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17
result(s) for
"Dreyfus, Cheryl F."
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Tumor suppressor PALB2 maintains redox and mitochondrial homeostasis in the brain and cooperates with ATG7/autophagy to suppress neurodegeneration
2022
The PALB2 tumor suppressor plays key roles in DNA repair and has been implicated in redox homeostasis. Autophagy maintains mitochondrial quality, mitigates oxidative stress and suppresses neurodegeneration. Here we show that Palb2 deletion in the mouse brain leads to mild motor deficits and that co-deletion of Palb2 with the essential autophagy gene Atg7 accelerates and exacerbates neurodegeneration induced by ATG7 loss. Palb2 deletion leads to elevated DNA damage, oxidative stress and mitochondrial markers, especially in Purkinje cells, and co-deletion of Palb2 and Atg7 results in accelerated Purkinje cell loss. Further analyses suggest that the accelerated Purkinje cell loss and severe neurodegeneration in the double deletion mice are due to excessive oxidative stress and mitochondrial dysfunction, rather than DNA damage, and partially dependent on p53 activity. Our studies uncover a role of PALB2 in mitochondrial homeostasis and a cooperation between PALB2 and ATG7/autophagy in maintaining redox and mitochondrial homeostasis essential for neuronal survival.
Journal Article
The mGluR5 agonist CHPG enhances human oligodendrocyte differentiation
by
Nobuta, Hiroko
,
Dreyfus, Cheryl F
,
Bandaru, Anjalika
in
Animals
,
Astrocytes - drug effects
,
Astrocytes - metabolism
2025
Previous studies in adult mice indicate that the mGluR5 agonist 2-chloro-5-hydroxyphenyl glycine (CHPG), reduces cuprizone-elicited losses in myelin. This effect is partly mediated by CHPG binding to mGluR5 receptors on reactive astrocytes, triggering the release of brain derived neurotrophic factor (BDNF), which results in an increase in myelin. However, it remains unclear whether CHPG has similar beneficial effects on human oligodendrocytes. To address this issue, we examined effects of CHPG using both cultured human induced pluripotent stem cell (hiPSC)-derived oligodendrocytes and primary human fetal oligodendrocytes. We show that CHPG increases the proportion of MBP
+
mature oligodendrocytes without affecting survival. This effect is mediated by increasing the proliferation of oligodendrocyte precursor cells (OPCs) and enhancing differentiation in young oligodendrocytes. In contrast to observations in mice, mGluR5 expression in humans is localized on PDGFRα
+
OPCs and O4
+
immature oligodendrocytes, but not astrocytes. Using purified human OPC cultures, we show a direct effect of CHPG in increasing the proportion of MBP
+
mature oligodendrocytes. To identify potential cellular targets of CHPG in demyelinating disease, we analyzed postmortem tissue from individuals with chronic active multiple sclerosis (MS) and healthy controls. In contrast to the hiPSCs or primary oligodendrocytes, demyelinated white matter from MS patients shows elevated mGluR5 mRNA expression in astrocytes. Taken together, our findings suggest that CHPG enhances the differentiation of human OPCs through a mechanism distinct from that observed in cuprizone-treated mice. Moreover, astrocytes in MS pathology upregulate mGluR5, suggesting mGluR5 expression changes dynamically under disease conditions.
Journal Article
Strain differences in cuprizone induced demyelination
2017
Background
Multiple sclerosis (MS) is a severe neurological disorder, characterized by demyelination of the central nervous system (CNS), and with a prevalence of greater than 2 million people worldwide. In terms of research in MS pathology, the cuprizone toxicity model is widely used. Here we investigated the contribution of genetic differences in response to cuprizone-induced demyelination in two genetically different mouse strains: CD1 and C57BL/6.
Results
We demonstrate that exposure to a diet containing 0.2% cuprizone resulted in less severe demyelination in the midline of the corpus callosum over the fornix in CD1 mice than C57BL/6 mice. With continuous cuprizone feeding, demyelination in CD1 mice was not prominent until after 7 weeks, in contrast to C57BL/6 mice, which showed prominent demyelination after 4 weeks of exposure. Concomitantly, immunohistochemical analysis demonstrated more oligodendrocytes, as well as fewer oligodendrocyte progenitor cells, microglia and astrocytes in cuprizone treated CD1 mice. We also analyzed 4-weeks-cuprizone treated corpus callosum tissue samples and found that cuprizone treated CD1 mice showed a smaller reduction of myelin-associated glycoprotein (MAG) and a smaller increase of Iba1 and NG2.
Conclusions
These observations suggest that CD1 mice are less vulnerable to cuprizone-induced demyelination than C57BL/6 mice and thus genetic background factors appear to influence the susceptibility to cuprizone-induced demyelination.
