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1.
Proc Natl Acad Sci U S A ; 121(28): e2400213121, 2024 Jul 09.
Article in English | MEDLINE | ID: mdl-38954546

ABSTRACT

The brain's neuroreparative capacity after injuries such as ischemic stroke is partly contained in the brain's neurogenic niches, primarily the subventricular zone (SVZ), which lies in close contact with the cerebrospinal fluid (CSF) produced by the choroid plexus (ChP). Despite the wide range of their proposed functions, the ChP/CSF remain among the most understudied compartments of the central nervous system (CNS). Here, we report a mouse genetic tool (the ROSA26iDTR mouse line) for noninvasive, specific, and temporally controllable ablation of CSF-producing ChP epithelial cells to assess the roles of the ChP and CSF in brain homeostasis and injury. Using this model, we demonstrate that ChP ablation causes rapid and permanent CSF volume loss in both aged and young adult brains, accompanied by disruption of ependymal cilia bundles. Surprisingly, ChP ablation did not result in overt neurological deficits at 1 mo postablation. However, we observed a pronounced decrease in the pool of SVZ neuroblasts (NBs) following ChP ablation, which occurs due to their enhanced migration into the olfactory bulb. In the middle cerebral artery occlusion model of ischemic stroke, NB migration into the lesion site was also reduced in the CSF-depleted mice. Thus, our study establishes an important role of ChP/CSF in regulating the regenerative capacity of the adult brain under normal conditions and after ischemic stroke.


Subject(s)
Choroid Plexus , Lateral Ventricles , Neurogenesis , Animals , Choroid Plexus/metabolism , Neurogenesis/physiology , Mice , Lateral Ventricles/metabolism , Lateral Ventricles/cytology , Neural Stem Cells/metabolism , Neural Stem Cells/cytology , Stroke/pathology , Stroke/metabolism , Stroke/physiopathology , Male , Cell Movement , Cerebral Ventricles/metabolism
2.
Cell Rep ; 43(6): 114331, 2024 Jun 25.
Article in English | MEDLINE | ID: mdl-38843394

ABSTRACT

The choroid plexus (ChP) produces cerebrospinal fluid (CSF). It also contributes to brain development and serves as the CSF-blood barrier. Prior studies have identified transporters on the epithelial cells that transport water and ions from the blood vasculature to the ventricles and tight junctions involved in the CSF-blood barrier. Yet, how the ChP epithelial cells control brain physiology remains unresolved. We use zebrafish to provide insights into the physiological roles of the ChP. Upon histological and transcriptomic analyses, we identify that the zebrafish ChP is conserved with mammals and expresses transporters involved in CSF secretion. Next, we show that the ChP epithelial cells secrete proteins into CSF. By ablating the ChP epithelial cells, we identify a reduction of the ventricular sizes without alterations of the CSF-blood barrier. Altogether, our findings reveal that the zebrafish ChP is conserved and contributes to the size and homeostasis of the brain ventricles.


Subject(s)
Cerebral Ventricles , Choroid Plexus , Homeostasis , Zebrafish , Animals , Zebrafish/metabolism , Choroid Plexus/metabolism , Cerebral Ventricles/metabolism , Zebrafish Proteins/metabolism , Zebrafish Proteins/genetics , Cerebrospinal Fluid/metabolism , Epithelial Cells/metabolism , Biological Evolution , Blood-Brain Barrier/metabolism
3.
Neuroimage ; 294: 120631, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38701993

ABSTRACT

INTRODUCTION: Spatial normalization is a prerequisite step for the quantitative analysis of SPECT or PET brain images using volume-of-interest (VOI) template or voxel-based analysis. MRI-guided spatial normalization is the gold standard, but the wide use of PET/CT or SPECT/CT in routine clinical practice makes CT-guided spatial normalization a necessary alternative. Ventricular enlargement is observed with aging, and it hampers the spatial normalization of the lateral ventricles and striatal regions, limiting their analysis. The aim of the present study was to propose a robust spatial normalization method based on CT scans that takes into account features of the aging brain to reduce bias in the CT-guided striatal analysis of SPECT images. METHODS: We propose an enhanced CT-guided spatial normalization pipeline based on SPM12. Performance of the proposed pipeline was assessed on visually normal [123I]-FP-CIT SPECT/CT images. SPM12 default CT-guided spatial normalization was used as reference method. The metrics assessed were the overlap between the spatially normalized lateral ventricles and caudate/putamen VOIs, and the computation of caudate and putamen specific binding ratios (SBR). RESULTS: In total 231 subjects (mean age ± SD = 61.9 ± 15.5 years) were included in the statistical analysis. The mean overlap between the spatially normalized lateral ventricles of subjects and the caudate VOI and the mean SBR of caudate were respectively 38.40 % (± SD = 19.48 %) of the VOI and 1.77 (± 0.79) when performing SPM12 default spatial normalization. The mean overlap decreased to 9.13 % (± SD = 1.41 %, P < 0.001) of the VOI and the SBR of caudate increased to 2.38 (± 0.51, P < 0.0001) when performing the proposed pipeline. Spatially normalized lateral ventricles did not overlap with putamen VOI using either method. The mean putamen SBR value derived from the proposed spatial normalization (2.75 ± 0.54) was not significantly different from that derived from the default SPM12 spatial normalization (2.83 ± 0.52, P > 0.05). CONCLUSION: The automatic CT-guided spatial normalization used herein led to a less biased spatial normalization of SPECT images, hence an improved semi-quantitative analysis. The proposed pipeline could be implemented in clinical routine to perform a more robust SBR computation using hybrid imaging.


