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1.
Neurotherapeutics ; : e00388, 2024 Jul 06.
Article in English | MEDLINE | ID: mdl-38972779

ABSTRACT

Protein misfolding and mislocalization are common to both familial and sporadic forms of amyotrophic lateral sclerosis (ALS). Maintaining proteostasis through induction of heat shock proteins (HSP) to increase chaperoning capacity is a rational therapeutic strategy in the treatment of ALS. However, the threshold for upregulating stress-inducible HSPs remains high in neurons, presenting a therapeutic obstacle. This study used mouse models expressing the ALS variants FUSR521G or SOD1G93A to follow up on previous work in cultured motor neurons showing varied effects of the HSP co-inducer, arimoclomol, and class I histone deacetylase (HDAC) inhibitors on HSP expression depending on the ALS variant being expressed. As in cultured neurons, neither expression of the transgene nor drug treatments induced expression of HSPs in cortex, spinal cord or muscle of FUSR521G mice, indicating suppression of the heat shock response. Nonetheless, arimoclomol, and RGFP963, restored performance on cognitive tests and improved cortical dendritic spine densities. In SOD1G93A mice, multiple HSPs were upregulated in hindlimb skeletal muscle, but not in lumbar spinal cord with the exception of HSPB1 associated with astrocytosis. Drug treatments improved contractile force but reduced the increase in HSPs in muscle rather than facilitating their expression. The data point to mechanisms other than amplification of the heat shock response underlying recovery of cognitive function in ALS-FUS mice by arimoclomol and class I HDAC inhibition and suggest potential benefits in counteracting cognitive impairment in ALS, frontotemporal dementia and related disorders.

2.
Cell Stress Chaperones ; 29(3): 359-380, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38570009

ABSTRACT

Protein misfolding and mislocalization are common themes in neurodegenerative disorders, including motor neuron disease, and amyotrophic lateral sclerosis (ALS). Maintaining proteostasis is a crosscutting therapeutic target, including the upregulation of heat shock proteins (HSP) to increase chaperoning capacity. Motor neurons have a high threshold for upregulating stress-inducible HSPA1A, but constitutively express high levels of HSPA8. This study compared the expression of these HSPs in cultured motor neurons expressing three variants linked to familial ALS: TAR DNA binding protein 43 kDa (TDP-43)G348C, fused in sarcoma (FUS)R521G, or superoxide dismutase I (SOD1)G93A. All variants were poor inducers of Hspa1a, and reduced levels of Hspa8 mRNA and protein, indicating multiple compromises in chaperoning capacity. To promote HSP expression, cultures were treated with the putative HSP coinducer, arimoclomol, and class I histone deacetylase inhibitors, to promote active chromatin for transcription, and with the combination. Treatments had variable, often different effects on the expression of Hspa1a and Hspa8, depending on the ALS variant expressed, mRNA distribution (somata and dendrites), and biomarker of toxicity measured (histone acetylation, maintaining nuclear TDP-43 and the neuronal Brm/Brg-associated factor chromatin remodeling complex component Brg1, mitochondrial transport, FUS aggregation). Overall, histone deacetylase inhibition alone was effective on more measures than arimoclomol. As in the FUS model, arimoclomol failed to induce HSPA1A or preserve Hspa8 mRNA in the TDP-43 model, despite preserving nuclear TDP-43 and Brg1, indicating neuroprotective properties other than HSP induction. The data speak to the complexity of drug mechanisms against multiple biomarkers of ALS pathogenesis, as well as to the importance of HSPA8 for neuronal proteostasis in both somata and dendrites.


Subject(s)
Amyotrophic Lateral Sclerosis , Biomarkers , DNA-Binding Proteins , Histone Deacetylase Inhibitors , Motor Neurons , Amyotrophic Lateral Sclerosis/metabolism , Amyotrophic Lateral Sclerosis/genetics , Amyotrophic Lateral Sclerosis/drug therapy , Histone Deacetylase Inhibitors/pharmacology , Biomarkers/metabolism , DNA-Binding Proteins/metabolism , DNA-Binding Proteins/genetics , Humans , Motor Neurons/metabolism , Motor Neurons/drug effects , Motor Neurons/pathology , Animals , HSP70 Heat-Shock Proteins/metabolism , HSP70 Heat-Shock Proteins/genetics , HSC70 Heat-Shock Proteins/metabolism , HSC70 Heat-Shock Proteins/genetics , Hydroxylamines/pharmacology , Cells, Cultured , RNA-Binding Protein FUS/metabolism , RNA-Binding Protein FUS/genetics , Superoxide Dismutase-1/metabolism , Superoxide Dismutase-1/genetics
3.
bioRxiv ; 2023 Oct 03.
Article in English | MEDLINE | ID: mdl-37873158

