gradari, S
, De Pietri Tonelli D
, Encinas, J M
, Gebara, E
, Garcia-Corzo, L
, Passchier E M J
, Martín-Suárez, S
, De Vries H E
, Bielefeld, P
, Lucassen, P J
, Pons-Espinal, M
, Schouten, M
, Trejo, J L
, Mira, H
, Toni, N
, Schwarzacher, S W
, Jungenitz, T
, Fitzsimons, C P
in
Adrenal glands
/ Age
/ Aging
/ Cell cycle
/ Cell proliferation
/ Circadian rhythms
/ Cognitive ability
/ Dendritic plasticity
/ Dendritic spines
/ DNA methylation
/ Epigenetics
/ Genomes
/ Glucocorticoids
/ Granule cells
/ Hippocampal plasticity
/ Hippocampus
/ Neural stem cells
/ Neurogenesis
/ Neuroplasticity
/ Oscillations
/ Signal transduction
/ Stem cell transplantation
/ Stem cells
/ Wnt protein
2020
Please be aware that the book you have requested cannot be checked out. If you would like to checkout this book, you can reserve another copy
We have requested the book for you!
Your request is successful and it will be processed during the Library working hours. Please check the status of your request in My Requests.
Oops! Something went wrong.
Looks like we were not able to place your request. Kindly try again later.
Circadian glucocorticoid oscillations preserve a population of adult hippocampal neural stem cells in the aging brain
Journal Article
Circadian glucocorticoid oscillations preserve a population of adult hippocampal neural stem cells in the aging brain
2020
Request Book From Autostore
and Choose the Collection Method
Overview
A decrease in adult hippocampal neurogenesis has been linked to age-related cognitive impairment. However, the mechanisms involved in this age-related reduction remain elusive. Glucocorticoid hormones (GC) are important regulators of neural stem/precursor cells (NSPC) proliferation. GC are released from the adrenal glands in ultradian secretory pulses that generate characteristic circadian oscillations. Here, we investigated the hypothesis that GC oscillations prevent NSPC activation and preserve a quiescent NSPC pool in the aging hippocampus. We found that hippocampal NSPC populations lacking expression of the glucocorticoid receptor (GR) decayed exponentially with age, while GR-positive populations decayed linearly and predominated in the hippocampus from middle age onwards. Importantly, GC oscillations controlled NSPC activation and GR knockdown reactivated NSPC proliferation in aged mice. When modeled in primary hippocampal NSPC cultures, GC oscillations control cell cycle progression and induce specific genome-wide DNA methylation profiles. GC oscillations induced lasting changes in the methylation state of a group of gene promoters associated with cell cycle regulation and the canonical Wnt signaling pathway. Finally, in a mouse model of accelerated aging, we show that disruption of GC oscillations induces lasting changes in dendritic complexity, spine numbers and morphology of newborn granule neurons. Together, these results indicate that GC oscillations preserve a population of GR-expressing NSPC during aging, preventing their activation possibly by epigenetic programming through methylation of specific gene promoters. Our observations suggest a novel mechanism mediated by GC that controls NSPC proliferation and preserves a dormant NSPC pool, possibly contributing to a neuroplasticity reserve in the aging brain.
This website uses cookies to ensure you get the best experience on our website.