Subject(s)
Corpus Striatum , Humans , Male , Female , Middle Aged , Aged , Adult , Corpus Striatum/diagnostic imaging , Corpus Striatum/metabolism , Tomography, X-Ray Computed/methods , Tomography, X-Ray Computed/standards , Tomography, Emission-Computed, Single-Photon/methods , Cerebral Ventricles/diagnostic imaging , Cerebral Ventricles/metabolism , Image Processing, Computer-Assisted/methods , Tropanes
4.
Fluids Barriers CNS ; 20(1): 89, 2023 Dec 05.
Article in English | MEDLINE | ID: mdl-38049798

ABSTRACT

Reissner's fiber (RF) is an extracellular polymer comprising the large monomeric protein SCO-spondin (SSPO) secreted by the subcommissural organ (SCO) that extends through cerebrospinal fluid (CSF)-filled ventricles into the central canal of the spinal cord. In zebrafish, RF and CSF-contacting neurons (CSF-cNs) form an axial sensory system that detects spinal curvature, instructs morphogenesis of the body axis, and enables proper alignment of the spine. In mammalian models, RF has been implicated in CSF circulation. However, challenges in manipulating Sspo, an exceptionally large gene of 15,719 nucleotides, with traditional approaches has limited progress. Here, we generated a Sspo knockout mouse model using CRISPR/Cas9-mediated genome-editing. Sspo knockout mice lacked RF-positive material in the SCO and fibrillar condensates in the brain ventricles. Remarkably, Sspo knockout brain ventricle sizes were reduced compared to littermate controls. Minor defects in thoracic spine curvature were detected in Sspo knockouts, which did not alter basic motor behaviors tested. Altogether, our work in mouse demonstrates that SSPO and RF regulate ventricle size during development but only moderately impact spine geometry.


Subject(s)
Cell Adhesion Molecules, Neuronal , Cerebral Ventricles , Zebrafish , Animals , Mice , Cell Adhesion Molecules, Neuronal/metabolism , Cerebral Ventricles/metabolism , Spinal Cord/metabolism , Zebrafish/metabolism
5.
Cell Stem Cell ; 30(8): 1054-1071.e8, 2023 08 03.
Article in English | MEDLINE | ID: mdl-37541211

ABSTRACT

White matter injuries (WMIs) are the leading cause of neurologic impairment in infants born premature. There are no treatment options available. The most common forms of WMIs in infants occur prior to the onset of normal myelination, making its pathophysiology distinctive, thus requiring a tailored approach to treatment. Neonates present a unique opportunity to repair WMIs due to a transient abundance of neural stem/progenitor cells (NSPCs) present in the germinal matrix with oligodendrogenic potential. We identified an endogenous oxysterol, 20-αHydroxycholesterol (20HC), in human maternal breast milk that induces oligodendrogenesis through a sonic hedgehog (shh), Gli-dependent mechanism. Following WMI in neonatal mice, injection of 20HC induced subventricular zone-derived oligodendrogenesis and improved myelination in the periventricular white matter, resulting in improved motor outcomes. Targeting the oligodendrogenic potential of postnatal NSPCs in neonates with WMIs may be further developed into a novel approach to mitigate this devastating complication of preterm birth.


Subject(s)
Brain Injuries , Premature Birth , White Matter , Female , Humans , Animals , Mice , Infant, Newborn , White Matter/metabolism , Milk, Human/metabolism , Hedgehog Proteins/metabolism , Cerebral Ventricles/metabolism , Oligodendroglia/physiology
6.
Fluids Barriers CNS ; 20(1): 45, 2023 Jun 16.
Article in English | MEDLINE | ID: mdl-37328833

