Effects of intrauterine growth restriction on embryonic hippocampal dentate gyrus neurogenesis and postnatal critical period of synaptic plasticity that govern learning and memory function

被引:2
|
作者
Fung, Camille M. [1 ]
机构
[1] Univ Utah, Dept Pediat, Div Neonatol, Sch Med, Salt Lake City, UT 84112 USA
基金
美国国家卫生研究院;
关键词
intrauterine growth restriction; fetal growth restriction; hypertensive disease of pregnancy; embryonic neurogenesis; hippocampal dentate gyrus; learning and memory; Wnt signaling; critical period of synaptic plasticity; FOR-GESTATIONAL-AGE; PLACENTAL INSUFFICIENCY; HYPERTENSIVE PREGNANCY; INFANTILE AMNESIA; BRAIN-DEVELOPMENT; BLOOD-FLOW; FETAL LIFE; CHILDREN; NEURODEVELOPMENT; CIRCULATION;
D O I
10.3389/fnins.2023.1092357
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Intrauterine growth restriction (IUGR) complicates up to 10% of human pregnancies and is the second leading cause of perinatal morbidity and mortality after prematurity. The most common etiology of IUGR in developed countries is uteroplacental insufficiency (UPI). For survivors of IUGR pregnancies, long-term studies consistently show a fivefold increased risk for impaired cognition including learning and memory deficits. Among these, only a few human studies have highlighted sex differences with males and females having differing susceptibilities to different impairments. Moreover, it is well established from brain magnetic resonance imaging that IUGR affects both white and gray matter. The hippocampus, composed of the dentate gyrus (DG) and cornu ammonis (CA) subregions, is an important gray matter structure critical to learning and memory, and is particularly vulnerable to the chronic hypoxic-ischemic effects of UPI. Decreased hippocampal volume is a strong predictor for learning and memory deficits. Decreased neuron number and attenuated dendritic and axonal morphologies in both the DG and CA are additionally seen in animal models. What is largely unexplored is the prenatal changes that predispose an IUGR offspring to postnatal learning and memory deficits. This lack of knowledge will continue to hinder the design of future therapy to improve learning and memory. In this review, we will first present the clinical susceptibilities and human epidemiology data regarding the neurological sequelae after IUGR. We will follow with data generated using our laboratory's mouse model of IUGR, that mimics the human IUGR phenotype, to dissect at the cellular and molecular alterations in embryonic hippocampal DG neurogenesis. We will lastly present a newer topic of postnatal neuron development, namely the critical period of synaptic plasticity that is crucial in achieving an excitatory/inhibitory balance in the developing brain. To our knowledge, these findings are the first to describe the prenatal changes that lead to an alteration in postnatal hippocampal excitatory/inhibitory imbalance, a mechanism that is now recognized to be a cause of neurocognitive/neuropsychiatric disorders in at-risk individuals. Studies are ongoing in our laboratory to elucidate additional mechanisms that underlie IUGR-induced learning and memory impairment and to design therapy aimed at ameliorating such impairment.
引用
收藏
页数:12
相关论文
共 10 条
  • [1] Intrauterine Growth Restriction Causes Abnormal Embryonic Dentate Gyrus Neurogenesis in Mouse Offspring That Leads to Adult Learning and Memory Deficits
    Brown, Ashley S.
    Wieben, Matthew
    Murdock, Shelby
    Chang, Jill
    Dizon, Maria L., V
    St Pierre, Mark
    Chavez-Valdez, Raul
    Dorsky, Richard, I
    Fung, Camille M.
    ENEURO, 2021, 8 (05)
  • [2] Sexual dimorphism in the closure of the hippocampal postnatal critical period of synaptic plasticity after intrauterine growth restriction - link to oligodendrocyte and glial dysregulation
    Nugent, Michael
    Pierre, Mark St.
    Brown, Ashley
    Nassar, Salma
    Parmar, Pritika
    Kitase, Yuma
    Duck, Sarah Ann
    Pinto, Charles
    Jantzie, Lauren
    Fung, Camille
    Chavez-Valdez, Raul
    DEVELOPMENTAL NEUROSCIENCE, 2023, 45 (05) : 234 - 254
  • [3] Intrauterine Growth Restriction Alters Postnatal Hippocampal Dentate Gyrus Neuron and Microglia Morphology and Cytokine/Chemokine Milieu in Mice
    Strnad, Frank A.