Journal Article
Tropomyosin Receptor Kinase B Expressed in Oligodendrocyte Lineage Cells Functions to Promote Myelin Following a Demyelinating Lesion
by
Patel, Ashish
,
Dreyfus, Cheryl F.
,
Miretzky, Shir
in
Animals
,
Axons
,
Brain-derived neurotrophic factor
2020
The levels of brain-derived neurotrophic factor (BDNF) in the corpus callosum have previously been shown to have a critical impact on oligodendrocyte (OLG) lineage cells during cuprizone-elicited demyelination. In particular, BDNF+/– mice exhibit greater losses in myelin protein levels compared to wild-type mice after cuprizone. To investigate whether OLGs may directly mediate these effects of BDNF during a lesion in vivo, we used the cuprizone model of demyelination with inducible conditional male knockout mice to specifically delete the high-affinity tropomyosin receptor kinase B (TrkB) receptor from proteolipid protein + OLGs during cuprizone-elicited demyelination and subsequent remyelination. The loss of TrkB during cuprizone-elicited demyelination results in an increased sensitivity to demyelination as demonstrated by greater deficits in myelin protein levels, greater decreases in numbers of mature OLGs, increased numbers of demyelinated axons, and decreased myelin thickness. When mice are removed from cuprizone, they exhibit a delayed recovery in myelin proteins and myelin. Our data indicate that following a demyelinating lesion, TrkB in OLGs positively regulates myelin protein expression, myelin itself, and remyelination.
Journal Article
Reactive Astrocytes as Therapeutic Targets for Brain Degenerative Diseases: Roles Played by Metabotropic Glutamate Receptors
by
Dreyfus, Cheryl F.
,
Planas-Fontánez, Talia M.
,
Saitta, Kyle S.
in
Alzheimer's disease
,
Amyotrophic lateral sclerosis
,
Animals
2020
Astrocytes are well known to play critical roles in the development and maintenance of the central nervous system (CNS). Moreover, recent reports indicate that these cells are heterogeneous with respect to the molecules they express and the functions they exhibit in the quiescent or activated state. Because astrocytes also contribute to pathology, promising new results raise the possibility of manipulating specific astroglial populations for therapeutic roles. In this mini-review, we highlight the function of metabotropic glutamate receptors (mGluRs), in particular mGluR3 and mGluR5, in reactive astrocytes and relate these to three degenerative CNS diseases: multiple sclerosis, Alzheimer’s disease and Amyotrophic Lateral Sclerosis. Previous studies demonstrate that effects of these receptors may be beneficial, but this varies depending on the subtype of receptor, the state of the astrocytes, and the specific disease to which they are exposed. Elucidating the role of mGluRs on astrocytes at specific times during development and disease will provide novel insights in understanding how to best use these to serve as therapeutic targets.
Journal Article
Glutamate elicits release of BDNF from basal forebrain astrocytes in a process dependent on metabotropic receptors and the PLC pathway
by
Lercher, Lauren D.
,
Dreyfus, Cheryl F.
,
Jean, Ying Y.
in
Acetylcholinesterase - metabolism
,
Animals
,
Animals, Newborn
2008
A key neurotrophin responsible for the survival and function of basal forebrain (BF) cholinergic neurons is brain-derived neurotrophic factor (BDNF). A number of studies now indicate that a source of this factor may be BF astrocytes. This study was designed to define the role of BF-astrocyte-derived BDNF on cholinergic neurons. Moreover, it investigated regulatory events that modulate BDNF content and release. In initial work BDNF derived from BF-astrocyte-conditioned medium (ACM) was found to increase both numbers of BF acetylcholinesterase (AChE+) cholinergic neurons and the cholinergic synthetic enzyme choline acetyltransferase (ChAT). Western blots, immunocytochemistry and pharmacological inhibition studies revealed that glutamate, through group I metabotropic glutamate receptors (mGluR), increases the intracellular levels of BDNF in BF astrocytes in culture, as well as its release. Furthermore, the release of BDNF is mediated by the actions of PLC, IP3 and internal stores of Ca2+. These results suggest that BF astrocytes serve as local sources of BDNF for cholinergic neurons, and that they may be regulated as such by the neuronal signal, glutamate, through the mediation of group I metabotropic receptors and the PLC pathway.
Journal Article
Regionally Specific Effects of BDNF on Oligodendrocytes
by
Dreyfus, Cheryl F.