ABSTRACT

Regulation of the volume and electrolyte composition of the cerebrospinal fluid (CSF) is vital for brain development and function. The Na-K-Cl co-transporter NKCC1 in the choroid plexus (ChP) plays key roles in regulating CSF volume by co-transporting ions and mediating same-direction water movements. Our previous study showed ChP NKCC1 is highly phosphorylated in neonatal mice as the CSF K+ level drastically decreases and that overexpression of NKCC1 in the ChP accelerates CSF K+ clearance and reduces ventricle size [1]. These data suggest that NKCC1 mediates CSF K+ clearance following birth in mice. In this current study, we used CRISPR technology to create a conditional NKCC1 knockout mouse line and evaluated CSF K+ by Inductively Coupled Plasma Optical Emission spectroscopy (ICP-OES). We demonstrated ChP-specific reduction of total and phosphorylated NKCC1 in neonatal mice following embryonic intraventricular delivery of Cre recombinase using AAV2/5. ChP-NKCC1 knockdown was accompanied by a delayed perinatal clearance of CSF K+. No gross morphological disruptions were observed in the cerebral cortex. We extended our previous results by showing embryonic and perinatal rats shared key characteristics with mice, including decreased ChP NKCC1 expression level, increased ChP NKCC1 phosphorylation state, and increased CSF K+ levels compared to adult. Collectively, these follow up data support ChP NKCC1's role in age-appropriate CSF K+ clearance during neonatal development.


Subject(s)
Choroid Plexus , Potassium , Solute Carrier Family 12, Member 2 , Animals , Female , Mice , Pregnancy , Rats , Cerebral Cortex/metabolism , Cerebral Ventricles/metabolism , Cerebrospinal Fluid/metabolism , Choroid Plexus/metabolism , Potassium/metabolism , Solute Carrier Family 12, Member 2/metabolism
7.
Int J Mol Sci ; 24(7)2023 Apr 03.
Article in English | MEDLINE | ID: mdl-37047646

ABSTRACT

Hydrocephalus is a devastating condition characterized by excess cerebrospinal fluid (CSF) in the brain. Currently, the only effective treatment is surgical intervention, usually involving shunt placement, a procedure prone to malfunction, blockage, and infection that requires additional, often repetitive, surgeries. There are no long-term pharmaceutical treatments for hydrocephalus. To initiate an intelligent drug design, it is necessary to understand the biochemical changes underlying the pathology of this chronic condition. One potential commonality in the various forms of hydrocephalus is an imbalance in fluid-electrolyte homeostasis. The choroid plexus, a complex tissue found in the brain ventricles, is one of the most secretory tissues in the body, producing approximately 500 mL of CSF per day in an adult human. In this manuscript, two key transport proteins of the choroid plexus epithelial cells, transient receptor potential vanilloid 4 and sodium, potassium, 2 chloride co-transporter 1, will be considered. Both appear to play key roles in CSF production, and their inhibition or genetic manipulation has been shown to affect CSF volume. As with most transporters, these proteins are regulated by kinases. Therefore, specific kinase inhibitors are also potential targets for the development of pharmaceuticals to treat hydrocephalus.


Subject(s)
Hydrocephalus , Humans , Adult , Hydrocephalus/metabolism , Cerebral Ventricles/metabolism , Choroid Plexus/metabolism , Epithelial Cells/metabolism , Treatment Outcome , Carrier Proteins/metabolism
8.
Cell Tissue Res ; 392(2): 535-551, 2023 May.
Article in English | MEDLINE | ID: mdl-36764939

ABSTRACT

Motile cilia are protruding organelles on specialized epithelia that beat in a synchronous fashion to propel extracellular fluids. Coordination and orientation of cilia beating on individual cells and across tissues is a complex process dependent on planar cell polarity (PCP) signaling. Asymmetric sorting of PCP pathway components, essential to establish planar polarity, involves trafficking along the endocytic path, but the underlying regulatory processes remain incompletely understood. Here, we identified the endocytic receptor LRP2 as regulator of PCP component trafficking in ependyma, a multi-ciliated cell type that is involved in facilitating flow of the cerebrospinal fluid in the brain ventricular system. Lack of receptor expression in gene-targeted mice results in a failure to sort PCP core proteins to the anterior or posterior cell side and, consequently, in the inability to coordinate cilia arrangement and to aligned beating (loss of rotational and translational polarity). LRP2 deficiency coincides with a failure to sort NHERF1, a cytoplasmic LRP2 adaptor to the anterior cell side. As NHERF1 is essential to translocate PCP core protein Vangl2 to the plasma membrane, these data suggest a molecular mechanism whereby LRP2 interacts with PCP components through NHERF1 to control their asymmetric sorting along the endocytic path. Taken together, our findings identified the endocytic receptor LRP2 as a novel regulator of endosomal trafficking of PCP proteins, ensuring their asymmetric partition and establishment of translational and rotational planar cell polarity in the ependyma.


