Expression and function of Ndel1 during the differentiation of neural stem cells induced by hippocampal exosomesticle

Abstract Background In the brain of adult mammals, neural stem cells persist in the subventricular zone of the lateral ventricle and the subgranular zone of the dentate gyrus, which are specialized niches with proliferative capacity. Most neural stem cells are in a quiescent state, but in response t...

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Main Authors: Wen Li, Shanshan Wang, Hui He, Jianbing Qin, Xiang Cheng, Heyan Zhao, Meiling Tian, Xinhua Zhang, Guohua Jin
Format: Article
Language:English
Published: BMC 2021-01-01
Series:Stem Cell Research & Therapy
Subjects:
Online Access:https://doi.org/10.1186/s13287-020-02119-2
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spelling doaj-e4522d598ddf4ba4a01e0175144b3ba62021-01-10T12:13:34ZengBMCStem Cell Research & Therapy1757-65122021-01-0112111310.1186/s13287-020-02119-2Expression and function of Ndel1 during the differentiation of neural stem cells induced by hippocampal exosomesticleWen Li0Shanshan Wang1Hui He2Jianbing Qin3Xiang Cheng4Heyan Zhao5Meiling Tian6Xinhua Zhang7Guohua Jin8Department of Human Anatomy, Institute of Neurobiology, Medical School of Nantong UniversityDepartment of Human Anatomy, Institute of Neurobiology, Medical School of Nantong UniversityDepartment of Human Anatomy, Institute of Neurobiology, Medical School of Nantong UniversityDepartment of Human Anatomy, Institute of Neurobiology, Medical School of Nantong UniversityDepartment of Human Anatomy, Institute of Neurobiology, Medical School of Nantong UniversityDepartment of Human Anatomy, Institute of Neurobiology, Medical School of Nantong UniversityDepartment of Human Anatomy, Institute of Neurobiology, Medical School of Nantong UniversityDepartment of Human Anatomy, Institute of Neurobiology, Medical School of Nantong UniversityDepartment of Human Anatomy, Institute of Neurobiology, Medical School of Nantong UniversityAbstract Background In the brain of adult mammals, neural stem cells persist in the subventricular zone of the lateral ventricle and the subgranular zone of the dentate gyrus, which are specialized niches with proliferative capacity. Most neural stem cells are in a quiescent state, but in response to extrinsic stimuli, they can exit from quiescence and become reactivated to produce new neurons, so neural stem cells are considered to be a potential source for cell replacement therapy of many nervous system diseases. We characterized the expression of Ndel1 during the differentiation of neural stem cells induced by hippocampus exosomes, and assessed the effect of Ndel1 on neural stem cells differentiation. Methods Hippocampal exosomes were isolated and extracted, and co-cultured exosomes with neural stem cells. Western blot, flow cytometry, and immunofluorescence analyses were used to analyze expression of neuronal markers. Further, utilizing high-throughput RNA sequencing technology, we found that nudE neurodevelopment protein 1-like 1 was significantly upregulated in exosomes derived from denervated hippocampus, and then characterized its mechanism and function during neural stem cells differentiation by qRT-PCR, western blot, flow cytometry, and immunofluorescence analyses. Results Our results revealed that exosomes of denervated hippocampus promoted the differentiation of neural stem cells into neuron. Hence, we identified that nudE neurodevelopment protein 1-like 1 was significantly upregulated and highly expressed in the nervous system. In addition, we found that miR-107-3p may regulate neural stem cell differentiation by targeting Ndel1. Conclusions Our results revealed that deafferentation of the hippocampal exosomes co-cultured with neural stem cells could promote them to differentiate into neurons. Hence, we found that miR-107-3p may regulate neural stem cells differentiation by targeting Ndel1. Importantly, Ndel1 enhanced spatial learning and hippocampal neurogenesis in rats after fimbria fornix transection in vivo. These findings set the stage for a better understanding of neurogenesis, a process that 1 day may inspire new treatments for central nervous system diseases.https://doi.org/10.1186/s13287-020-02119-2ExosomesNdel1miR-107-3pNeural stem cellsNeuronsHippocampus