    Brown, Ashley S.
    Wieben, Matthew
    Cortes-Sanchez, Emilio
    Williams, Megan E.
    Fung, Camille M.
    LIFE-BASEL, 2024, 14 (12):
  • [4] Disruption of postnatal neurogenesis and adult-stage suppression of synaptic plasticity in the hippocampal dentate gyrus after developmental exposure to sterigmatocystin in rats
    Takashima, Kazumi
    Nakajima, Kota
    Shimizu, Saori
    Ojiro, Ryota
    Tang, Qian
    Okano, Hiromu
    Takahashi, Yasunori
    Ozawa, Shunsuke
    Jin, Meilan
    Yoshinari, Tomoya
    Yoshida, Toshinori
    Sugita-Konishi, Yoshiko
    Shibutani, Makoto
    TOXICOLOGY LETTERS, 2021, 349 : 69 - 83
  • [5] Intrauterine Growth Restriction Disrupts the Postnatal Critical Period of Synaptic Plasticity in the Mouse Dorsal Hippocampus in a Model of Hypertensive Disease of Pregnancy
    Pierre, Mark St.
    Rastogi, Neetika
    Brown, Ashley
    Parmar, Pritika
    Lechner, Charles
    Fung, Camille
    Chavez-Valdez, Raul
    DEVELOPMENTAL NEUROSCIENCE, 2022, 44 (4-5) : 214 - 232
  • [6] The novel antidepressant ketamine enhances dentate gyrus proliferation with no effects on synaptic plasticity or hippocampal function in depressive-like rats
    Michaelsson, Henrik
    Andersson, Mats
    Svensson, Johan
    Karlsson, Lars
    Ehn, Johan
    Culley, Georgia
    Engstrom, Anders
    Bergstrom, Nicklas
    Savvidi, Parthenia
    Kuhn, Hans-Georg
    Hanse, Eric
    Seth, Henrik
    ACTA PHYSIOLOGICA, 2019, 225 (04)
  • [7] Neonatal hypoxia-ischemia alters the events governing the hippocampal critical period of postnatal synaptic plasticity leading to deficits in working memory in mice
    Parmar, Pritika
    Spahic, Harisa
    Lechner, Charles
    Pierre, Mark St.
    Carlin, Katherine
    Nugent, Michael
    Chavez-Valdez, Raul
    NEUROBIOLOGY OF DISEASE, 2024, 202
  • [8] Overexpression of Mineralocorticoid Receptors in the Mouse Forebrain Partly Alleviates the Effects of Chronic Early Life Stress on Spatial Memory, Neurogenesis and Synaptic Function in the Dentate Gyrus
    Kanatsou, Sofia
    Karst, Henk
    Kortesidou, Despoina
    van den Akker, Rachelle A.
    den Blaauwen, Jan
    Harris, Anjanette P.
    Seckl, Jonathan R.
    Krugers, Harm J.
    Joels, Marian
    FRONTIERS IN CELLULAR NEUROSCIENCE, 2017, 11
  • [9] Latent toxoplasmosis impairs learning and memory yet strengthens short-term and long-term hippocampal synaptic plasticity at perforant pathway-dentate gyrus, and Schaffer collatterals-CA1 synapses
    Choopani, Samira
    Kiani, Bahereh
    Aliakbari, Shayan
    Babaie, Jalal
    Golkar, Majid
    Pourbadie, Hamid Gholami
    Sayyah, Mohammad
    SCIENTIFIC REPORTS, 2023, 13 (01)
  • [10] Latent toxoplasmosis impairs learning and memory yet strengthens short-term and long-term hippocampal synaptic plasticity at perforant pathway-dentate gyrus, and Schaffer collatterals-CA1 synapses
    Samira Choopani
    Bahereh Kiani
    Shayan Aliakbari
    Jalal Babaie
    Majid Golkar
    Hamid Gholami Pourbadie
    Mohammad Sayyah
    Scientific Reports, 13