Subject(s)
Cell Polarity , Cilia , Animals , Mice , Cilia/metabolism , Ependyma/metabolism , Cerebral Ventricles/metabolism , Carrier Proteins/metabolism , Wnt Signaling Pathway , Low Density Lipoprotein Receptor-Related Protein-2/metabolism
9.
J Anat ; 241(3): 820-830, 2022 Sep.
Article in English | MEDLINE | ID: mdl-35638289

ABSTRACT

The subcommissural organ (SCO) is a part of the circumventricular organs located in the dorsocaudal region of the third ventricle at the entrance of the aqueduct of Sylvius. The SCO comprises epithelial cells and produces high molecular weight glycoproteins, which are secreted into the third ventricle and become part of Reissner's fibre in the cerebrospinal fluid. Abnormal development of the SCO has been linked with congenital hydrocephalus, a condition characterized by excessive accumulation of cerebrospinal fluid in the brain. In the present study, we characterized the SCO cells in the adult mouse brain to gain insights into the possible role of this brain region. Immunohistochemical analyses revealed that expression of Pax6, a transcription factor essential for SCO differentiation during embryogenesis, is maintained in the SCO at postnatal stages from P0 to P84. SCO cells in the adult brain expressed known neural stem/progenitor cell (NSPC) markers, Sox2 and vimentin. The adult SCO cells also expressed proliferating marker PCNA, although expression of another proliferation marker Ki67, indicating a G2 /M phase, was not detected. The SCO cells did not incorporate BrdU, a marker for DNA synthesis in the S phase. Therefore, the SCO cells have a potential for proliferation but are quiescent for cell division in the adult. The SCO cells also expressed GFAP, a marker for astrocytes or NSPCs, but not NeuN (for neurons). A few cells positive for Iba1 (microglia), Olig2 (for oligodendrocytes) and PDGFRα (oligodendrocyte progenitors) existed within or on the periphery of the SCO. These findings revealed that the SCO cells have a unique feature as secretory yet immature neuroepithelial cells in the adult mouse brain.


Subject(s)
Hydrocephalus , Subcommissural Organ , Animals , Cerebral Ventricles/metabolism , Glycoproteins/metabolism , Hydrocephalus/cerebrospinal fluid , Hydrocephalus/genetics , Mice , Neuroepithelial Cells
10.
Int J Mol Sci ; 23(4)2022 Feb 11.
Article in English | MEDLINE | ID: mdl-35216129

ABSTRACT

Hepatic encephalopathy is a major cause of liver failure. However, the pathophysiological role of ventricle enlargement in brain edema remains unclear. Here, we used an acute hepatic encephalopathy mouse model to examine the sequential pathological changes in the brain associated with this condition. We collected tissue samples from experimental animals treated with ammonium acetate at 3 and 24 h post-injection. Despite the normalization of the animal's ammonia levels, samples taken at 24 h after injection exhibited distinct enlargement of lateral ventricles. The choroid plexus samples obtained at 3 h post-ammonium acetate treatment indicated enlargement; however, this swelling was reduced at the later timepoint. The aquaporin-1 proteins that regulate the choroid plexus were localized both in the apical membrane and the cytoplasm of the epithelia in the control; however, they translocated to the apical membranes of the epithelia in response to ammonia treatment. Therefore, severe acute hepatic encephalopathy induced by ammonium acetate administration caused enlargement of the ventricles, through swelling of the choroid plexus and aquaporin-1 transport and aggregation within the apical membranes.


Subject(s)
Acetates/adverse effects , Cerebral Ventricles/drug effects , Choroid Plexus/drug effects , Hepatic Encephalopathy/chemically induced , Lateral Ventricles/drug effects , Animals , Aquaporin 1/metabolism , Brain Edema/chemically induced , Brain Edema/metabolism , Cerebral Ventricles/metabolism , Choroid Plexus/metabolism , Disease Models, Animal , Hepatic Encephalopathy/metabolism , Lateral Ventricles/metabolism , Male , Mice , Mice, Inbred C57BL
11.
Neuroimage ; 244: 118542, 2021 12 01.
Article in English | MEDLINE | ID: mdl-34530134

ABSTRACT

Ketogenic diet (KD) is a high-fat and low-carbohydrate therapy for medically intractable epilepsy, and its applications in other neurological conditions, including those occurring in children, have been increasingly tested. However, how KD affects childhood neurodevelopment, a highly sensitive and plastic process, is not clear. In this study, we explored structural, metabolic, and functional consequences of a brief treatment of a strict KD (weight ratio of fat to carbohydrate plus protein is approximately 6.3:1) in naive juvenile mice of different inbred strains, using a multidisciplinary approach. Systemic measurements using magnetic resonance imaging revealed that unexpectedly, the volumes of most brain structures in KD-fed mice were about 90% of those in mice of the same strain but fed a standard diet. The reductions in volumes were nonselective, including different regions throughout the brain, the ventricles, and the white matter. The relative volumes of different brain structures were unaltered. Additionally, as KD is a metabolism-based treatment, we performed untargeted metabolomic profiling to explore potential means by which KD affected brain growth and to identify metabolic changes in the brain. We found that brain metabolomic profile was significantly impacted by KD, through both distinct and common pathways in different mouse strains. To explore whether the volumetric and metabolic changes induced by this KD treatment were associated with functional consequences, we recorded spontaneous EEG to measure brain network activity. Results demonstrated limited alterations in EEG patterns in KD-fed animals. In addition, we observed that cortical levels of brain-derived neurotrophic factor (BDNF), a critical molecule in neurodevelopment, did not change in KD-fed animals. Together, these findings indicate that a strict KD could affect volumetric development and metabolic profile of the brain in inbred juvenile mice, while global network activities and BDNF signaling in the brain were mostly preserved. Whether the volumetric and metabolic changes are related to any core functional consequences during neurodevelopment and whether they are also observed in humans need to be further investigated. In addition, our results indicate that certain outcomes of KD are specific to the individual mouse strains tested, suggesting that the physiological profiles of individuals may need to be examined to maximize the clinical benefit of KD.