ABSTRACT

Neurons are challenged to maintain proteostasis in neuronal projections, particularly with the physiological stress at synapses to support intercellular communication underlying important functions such as memory and movement control. Proteostasis is maintained through regulated protein synthesis and degradation and chaperone-assisted protein folding. Using high-resolution fluorescent microscopy, we discovered that neurons localize a subset of chaperone mRNAs to their dendrites, particularly more proximal regions, and increase this asymmetric localization following proteotoxic stress through microtubule-based transport from the soma. The most abundant chaperone mRNA in dendrites encodes the constitutive heat shock protein 70, HSPA8. Proteotoxic stress in cultured neurons, induced by inhibiting proteasome activity or inducing oxidative stress, enhanced transport of Hspa8 mRNAs to dendrites and the percentage of mRNAs engaged in translation on mono and polyribosomes. Knocking down the ALS-related protein Fused in Sarcoma (FUS) and a dominant mutation in the heterogenous nuclear ribonucleoprotein A2/B1 (HNRNPA2B1) impaired stress-mediated localization of Hspa8 mRNA to dendrites in cultured murine motor neurons and human iPSC-derived neurons, respectively, revealing the importance of these RNA-binding proteins in maintaining proteostasis. These results reveal the increased dendritic localization and translation of the constitutive HSP70 Hspa8 mRNA as a crucial neuronal stress response to uphold proteostasis and prevent neurodegeneration.

4.
Res Sq ; 2023 Dec 11.
Article in English | MEDLINE | ID: mdl-38168440

ABSTRACT

Proteostasis is maintained through regulated protein synthesis and degradation and chaperone-assisted protein folding. However, this is challenging in neuronal projections because of their polarized morphology and constant synaptic proteome remodeling. Using high-resolution fluorescence microscopy, we discovered that neurons localize a subset of chaperone mRNAs to their dendrites and use microtubule-based transport to increase this asymmetric localization following proteotoxic stress. The most abundant dendritic chaperone mRNA encodes a constitutive heat shock protein 70 family member (HSPA8). Proteotoxic stress also enhanced HSPA8 mRNA translation efficiency in dendrites. Stress-mediated HSPA8 mRNA localization to the dendrites was impaired by depleting fused in sarcoma-an amyotrophic lateral sclerosis-related protein-in cultured mouse motor neurons and expressing a pathogenic variant of heterogenous nuclear ribonucleoprotein A2/B1 in neurons derived from human induced pluripotent stem cells. These results reveal a crucial and unexpected neuronal stress response in which RNA-binding proteins increase the dendritic localization of HSPA8 mRNA to maintain proteostasis and prevent neurodegeneration.

5.
Int J Mol Sci ; 23(24)2022 Dec 12.
Article in English | MEDLINE | ID: mdl-36555380

ABSTRACT

Autosomal Recessive Spastic Ataxia of the Charlevoix Saguenay (ARSACS) is caused by mutation in the SACS gene resulting in loss of function of the protein sacsin. A key feature is the formation of abnormal bundles of neurofilaments (NF) in neurons and vimentin intermediate filaments (IF) in cultured fibroblasts, suggesting a role of sacsin in IF homeostasis. Sacsin contains a J domain (SacsJ) homologous to Hsp40, that can interact with Hsp70 chaperones. The SacsJ domain resolved NF bundles in cultured Sacs-/- neurons. Having studied the mechanism using NF assembled in vitro from purified NF proteins, we report that the SacsJ domain interacts with NF proteins to disassemble NFL filaments, and to inhibit their initial assembly. A cell-penetrating peptide derived from this domain, SacsJ-myc-TAT was efficient in disassembling NF bundles in cultured Sacs-/- motor neurons, restoring the NF network; however, there was some loss of vimentin IF and NF in cultured Sacs+/+ fibroblasts and motor neurons, respectively. These results suggest that sacsin through its SacsJ domain is a key regulator of NF and vimentin IF networks in cells.


Subject(s)
Heat-Shock Proteins , Intermediate Filaments , Humans , Heat-Shock Proteins/metabolism , Intermediate Filaments/metabolism , Motor Neurons/metabolism , Muscle Spasticity/genetics , Muscle Spasticity/metabolism , Mutation , Vimentin/genetics , Vimentin/metabolism
7.
Cells ; 9(5)2020 05 16.
Article in English | MEDLINE | ID: mdl-32429483

ABSTRACT

Neurofilaments (NFs), a major cytoskeletal component of motor neurons, play a key role in the differentiation, establishment and maintenance of their morphology and mechanical strength. The de novo assembly of these neuronal intermediate filaments requires the presence of the neurofilament light subunit (NEFL), whose expression is reduced in motor neurons in amyotrophic lateral sclerosis (ALS). This study used zebrafish as a model to characterize the NEFL homologue neflb, which encodes two different isoforms via a splicing of the primary transcript (neflbE4 and neflbE3). In vivo imaging showed that neflb is crucial for proper neuronal development, and that disrupting the balance between its two isoforms specifically affects the NF assembly and motor axon growth, with resultant motor deficits. This equilibrium is also disrupted upon the partial depletion of TDP-43 (TAR DNA-binding protein 43), an RNA-binding protein encoded by the gene TARDBP that is mislocalized into cytoplasmic inclusions in ALS. The study supports the interaction of the NEFL expression and splicing with TDP-43 in a common pathway, both biologically and pathogenetically.