,
Du, Yangzhou
,
Lercher, Lauren D.
in
Animals
,
Animals, Newborn
,
Blotting, Western
2003
To define the effects of neurotrophins on oligodendrocytes, we monitored NGF, BDNF and NT-3 actions on basal forebrain (BF) and cortical populations. NGF, BDNF and NT-3 applied to BF oligodendrocytes elicited increases in expression of myelin basic protein (MBP) and enhanced the numbers of MBP+ cells, without affecting total cell numbers. In the cortex, however, while NGF and NT-3 influenced MBP expression, BDNF was without effect. To explore this apparent regional difference in BDNF action, we compared expression of the neurotrophin receptors trkA, trkB and trkC. While BF cells expressed all three trks, cortical cells did not express the full-length BDNF receptor, trkB. Interestingly, in no case was any receptor expressed by all oligodendrocytes, indicating that oligodendrocytes may be heterogeneous within a brain region. The data suggest that BF oligodendrocytes are influenced by BDNF to express MBP and are distinct in this ability from cortical cells.
Journal Article
Brain-Derived Neurotrophic Factor Rapidly Enhances Synaptic Transmission in Hippocampal Neurons via Postsynaptic Tyrosine Kinase Receptors
1995
Although neurotrophins are primarily associated with long-term effects on neuronal survival and differentiation, recent studies have shown that acute changes in synaptic transmission can also be produced. In the hippocampus, an area critically involved in learning and memory, we have found that brain-derived neurotrophic factor (BDNF) rapidly enhanced synaptic efficacy through a previously unreported mechanism-increased postsynaptic responsiveness via a phosphorylation-dependent pathway. Within minutes of BDNF application to cultured hippocampal neurons, spontaneous firing rate was dramatically increased, as were the frequency and amplitude of excitatory postsynaptic currents. The increased frequency of postsynaptic currents resulted from the change in presynaptic firing. However, the increased amplitude was postsynaptic in origin because it was selectively blocked by intracellular injection of the tyrosine kinase receptor (Ntrk2/TrkB) inhibitor K-252a and potentiated by injection of the phosphatase inhibitor okadaic acid. These results suggest a role for BDNF in the modulation of synaptic transmission in the hippocampus.
Journal Article
Glial Cell Line-Derived Neurotrophic Factor Promotes the Survival and Morphologic Differentiation of Purkinje Cells
1995
Glial cell line-derived neurotrophic factor (GDNF) promotes survival of midbrain dopaminergic neurons and motoneurons. Expression of GDNF mRNA in cerebellum raises the possibility that cells within this structure might also respond to GDNF. To examine potential trophic activities of GDNF, dissociated cultures of gestational day 18 rat cerebellum were grown for ≤21 days in the presence of factor. GDNF increased Purkinje cell number without affecting the overall number of neurons or glial cells. A maximal response (50% above control) was elicited with GDNF at 1 pg/ml. Effects of GDNF on Purkinje cell differentiation were examined by scoring the morphologic maturation of cells in treated and control cultures. GDNF increased the proportion of Purkinje cells that displayed relatively mature morphologies, characterized by dendritic thickening and the development of spines and filopodial extensions. Morphologic maturation of the overall neuronal population was unaffected. In sum, our data indicate that GDNF is a potent survival and differentiation factor for Purkinje cells, the efferent neurons of cerebellar cortex. Together with its other actions, these findings raise the possibility that GDNF might be a critical trophic factor at multiple loci in neuronal circuits that control motor function.
Journal Article
Synaptojanin1 deficiency upregulates basal level autophagosome formation in astrocytes
2021
Abstract Macroautophagy (hereafter, autophagy) dysregulation is implicated in multiple neurological disorders. While the autophagy pathways are heavily investigated in heterologous cells and neurons, how autophagy is regulated in the astrocyte, the most abundant cell type in the mammalian brain, is less understood. Here we report that Synaptojanin1 (Synj1), a neuron enriched lipid phosphatase, is expressed in low levels in astrocytes and represses autophagy at the basal level. Synj1 is encoded by the Synj1 gene, whose missense mutations are linked to Parkinsonism with seizure. While the best-known role of Synj1 is to facilitate synaptic vesicle recycling, recent studies suggest that Synj1 also regulates autophagy. Our previous study using the Synj1 haploinsufficient (Synj1+/−) mouse demonstrated that Synj1 deficiency was associated with an age-dependent autophagy impairment in multiple brain regions. We now use cultured astrocytes from Synj1 deficient mice to investigate its role in astrocyte autophagy. We demonstrate that Synj1 deficient astrocytes exhibit increased LC3 puncta, which is more pronounced when lysosomal acidification is blocked. The increased autophagosome formation is accompanied by reduced autophagy substrate, p62, but an insensitivity to starvation induced autophagy clearance. Moreover, we show, for the first time, that the Parkinsonism associated R839C mutation impacts astrocyte autophagy. The profound impact of this mutation on Synj1’s phosphatase functions results in elevated basal level autophagosome formation and clearance that mimics Synj1 deletion. We find that energy sensing molecules, including mTOR and AMPK, are altered in Synj1 deficient astrocytes, which may contribute to the enhanced basal level autophagy.