Subject(s)
Brain/metabolism , Diet, Ketogenic , Metabolome/physiology , Animals , Cerebral Ventricles/metabolism , Magnetic Resonance Imaging , Mice , White Matter/metabolism
12.
Sci Rep ; 11(1): 19115, 2021 09 27.
Article in English | MEDLINE | ID: mdl-34580355

ABSTRACT

Amyloid precursor protein (APP) is expressed in many tissues in human, mice and in zebrafish. In zebrafish, there are two orthologues, Appa and Appb. Interestingly, some cellular processes associated with APP overlap with cilia-mediated functions. Whereas the localization of APP to primary cilia of in vitro-cultured cells has been reported, we addressed the presence of APP in motile and in non-motile sensory cilia and its potential implication for ciliogenesis using zebrafish, mouse, and human samples. We report that Appa and Appb are expressed by ciliated cells and become localized at the membrane of cilia in the olfactory epithelium, otic vesicle and in the brain ventricles of zebrafish embryos. App in ependymal cilia persisted in adult zebrafish and was also detected in mouse and human brain. Finally, we found morphologically abnormal ependymal cilia and smaller brain ventricles in appa-/-appb-/- mutant zebrafish. Our findings demonstrate an evolutionary conserved localisation of APP to cilia and suggest a role of App in ciliogenesis and cilia-related functions.


Subject(s)
Amyloid beta-Protein Precursor/metabolism , Amyloidogenic Proteins/metabolism , Cerebral Ventricles/metabolism , Zebrafish Proteins/metabolism , Amyloid beta-Protein Precursor/analysis , Amyloid beta-Protein Precursor/genetics , Amyloidogenic Proteins/analysis , Amyloidogenic Proteins/genetics , Animals , Animals, Genetically Modified , Cerebral Ventricles/cytology , Cilia/metabolism , Embryo, Nonmammalian , Ependyma/cytology , Ependyma/metabolism , Humans , Mice , Models, Animal , Mutation , Olfactory Mucosa/cytology , Olfactory Mucosa/metabolism , Zebrafish , Zebrafish Proteins/analysis , Zebrafish Proteins/genetics
13.
Article in English | MEDLINE | ID: mdl-34500089

ABSTRACT

Mammalian claudin-5 (cldn5), a zebrafish cldn5a homolog, is essential to blood-brain barrier (BBB) integrity. Previously, the existence of an endothelial tight junction-based BBB with cldn5a expression in the cerebral microvessels was reported in zebrafish. However, the role of cldn5a in the cerebral microvessels of developing zebrafish has not been elucidated. Here, we further investigated the functional integrity of cldn5a in developing zebrafish by injecting cldn5a morpholinos. At 7 days post-fertilization, cldn5a immunoreactivity was detected on the brain surface, ventricular ependyma, and cerebral mircovessels but disappeared following cldna5a knockdown. Cldn5a morphants showed size-selective leakage of tracers through the BBB and downregulated expression of glucose transporter 1 (glut1) in the cerebral microvessels. In addition, leakiness in the blood-cerebrospinal fluid barrier was observed, implying the overall abnormal development of blood-neural barriers. The results of our study suggest that cldn5a is required for building and maintaining the blood-neural barrier during zebrafish development.


Subject(s)
Blood-Brain Barrier/metabolism , Claudin-5/antagonists & inhibitors , Zebrafish Proteins/antagonists & inhibitors , Zebrafish/physiology , Animals , Biological Transport , Blood-Brain Barrier/pathology , Brain/metabolism , Brain/pathology , Cerebral Ventricles/metabolism , Cerebral Ventricles/pathology , Claudin-5/genetics , Claudin-5/metabolism , Morpholinos/pharmacology , Tight Junctions/metabolism , Tight Junctions/pathology , Zebrafish/embryology , Zebrafish/genetics , Zebrafish Proteins/genetics , Zebrafish Proteins/metabolism
14.
Genes Cells ; 26(6): 399-410, 2021 Jun.
Article in English | MEDLINE | ID: mdl-33811429

ABSTRACT

An expanded and folded neocortex is characteristic of higher mammals, including humans and other primates. The neocortical surface area was dramatically enlarged during the course of mammalian brain evolution from lissencephalic to gyrencephalic mammals, and this bestowed higher cognitive functions especially to primates, including humans. In this study, we generated transgenic (Tg) mice in which the expression of Sonic hedgehog (Shh) could be controlled in neural stem cells (NSCs) and neural progenitors by using the Tet-on system. Shh overexpression during embryogenesis promoted the symmetric proliferative division of NSCs in the neocortical region, leading to the expansion of lateral ventricles and tangential extension of the ventricular zone. Moreover, Shh-overexpressing Tg mice showed dramatic expansion of the neocortical surface area and exhibited a wrinkled brain when overexpression was commenced at early stages of neural development. These results indicate that Shh is able to increase the neocortical NSCs and contribute to expansion of the neocortex.


