An in vitro ischemia model (oxygen, glucose, and serum deprivation) is used to investigate the possible cellular and molecular mechanisms responsible for cerebral ischemia. We have previously demonstrated that supernatants derived from ischemic microglia can protect ischemic brain cells by releasing GDNF and TGF-beta1. In the present study, we investigate whether products of ischemic astrocytes can also protect ischemic microglia, astrocytes, and neurons in a similar manner. Supernatants from ischemic astrocytes were collected after various periods of ischemia and incubated with microglia, astrocytes, or neurons individually, under in vitro ischemic conditions. The components responsible for the protective effects of astrocyte-derived supernatants were then identified by Western blot, ELISA, trypan blue dye exclusion, and immunoblocking assays. Results showed that under conditions of in vitro ischemia the number of surviving microglia, astrocytes, and neurons was significantly increased by the incorporation of the astrocyte-derived supernatants. Astrocyte supernatant-mediated protection of ischemic microglia was dependent on TGF-beta1 and NT-3, ischemic astrocytes were protected by GDNF, and ischemic neurons were protected by NT-3. In addition, protein expression of TGF-beta1 and NT-3 receptors in microglia, GDNF receptors in astrocytes, and NT-3 receptors in neurons was increased by in vitro ischemia. These results suggest that astrocyte-derived protection of ischemic brain cells is dependent not only on factors released from the ischemic astrocytes, but also on the type of receptor present on the responding cells. Therapeutic potential of TGF-beta1, GDNF, and NT-3 in the control of cerebral ischemia is further suggested.
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http://dx.doi.org/10.1016/j.expneurol.2006.04.014 | DOI Listing |
Alzheimers Dement
December 2024
Division of Geriatrics, Department of Internal Medicine, University of Sao Paulo Medical School, São Paulo, São Paulo, Brazil.
Background: Nitric oxide (NO) is involved in synaptic transmission and cerebral plasticity, playing a role in the memory process. However, in states of brain inflammation, hypoxia, or ischemia, there is induction of inducible nitric oxide synthase (iNOS) expression by astrocytes and pyramidal cells in the brain. Under conditions of chronic activation, there is a decoupling of iNOS dimers, leading to a massive generation of superoxide anion and peroxynitrite, O2.
View Article and Find Full Text PDFAlzheimers Dement
December 2024
Dementia and Neurodegenerative Disease Research Center, Inje University, St Charles, Korea, Republic of (South); Department of Neurology, Busan Paik Hospital, Inje University College of Medicine, Busan, Korea, Republic of (South); Inje University College of Medicine, BUSAN, Korea, Republic of (South).
Background: Because of clinically overlapping parkinsonian motor symptoms, it is hard to diagnose a specific disease in atypical parkinsonism or differentiate Parkinson's disease (PD) from atypical parkinsonism. Herein, we report the clinicopathological mismatching of an autopsy-confirmed PSP in a patient clinically diagnosed with PD.
Method Clinical History: We reviewed the brief clinical history of a 70-year-old man and neurologic examination.
Exp Neurol
December 2024
Department of Neurology, Lanzhou University Second Hospital, Lanzhou 730030, Gansu, China. Electronic address:
Ischemic stroke is a kind of neurological dysfunction caused by cerebral ischemia. Astrocytes, as the most abundant type of glial cells in the central nervous system, are activated into reactive astrocytes after cerebral ischemia, and this process involves the activation or change of a series of cell surface receptors, ion channels and ion transporters, GTPases, signaling pathways, and so on. The role of reactive astrocytes in the development of ischemic stroke is time-dependent.
View Article and Find Full Text PDFCurr Issues Mol Biol
November 2024
Department of Anatomy and Neurosciences, School of Medicine, Eulji University, Daejeon 34824, Republic of Korea.
Ischemic stroke is a leading contributor to death and disability worldwide, driving extensive research into pharmacological treatments beyond thrombolysis. Macrophage migration inhibitory factor (MIF), a cytokine, is implicated in several pathological conditions. In this study, we examined the effects of MIF on autophagy in astrocytes under the condition of chemical hypoxia.
View Article and Find Full Text PDFKorean J Physiol Pharmacol
January 2025
Department of Physiology, Ajou University School of Medicine, Suwon 16499, Korea.
The brain's substantial metabolic requirements, consuming a substantial fraction of the body's total energy despite its relatively small mass, necessitate sophisticated metabolic mechanisms for efficient energy distribution and utilization. The astrocyte-neuron lactate shuttle (ANLS) hypothesis has emerged as a fundamental framework explaining the metabolic cooperation between astrocytes and neurons, whereby astrocyte-derived lactate serves as a crucial energy substrate for neurons. This review synthesizes current understanding of brain energy metabolism, focusing on the dual roles of lactate as both an energy substrate and a signaling molecule.
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