Early life stress usually causes the abnormal brain development and results in the onset of cognitive and emotional disorders in later childhood. Neonatal hypoxic ischemia (HI) causes dramatic brain damage in early life and resulted in serious impairment to brain development. Hippocampal neurogenesis, as one of the key structural plasticity to mediate animal behaviors, can be impact by neonatal HI until child stage. In our study, we identified the natural product resveratrol (RES) as the potential alternative therapy to improve brain functions of childhood mice after underwent neonatal HI. Treatment of RES improved the spatial learning and memory in morris water maze and increased the recognize ability in objective recognition task. Moreover, RES also attenuate the depressive and anxiety like mood in child mice after experiencing neonatal HI. Brain morphological study showed RES promote the proliferation of neural stem cells and increase the neuronal differentiation in hippocampal dentate gyrus (DG) region. Our in vitro study in C17.2 neural stem cell line demonstrated RES could prevent the mitochondrial fragmentation induced by hypoxia. Moreover, same effect was also observed in primary cultural neurons. To summarize, RES could prevent the cognitive deficit and depressive/anxiety mood in childhood with experience of neonatal HI via promoting hippocampal neurogenesis. Improving mitochondrial dynamics could be one of the key biological mechanisms underlying such effects of RES.
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http://dx.doi.org/10.1016/j.neures.2019.11.012 | DOI Listing |
Pharmaceutics
November 2024
Laboratory of Stem Cells and Tissue Regeneration, Department of Biotechnology, College of Life Sciences and Biotechnology, Korea University, Seoul 02841, Republic of Korea.
Ischemic stroke (IS) remains a leading cause of mortality and long-term disability worldwide, with limited therapeutic options available. Despite the success of early interventions, such as tissue-type plasminogen activator administration and mechanical thrombectomy, many patients continue to experience persistent neurological deficits. The pathophysiology of IS is multifaceted, encompassing excitotoxicity, oxidative and nitrosative stress, inflammation, and blood-brain barrier disruption, all of which contribute to neural cell death, further complicating the treatment of IS.
View Article and Find Full Text PDFNutrients
December 2024
Department of Molecular Biology and Genetics, Çanakkale Onsekiz Mart University, Çanakkale 17100, Turkey.
The brain contains many interconnected and complex cellular and molecular mechanisms. Injury to the brain causes permanent dysfunctions in these mechanisms. So, it continues to be an area where surgical intervention cannot be performed except for the removal of tumors and the repair of some aneurysms.
View Article and Find Full Text PDFCells
December 2024
Department of Biochemistry and Molecular Biology, University of Miami Miller School of Medicine, Miami, FL 33136, USA.
Accurate normalization in miRNA studies requires the use of appropriate endogenous controls, which can vary significantly depending on cell types, treatments, and physiological or pathological conditions. This study aimed to identify suitable endogenous miRNA controls for neural progenitor cells (NPCs) and hippocampal tissues, both of which play crucial roles in neurogenesis. Using small RNA sequencing, we identified the most stable miRNAs in primary mouse NPCs and hippocampal tissues and accessed their stability using NormFinder analysis.
View Article and Find Full Text PDFBiomedicines
November 2024
Department of Clinical Neurosciences, "Carol Davila" University of Medicine and Pharmacy, 050474 Bucharest, Romania.
The coexistence of dementia and depression in older populations presents a complex clinical challenge, with each condition often exacerbating the other. Cognitive decline can intensify mood disturbances, and untreated or recurring depression accelerates neurodegenerative processes. As depression is a recognized risk factor for dementia, it is crucial to address both conditions concurrently to prevent further deterioration.
View Article and Find Full Text PDFStem Cell Res Ther
January 2025
Department of Physiology, University of Seville, Seville, Spain.
Introduction: Neural stem cells from the subventricular zone (SVZ) neurogenic niche provide neurons that integrate in the olfactory bulb circuitry. However, in response to cortical injuries, the neurogenic activity of the SVZ is significantly altered, leading to increased number of neuroblasts with a modified migration pattern that leads cells towards the site of injury. Despite the increased neurogenesis and migration, many newly generated neurons fail to survive or functionally integrate into the cortical circuitry.
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