Subject(s)
Hedgehog Proteins/metabolism , Neocortex/metabolism , Neural Stem Cells/cytology , Neural Stem Cells/metabolism , Animals , Biomarkers/metabolism , Cell Differentiation , Cell Proliferation , Cerebral Ventricles/metabolism , Gene Expression Regulation , Mice, Transgenic , Neurons/cytology , Signal Transduction
15.
Brain Res ; 1757: 147312, 2021 04 15.
Article in English | MEDLINE | ID: mdl-33539798

ABSTRACT

Progranulin (PGRN), a secreted glycosylated protein, has been reported to attenuate ischemia-induced cerebral injury through anti-inflammation, attenuation of blood-brain barrier disruption and neuroprotection. However, the effect of PGRN on neurogenesis in the subventricular zone (SVZ) after cerebral ischemia remains unclear. In this study, adult C57BL/6 mice were subjected to permanent middle cerebral artery occlusion (pMCAO), and different doses of recombinant mouse PGRN (r-PGRN, 0.3 ng, 1 ng, 5 ng) were intracerebroventricularly administered 30 min after pMCAO. Results showed that 1 ng r-PGRN markedly reduced infarct volume and rescued functional deficits 24 h after pMCAO. Meanwhile, 1 ng r-PGRN increased SVZ cell proliferation, as shown by a high number of bromodeoxyuridine-positive (BrdU+) cells and Ki-67+ cells in the ischemic ipsilateral SVZ 7 d after pMCAO. Additionally, PGRN increased the percentage of BrdU+/Doublecortin (DCX)+ cells in the ipsilateral SVZ 14 d after pMCAO and increased the percentage of new neurons (BrdU+/NeuN+ cells) in the peri-infarct striatum 28 d after pMCAO, suggesting that PGRN promotes neuronal differentiation. PGRN also upregulated phosphorylation of ERK1/2 and Akt in the ipsilateral SVZ 3 d after pMCAO. Our data indicate that PGRN treatment promotes acute functional recovery; most importantly, it also stimulates neurogenesis in the SVZ, which could be beneficial for long-term recovery after cerebral ischemia. The increase in neurogenesis could be associated with activation of the MAPK/ERK and PI3K/Akt pathways. These results suggest a potential new strategy utilizing PGRN in ischemic stroke therapy.


Subject(s)
Brain Ischemia/drug therapy , Neurogenesis/drug effects , Progranulins/pharmacology , Recovery of Function/drug effects , Animals , Brain Ischemia/physiopathology , Cerebral Ventricles/drug effects , Cerebral Ventricles/metabolism , Infarction, Middle Cerebral Artery/drug therapy , Infarction, Middle Cerebral Artery/physiopathology , Lateral Ventricles/drug effects , Lateral Ventricles/metabolism , Male , Mice, Inbred C57BL , Neurogenesis/physiology , Neurons/drug effects , Phosphatidylinositol 3-Kinases/drug effects , Phosphatidylinositol 3-Kinases/metabolism
16.
FASEB J ; 35(2): e21329, 2021 02.
Article in English | MEDLINE | ID: mdl-33484186

ABSTRACT

L1 syndrome is a rare developmental disorder characterized by hydrocephalus of varying severity, intellectual deficits, spasticity of the legs, and adducted thumbs. Therapy is limited to symptomatic relief. Numerous gene mutations in the L1 cell adhesion molecule (L1CAM, hereafter abbreviated L1) were identified in L1 syndrome patients, and those affecting the extracellular domain of this transmembrane type 1 glycoprotein show the most severe phenotypes. Previously analyzed rodent models of the L1 syndrome focused on L1-deficient animals or mouse mutants with abrogated cell surface expression of L1, making it difficult to test L1 function-triggering mimetic compounds with potential therapeutic value. To overcome this impasse, we generated a novel L1 syndrome mouse with a mutation of aspartic acid at position 201 in the extracellular part of L1 (p.D201N, hereafter termed L1-201) that displays a cell surface-exposed L1 accessible to the L1 mimetics. Behavioral assessment revealed an increased neurological deficit score and increased locomotor activity in male L1-201 mice carrying the mutation on the X-chromosome. Histological analyses of L1-201 mice showed features of the L1 syndrome, including enlarged ventricles and reduced size of the corpus callosum. Expression levels of L1-201 protein as well as extent of cell surface biotinylation and immunofluorescence labelling of cultured cerebellar neurons were normal. Importantly, treatment of these cultures with the L1 mimetic compounds duloxetine, crotamiton, and trimebutine rescued impaired cell migration and survival as well as neuritogenesis. Altogether, the novel L1 syndrome mouse model provides a first experimental proof-of-principle for the potential therapeutic value of L1 mimetic compounds.