Subject(s)
Neurofilament Proteins/genetics , Postural Balance/genetics , RNA Splicing/genetics , Zebrafish Proteins/genetics , Zebrafish/genetics , Animals , Atrophy , Axons/metabolism , Axons/pathology , Cell Line , DNA-Binding Proteins/metabolism , Embryo, Nonmammalian/metabolism , Gene Expression Regulation, Developmental , Humans , Motor Activity , Motor Neurons/metabolism , Motor Neurons/pathology , Neurofilament Proteins/metabolism , Phenotype , Polymerization , Sequence Homology, Amino Acid , Zebrafish/embryology , Zebrafish Proteins/metabolism
8.
Brain ; 143(7): 1975-1998, 2020 07 01.
Article in English | MEDLINE | ID: mdl-32408345

ABSTRACT

Interest in neurofilaments has risen sharply in recent years with recognition of their potential as biomarkers of brain injury or neurodegeneration in CSF and blood. This is in the context of a growing appreciation for the complexity of the neurobiology of neurofilaments, new recognition of specialized roles for neurofilaments in synapses and a developing understanding of mechanisms responsible for their turnover. Here we will review the neurobiology of neurofilament proteins, describing current understanding of their structure and function, including recently discovered evidence for their roles in synapses. We will explore emerging understanding of the mechanisms of neurofilament degradation and clearance and review new methods for future elucidation of the kinetics of their turnover in humans. Primary roles of neurofilaments in the pathogenesis of human diseases will be described. With this background, we then will review critically evidence supporting use of neurofilament concentration measures as biomarkers of neuronal injury or degeneration. Finally, we will reflect on major challenges for studies of the neurobiology of intermediate filaments with specific attention to identifying what needs to be learned for more precise use and confident interpretation of neurofilament measures as biomarkers of neurodegeneration.


Subject(s)
Biomarkers , Intermediate Filaments , Nerve Degeneration , Synapses , Animals , Humans
9.
Cell Stress Chaperones ; 25(1): 173-191, 2020 01.
Article in English | MEDLINE | ID: mdl-31900865

ABSTRACT

Upregulation of heat shock proteins (HSPs) is an approach to treatment of neurodegenerative disorders with impaired proteostasis. Many neurons, including motor neurons affected in amyotrophic lateral sclerosis (ALS), are relatively resistant to stress-induced upregulation of HSPs. This study demonstrated that histone deacetylase (HDAC) inhibitors enable the heat shock response in cultured spinal motor neurons, in a stress-dependent manner, and can improve the efficacy of HSP-inducing drugs in murine spinal cord cultures subjected to thermal or proteotoxic stress. The effect of particular HDAC inhibitors differed with the stress paradigm. The HDAC6 (class IIb) inhibitor, tubastatin A, acted as a co-inducer of Hsp70 (HSPA1A) expression with heat shock, but not with proteotoxic stress induced by expression of mutant SOD1 linked to familial ALS. Certain HDAC class I inhibitors (the pan inhibitor, SAHA, or the HDAC1/3 inhibitor, RGFP109) were HSP co-inducers comparable to the hydroxyamine arimoclomol in response to proteotoxic stress, but not thermal stress. Regardless, stress-induced Hsp70 expression could be enhanced by combining an HDAC inhibitor with either arimoclomol or with an HSP90 inhibitor that constitutively induced HSPs. HDAC inhibition failed to induce Hsp70 in motor neurons expressing ALS-linked mutant FUS, in which the heat shock response was suppressed; yet SAHA, RGFP109, and arimoclomol did reduce loss of nuclear FUS, a disease hallmark, and HDAC inhibition rescued the DNA repair response in iPSC-derived motor neurons carrying the FUSP525Lmutation, pointing to multiple mechanisms of neuroprotection by both HDAC inhibiting drugs and arimoclomol.