collection DOAJ
language English
format Article
sources DOAJ
author Wen Li
Shanshan Wang
Hui He
Jianbing Qin
Xiang Cheng
Heyan Zhao
Meiling Tian
Xinhua Zhang
Guohua Jin
spellingShingle Wen Li
Shanshan Wang
Hui He
Jianbing Qin
Xiang Cheng
Heyan Zhao
Meiling Tian
Xinhua Zhang
Guohua Jin
Expression and function of Ndel1 during the differentiation of neural stem cells induced by hippocampal exosomesticle
Stem Cell Research & Therapy
Exosomes
Ndel1
miR-107-3p
Neural stem cells
Neurons
Hippocampus
author_facet Wen Li
Shanshan Wang
Hui He
Jianbing Qin
Xiang Cheng
Heyan Zhao
Meiling Tian
Xinhua Zhang
Guohua Jin
author_sort Wen Li
title Expression and function of Ndel1 during the differentiation of neural stem cells induced by hippocampal exosomesticle
title_short Expression and function of Ndel1 during the differentiation of neural stem cells induced by hippocampal exosomesticle
title_full Expression and function of Ndel1 during the differentiation of neural stem cells induced by hippocampal exosomesticle
title_fullStr Expression and function of Ndel1 during the differentiation of neural stem cells induced by hippocampal exosomesticle
title_full_unstemmed Expression and function of Ndel1 during the differentiation of neural stem cells induced by hippocampal exosomesticle
title_sort expression and function of ndel1 during the differentiation of neural stem cells induced by hippocampal exosomesticle
publisher BMC
series Stem Cell Research & Therapy
issn 1757-6512
publishDate 2021-01-01
description Abstract Background In the brain of adult mammals, neural stem cells persist in the subventricular zone of the lateral ventricle and the subgranular zone of the dentate gyrus, which are specialized niches with proliferative capacity. Most neural stem cells are in a quiescent state, but in response to extrinsic stimuli, they can exit from quiescence and become reactivated to produce new neurons, so neural stem cells are considered to be a potential source for cell replacement therapy of many nervous system diseases. We characterized the expression of Ndel1 during the differentiation of neural stem cells induced by hippocampus exosomes, and assessed the effect of Ndel1 on neural stem cells differentiation. Methods Hippocampal exosomes were isolated and extracted, and co-cultured exosomes with neural stem cells. Western blot, flow cytometry, and immunofluorescence analyses were used to analyze expression of neuronal markers. Further, utilizing high-throughput RNA sequencing technology, we found that nudE neurodevelopment protein 1-like 1 was significantly upregulated in exosomes derived from denervated hippocampus, and then characterized its mechanism and function during neural stem cells differentiation by qRT-PCR, western blot, flow cytometry, and immunofluorescence analyses. Results Our results revealed that exosomes of denervated hippocampus promoted the differentiation of neural stem cells into neuron. Hence, we identified that nudE neurodevelopment protein 1-like 1 was significantly upregulated and highly expressed in the nervous system. In addition, we found that miR-107-3p may regulate neural stem cell differentiation by targeting Ndel1. Conclusions Our results revealed that deafferentation of the hippocampal exosomes co-cultured with neural stem cells could promote them to differentiate into neurons. Hence, we found that miR-107-3p may regulate neural stem cells differentiation by targeting Ndel1. Importantly, Ndel1 enhanced spatial learning and hippocampal neurogenesis in rats after fimbria fornix transection in vivo. These findings set the stage for a better understanding of neurogenesis, a process that 1 day may inspire new treatments for central nervous system diseases.
topic Exosomes
Ndel1
miR-107-3p
Neural stem cells
Neurons
Hippocampus
url https://doi.org/10.1186/s13287-020-02119-2
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