Subject(s)
Genetic Diseases, X-Linked/drug therapy , Intellectual Disability/drug therapy , Neural Cell Adhesion Molecule L1/metabolism , Peptidomimetics/therapeutic use , Spastic Paraplegia, Hereditary/drug therapy , Animals , Cells, Cultured , Cerebellum/cytology , Cerebellum/metabolism , Cerebellum/pathology , Cerebral Ventricles/metabolism , Cerebral Ventricles/pathology , Corpus Callosum/metabolism , Corpus Callosum/pathology , Duloxetine Hydrochloride/pharmacology , Duloxetine Hydrochloride/therapeutic use , Genetic Diseases, X-Linked/genetics , Genetic Diseases, X-Linked/pathology , Intellectual Disability/genetics , Intellectual Disability/pathology , Locomotion , Male , Mice , Mice, Inbred C57BL , Mutation , Neural Cell Adhesion Molecule L1/genetics , Neurogenesis , Neurons/drug effects , Neurons/metabolism , Peptidomimetics/pharmacology , Phenotype , Spastic Paraplegia, Hereditary/genetics , Spastic Paraplegia, Hereditary/pathology , Toluidines/pharmacology , Toluidines/therapeutic use , Trimebutine/pharmacology , Trimebutine/therapeutic use
17.
Clin Transl Oncol ; 23(3): 459-467, 2021 Mar.
Article in English | MEDLINE | ID: mdl-32617871

ABSTRACT

PURPOSE: This study investigated the degree of tumor cell infiltration in the tumor cavity and ventricle wall based on fluorescent signals of 5-aminolevulinic acid (5-ALA) after removal of the magnetic resonance (MR)-enhancing area and analyzed its prognostic significance in glioblastoma. METHODS: Twenty-five newly developed isocitrate dehydrogenase (IDH)-wildtype glioblastomas with complete resection both of MR-enhancing lesions and strong purple fluorescence on resection cavity were retrospectively analyzed. The fluorescent signals of 5-ALA were divided into strong purple, vague pink, and blue colors. The pathologic findings were classified into massively infiltrating tumor cells, infiltrating tumor cells, suspicious single-cell infiltration, and normal-appearing cells. The pathological findings were analyzed according to the fluorescent signals in the resection cavity and ventricle wall. RESULTS: There was no correlation between fluorescent signals and infiltrating tumor cells in the resection cavity (p = 0.199) and ventricle wall (p = 0.704) after resection of the MR-enhancing lesion. The median progression-free survival (PFS) and median overall survival (OS) were 12.5 (± 2.1) and 21.1 (± 3.5) months, respectively. In univariate analysis, the presence of definitive infiltrating tumor cells in the resection cavity and ventricle wall was significantly related to the PFS (p = 0.002) and OS (p = 0.027). In multivariate analysis, the absence of definitive infiltrating tumor cells improved PFS (hazard ratio: 0.184; 95% CI: 0.049-0.690, p = 0.012) and OS (hazard ratio: 0.124; 95% CI: 0.015-0.998, p = 0.050). CONCLUSIONS: After resection both of the MR-enhancing lesions and strong purple fluorescence on resection cavity, there was no correlation between remnant fluorescent signals and infiltrating tumor cells. The remnant definitive infiltrating tumor cells in the resection cavity and ventricle wall significantly influenced the prognosis of patients with glioblastoma. Aggressive surgical removal of infiltrating tumor cells may improve their prognosis.


Subject(s)
Aminolevulinic Acid/metabolism , Brain Neoplasms/pathology , Cell Movement , Glioblastoma/pathology , Isocitrate Dehydrogenase , Photosensitizing Agents/metabolism , Aged , Aminolevulinic Acid/administration & dosage , Brain Neoplasms/metabolism , Brain Neoplasms/mortality , Brain Neoplasms/surgery , Cerebral Ventricles/metabolism , DNA Modification Methylases/genetics , DNA Repair Enzymes/genetics , Female , Fluorescence , Glioblastoma/metabolism , Glioblastoma/mortality , Glioblastoma/surgery , Humans , Kaplan-Meier Estimate , Magnetic Resonance Imaging , Male , Middle Aged , Photosensitizing Agents/administration & dosage , Prognosis , Progression-Free Survival , Protoporphyrins/metabolism , Retrospective Studies , Tumor Suppressor Proteins/genetics
18.
Cell Tissue Res ; 383(2): 835-852, 2021 Feb.
Article in English | MEDLINE | ID: mdl-32902807

