Impact of subthalamic nucleus deep brain stimulation at different frequencies on neurogenesis in a rat model of Parkinson's disease
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Fangling Sun | R. Gao | Zhiwei Ren | Wen Wang | Zheng Wu | Ke Sun | Tingting Liu | Songyang Zheng | Guojun Zhang
[1] V. Visser-Vandewalle,et al. Low beta-band suppression as a tool for DBS contact selection for akinetic-rigid symptoms in Parkinson's disease. , 2023, Parkinsonism & related disorders.
[2] Li Zeng,et al. The Effects of Extrinsic and Intrinsic Factors on Neurogenesis , 2023, Cells.
[3] P. Bieńkowski,et al. Modulation of neurotrophic factors in the treatment of dementia, stroke and TBI: Effects of Cerebrolysin , 2023, Medicinal research reviews.
[4] G. Martino,et al. Endogenous neural stem cells characterization using omics approaches: Current knowledge in health and disease , 2023, Frontiers in Cellular Neuroscience.
[5] Bipul R. Acharya,et al. Connexin 43-mediated neurovascular interactions regulate neurogenesis in the adult brain subventricular zone , 2023, Cell reports.
[6] G. Cheng,et al. Crocetin Regulates Functions of Neural Stem Cells to Generate New Neurons for Cerebral Ischemia Recovery , 2023, Advanced healthcare materials.
[7] J. Morgan,et al. Restoration of Adult Neurogenesis by Intranasal Administration of Gangliosides GD3 and GM1 in The Olfactory Bulb of A53T Alpha-Synuclein-Expressing Parkinson’s-Disease Model Mice , 2023, Molecular Neurobiology.
[8] Youping Wu,et al. Metformin enhances neural precursor cells migration and functional recovery after ischemic stroke in mice , 2023, Experimental Brain Research.
[9] A. Peng,et al. The Effect of RADA16-I and CDNF on Neurogenesis and Neuroprotection in Brain Ischemia-Reperfusion Injury , 2022, International journal of molecular sciences.
[10] G. Deuschl,et al. Frequency-specific network activity predicts bradykinesia severity in Parkinson’s disease , 2021, NeuroImage: Clinical.
[11] J. Parga,et al. Dopamine regulates adult neurogenesis in the ventricular‐subventricular zone via dopamine D3 angiotensin type 2 receptor interactions , 2021, Stem cells.
[12] Yiquot Kim,et al. Uric Acid Enhances Neurogenesis in a Parkinsonian Model by Remodeling Mitochondria , 2021, Frontiers in Aging Neuroscience.
[13] M. Kandasamy,et al. COVID-19 and Parkinson’s disease: Defects in neurogenesis as the potential cause of olfactory system impairments and anosmia , 2021, Journal of Chemical Neuroanatomy.
[14] Xu Wang,et al. Impact of Subthalamic Deep Brain Stimulation on Hyposmia in Patients With Parkinson's Disease Is Influenced by Constipation and Dysbiosis of Microbiota , 2021, Frontiers in Neurology.
[15] S. Ramakrishna,et al. Electrical stimulation at nanoscale topography boosts neural stem cell neurogenesis through the enhancement of autophagy signaling. , 2020, Biomaterials.
[16] Yi-Chun Chang,et al. Interplay of Prenatal and Postnatal Risk Factors in the Behavioral and Histological Features of a “Two-Hit” Non-Genetic Mouse Model of Schizophrenia , 2020, International journal of molecular sciences.
[17] Y. Shan,et al. Electrical stimulation of the lateral cerebellar nucleus promotes neurogenesis in rats after motor cortical ischemia , 2020, Scientific Reports.
[18] Xinxia Cai,et al. Dopamine and Striatal Neuron Firing Respond to Frequency-Dependent DBS Detected by Microelectrode Arrays in the Rat Model of Parkinson’s Disease , 2020, Biosensors.
[19] Jian-feng Lei,et al. Effects of Subthalamic Deep Brain Stimulation With Different Frequencies in a Parkinsonian Rat Model , 2020, Neuromodulation : journal of the International Neuromodulation Society.
[20] Yin-Sheng Chen,et al. Fto-modulated lipid niche regulates adult neurogenesis through modulating adenosine metabolism. , 2020, Human molecular genetics.
[21] Guanyu Zhu,et al. Subthalamic nucleus deep brain stimulation suppresses neuroinflammation by Fractalkine pathway in Parkinson’s disease rat model , 2020, Brain, Behavior, and Immunity.
[22] Theodore P. Zanto,et al. Intracranial alternating current stimulation facilitates neurogenesis in a mouse model of Alzheimer’s disease , 2020, Alzheimer's Research & Therapy.
[23] R. Prediger,et al. Guanosine Promotes Proliferation in Neural Stem Cells from Hippocampus and Neurogenesis in Adult Mice , 2020, Molecular Neurobiology.
[24] W. Grill,et al. Frequency-Specific Optogenetic Deep Brain Stimulation of Subthalamic Nucleus Improves Parkinsonian Motor Behaviors , 2020, The Journal of Neuroscience.
[25] Collin J. Anderson,et al. Parkinsonism and subthalamic deep brain stimulation dysregulate behavioral motivation in a rodent model , 2020, Brain Research.
[26] V. Tiwari,et al. Dopamine D1 receptor agonism induces dynamin related protein-1 inhibition to improve mitochondrial biogenesis and dopaminergic neurogenesis in rat model of Parkinson’s disease , 2020, Behavioural Brain Research.