ABSTRACT

Development of the brain ventricular system of vertebrates and the molecular mechanisms involved are not fully understood. The developmental genes expressed in the elements of the brain ventricular system such as the ependyma and circumventricular organs act as molecular determinants of cell adhesion critical for the formation of brain ventricular system. They control brain development and function, including the flow of cerebrospinal fluid. Here, we describe the novel distantly related member of the zebrafish L1-CAM family of genes-camel. Whereas its maternal transcripts distributed uniformly, the zygotic transcripts demonstrate clearly defined expression patterns, in particular in the axial structures: floor plate, hypochord, and roof plate. camel expresses in several other cell lineages with access to the brain ventricular system, including the midbrain roof plate, subcommissural organ, organum vasculosum lamina terminalis, median eminence, paraventricular organ, flexural organ, and inter-rhombomeric boundaries. This expression pattern suggests a role of Camel in neural development. Several isoforms of Camel generated by differential splicing of exons encoding the sixth fibronectin type III domain enhance cell adhesion differentially. The antisense oligomer morpholino-mediated loss-of-function of Camel affects cell adhesion and causes hydrocephalus and scoliosis manifested via the tail curled down phenotype. The subcommissural organ's derivative-the Reissner fiber-participates in the flow of cerebrospinal fluid. The Reissner fiber fails to form upon morpholino-mediated Camel loss-of-function. The Camel mRNA-mediated gain-of-function causes the Reissner fiber misdirection. This study revealed a link between Chl1a/Camel and Reissner fiber formation, and this supports the idea that CHL1 is one of the scoliosis factors.


Subject(s)
Cell Adhesion Molecules/metabolism , Cerebral Ventricles/embryology , Cerebral Ventricles/metabolism , Gene Expression Regulation, Developmental , Zebrafish Proteins/metabolism , Zebrafish/embryology , Zebrafish/genetics , Animals , Cell Adhesion , Cell Adhesion Molecules/chemistry , Cell Adhesion Molecules/genetics , Hydrocephalus/genetics , Hydrocephalus/pathology , Morpholinos/pharmacology , Phenotype , Phylogeny , Protein Isoforms/chemistry , Protein Isoforms/genetics , Protein Isoforms/metabolism , RNA, Messenger/genetics , RNA, Messenger/metabolism , Zebrafish Proteins/chemistry , Zebrafish Proteins/genetics
19.
Clin Neurol Neurosurg ; 200: 106374, 2021 01.
Article in English | MEDLINE | ID: mdl-33290887

ABSTRACT

While CDD directly to the CSF can provide a constant delivery of the dopaminergic drug resulting in a more stable treatment effect without the limitations of traditional oral therapy without peripheral effects, it is still young and longitudinal data is lacking. These experimental therapies show promise and further investigation into their efficacy and safety could extend the frontiers for management of PD.


Subject(s)
Dopamine/administration & dosage , Dopamine/blood , Parkinson Disease/blood , Parkinson Disease/diagnosis , Parkinson Disease/drug therapy , Cerebral Ventricles/drug effects , Cerebral Ventricles/metabolism , Humans , Injections, Intraventricular , Injections, Spinal
20.
Nat Med ; 26(11): 1754-1765, 2020 11.
Article in English | MEDLINE | ID: mdl-33077954

ABSTRACT

Congenital hydrocephalus (CH), characterized by enlarged brain ventricles, is considered a disease of excessive cerebrospinal fluid (CSF) accumulation and thereby treated with neurosurgical CSF diversion with high morbidity and failure rates. The poor neurodevelopmental outcomes and persistence of ventriculomegaly in some post-surgical patients highlight our limited knowledge of disease mechanisms. Through whole-exome sequencing of 381 patients (232 trios) with sporadic, neurosurgically treated CH, we found that damaging de novo mutations account for >17% of cases, with five different genes exhibiting a significant de novo mutation burden. In all, rare, damaging mutations with large effect contributed to ~22% of sporadic CH cases. Multiple CH genes are key regulators of neural stem cell biology and converge in human transcriptional networks and cell types pertinent for fetal neuro-gliogenesis. These data implicate genetic disruption of early brain development, not impaired CSF dynamics, as the primary pathomechanism of a significant number of patients with sporadic CH.


Subject(s)
Cerebral Ventricles/metabolism , Genetic Predisposition to Disease , Hydrocephalus/genetics , Neurogenesis/genetics , Brain/diagnostic imaging , Brain/pathology , Cerebral Ventricles/diagnostic imaging , Cerebral Ventricles/pathology , Exome/genetics , Female , Humans , Hydrocephalus/cerebrospinal fluid , Hydrocephalus/diagnostic imaging , Hydrocephalus/pathology , Male , Mutation/genetics , Neural Stem Cells/metabolism , Neural Stem Cells/pathology , Neuroglia/metabolism , Neuroglia/pathology , Transcription Factors/genetics , Tripartite Motif Proteins/genetics , Ubiquitin-Protein Ligases/genetics , Exome Sequencing
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