[27] Ping Liu,et al. Dynamic changes of behaviors, dentate gyrus neurogenesis and hippocampal miR-124 expression in rats with depression induced by chronic unpredictable mild stress , 2019, Neural regeneration research.
[28] O. Pongs,et al. Cav2.3 channels contribute to dopaminergic neuron loss in a model of Parkinson’s disease , 2019, Nature Communications.
[29] B. Yulug,et al. The therapeutic effect of deep brain stimulation on olfactory functions and clinical scores in Parkinson's disease , 2019, Journal of Clinical Neuroscience.
[30] S. Ramakrishna,et al. Electrical stimulation affects neural stem cell fate and function in vitro , 2019, Experimental Neurology.
[31] P. Gervois,et al. Adult Neurogenesis in the Subventricular Zone and Its Regulation After Ischemic Stroke: Implications for Therapeutic Approaches , 2019, Translational Stroke Research.
[32] A. Smit,et al. Transcriptome and proteome profiling of neural stem cells from the human subventricular zone in Parkinson’s disease , 2019, Acta Neuropathologica Communications.
[33] L. Timmermann,et al. Effects of subthalamic deep brain stimulation on striatal metabolic connectivity in a rat hemiparkinsonian model , 2019, Disease Models & Mechanisms.
[34] A. Akbarzadeh,et al. Effect of cerebral dopamine neurotrophic factor on endogenous neural progenitor cell migration in a rat model of Parkinson's disease , 2019, EXCLI journal.
[35] L. Nowak,et al. Effect of adenosine on short‐term synaptic plasticity in mouse piriform cortex in vitro: adenosine acts as a high‐pass filter , 2019, Physiological reports.
[36] A. West,et al. Regulation of dopamine neurotransmission from serotonergic neurons by ectopic expression of the dopamine D2 autoreceptor blocks levodopa-induced dyskinesia , 2019, Acta Neuropathologica Communications.
[37] Belal Shohayeb,et al. Factors that influence adult neurogenesis as potential therapy , 2018, Translational Neurodegeneration.
[38] T. Foltynie,et al. Subthalamic Nucleus Deep Brain Stimulation in Parkinson’s Disease: The Effect of Varying Stimulation Parameters , 2017, Journal of Parkinson's disease.
[39] M. Götz,et al. Neurogenesis in the Developing and Adult Brain-Similarities and Key Differences. , 2016, Cold Spring Harbor perspectives in biology.
[40] S. Park,et al. Neurogenesis Is Induced by Electrical Stimulation of Human Mesenchymal Stem Cells Co-Cultured With Mature Neuronal Cells. , 2015, Macromolecular bioscience.
[41] C. Sidiropoulos,et al. Low-frequency stimulation of STN-DBS reduces aspiration and freezing of gait in patients with PD , 2015, Neurology.
[42] D. Steindler,et al. Increased Precursor Cell Proliferation after Deep Brain Stimulation for Parkinson's Disease: A Human Study , 2014, PloS one.
[43] R. Sakakibara,et al. The subthalamic activity and striatal monoamine are modulated by subthalamic stimulation , 2014, Neuroscience.
[44] Y. Saitoh,et al. Low‐frequency subthalamic nucleus stimulation in Parkinson's disease: A randomized clinical trial , 2014, Movement disorders : official journal of the Movement Disorder Society.
[45] T. Yan,et al. Functional electrical stimulation increases neural stem/progenitor cell proliferation and neurogenesis in the subventricular zone of rats with stroke , 2013, Chinese medical journal.
[46] M. Rizzone,et al. Transient effects of 80 Hz stimulation on gait in STN DBS treated PD patients: A 15 months follow-up study , 2012, Brain Stimulation.
[47] E. Hol,et al. The proliferative capacity of the subventricular zone is maintained in the parkinsonian brain. , 2011, Brain : a journal of neurology.
[48] P. Salin,et al. High frequency stimulation of the subthalamic nucleus impacts adult neurogenesis in a rat model of Parkinson's disease , 2011, Neurobiology of Disease.
[49] H. Reichmann,et al. Olfactory Loss in Parkinson's Disease , 2011, Parkinson's disease.
[50] J. Dalley,et al. Dopamine-induced proliferation of adult neural precursor cells in the mammalian subventricular zone is mediated through EGF , 2009, Proceedings of the National Academy of Sciences.
[51] M. Higashida,et al. Activation of adenosine A1 receptor–induced neural stem cell proliferation via MEK/ERK and Akt signaling pathways , 2008, Journal of neuroscience research.
[52] R. Faull,et al. Increased progenitor cell proliferation and astrogenesis in the partial progressive 6-hydroxydopamine model of Parkinson’s disease , 2008, Neuroscience.
[53] E. Hirsch,et al. Dopaminergic Substantia Nigra Neurons Project Topographically Organized to the Subventricular Zone and Stimulate Precursor Cell Proliferation in Aged Primates , 2006, The Journal of Neuroscience.
[54] Andreas Schober,et al. Classic toxin-induced animal models of Parkinson’s disease: 6-OHDA and MPTP , 2004, Cell and Tissue Research.
[55] Takahiro Takano,et al. Adenosine is crucial for deep brain stimulation–mediated attenuation of tremor , 2008, Nature Medicine.