Subject(s)
Amyotrophic Lateral Sclerosis/drug therapy , Heat-Shock Proteins/drug effects , Hydroxylamines/pharmacology , Motor Neurons/drug effects , Spinal Cord/drug effects , Amyotrophic Lateral Sclerosis/genetics , Animals , Cells, Cultured , HSP70 Heat-Shock Proteins/metabolism , Heat-Shock Proteins/metabolism , Heat-Shock Response/drug effects , Histone Deacetylase Inhibitors/pharmacology , Mice , Motor Neurons/metabolism , Spinal Cord/metabolism , Transcriptional Activation/drug effects , Up-Regulation/drug effects
10.
FASEB J ; 33(2): 2982-2994, 2019 02.
Article in English | MEDLINE | ID: mdl-30332300

ABSTRACT

Loss of sacsin, a large 520 kDa multidomain protein, causes autosomal recessive spastic ataxia of the Charlevoix-Saguenay, one of the most common childhood-onset recessive ataxias. A prominent feature is abnormal bundling of neurofilaments in many neuronal populations. This study shows the direct involvement of sacsin domains in regulating intermediate filament assembly and dynamics and identifies important domains for alleviating neurofilament bundles in neurons lacking sacsin. Peptides encoding sacsin internal repeat (SIRPT) 1, J-domains, and ubiquitin-like domain modified neurofilament assembly in vivo. The domains with chaperone homology, the SIRPT and the J-domain, had opposite effects, promoting and preventing filament assembly, respectively. In cultured Sacs-/- motor neurons, both the SIRPT1 and J-domain resolved preexisting neurofilament bundles. Increasing expression of heat shock proteins also resolved neurofilament bundles, indicating that this endogenous chaperone system can compensate to some extent for sacsin deficiency.-Gentil, B. J., Lai, G.-T., Menade, M., Larivière, R., Minotti, S., Gehring, K., Chapple, J.-P., Brais, B., Durham, H. D. Sacsin, mutated in the ataxia ARSACS, regulates intermediate filament assembly and dynamics.


Subject(s)
Fibroblasts/pathology , Heat-Shock Proteins/metabolism , Heat-Shock Proteins/physiology , Intermediate Filaments/pathology , Motor Neurons/pathology , Muscle Spasticity/pathology , Mutation , Spinocerebellar Ataxias/congenital , Animals , Cells, Cultured , Fibroblasts/metabolism , Heat-Shock Proteins/genetics , Humans , Intermediate Filaments/metabolism , Mice , Mice, Inbred C57BL , Mice, Knockout , Motor Neurons/metabolism , Muscle Spasticity/metabolism , Spinocerebellar Ataxias/metabolism , Spinocerebellar Ataxias/pathology
11.
Sci Rep ; 8(1): 7551, 2018 05 15.
Article in English | MEDLINE | ID: mdl-29765078

ABSTRACT

Stress granules (SGs) are cytoplasmic foci that form in response to various external stimuli and are essential to cell survival following stress. SGs are studied in several diseases, including ALS and FTD, which involve the degeneration of motor and cortical neurons, respectively, and are now realized to be linked pathogenically by TDP-43, originally discovered as a component of ubiquitin-positive aggregates within patients' neurons and some glial cells. So far, studies to undercover the role of TDP-43 in SGs have used primarily transformed cell lines, and thus rely on the extrapolation of the mechanisms to cell types affected in ALS/FTD, potentially masking cell specific effects. Here, we investigate SG dynamics in primary motor and cortical neurons as well as astrocytes. Our data suggest a cell and stress specificity and demonstrate a requirement for TDP-43 for efficient SG dynamics. In addition, based on our in vitro approach, our data suggest that aging may be an important modifier of SG dynamics which could have relevance to the initiation and/or progression of age-related neurodegenerative diseases.


Subject(s)
Astrocytes/cytology , Cerebral Cortex/cytology , Cytoplasmic Granules/metabolism , DNA-Binding Proteins/metabolism , Motor Neurons/cytology , Aging/genetics , Aging/metabolism , Amyotrophic Lateral Sclerosis/genetics , Amyotrophic Lateral Sclerosis/metabolism , Animals , Astrocytes/metabolism , Cells, Cultured , Cerebral Cortex/metabolism , DNA-Binding Proteins/genetics , Down-Regulation , Fibroblasts/cytology , Fibroblasts/metabolism , Frontotemporal Dementia/genetics , Frontotemporal Dementia/metabolism , Humans , Mice , Motor Neurons/metabolism , Oxidative Stress , Stress, Physiological
12.
Hum Mol Genet ; 26(21): 4142-4152, 2017 11 01.
Article in English | MEDLINE | ID: mdl-28973294

ABSTRACT

Amyotrophic lateral sclerosis is a fatal neurodegenerative disease with paralysis resulting from dysfunction and loss of motor neurons. A common neuropathological finding is attrition of motor neuron dendrites, which make central connections vital to motor control. The chromatin remodelling complex, neuronal Brahma-related gene 1 (Brg1)-associated factor complex (nBAF), is critical for neuronal differentiation, dendritic extension and synaptic function. We have identified loss of the crucial nBAF subunits Brg1, Brg1-associated factor 53b and calcium responsive transactivator in cultured motor neurons expressing FUS or TAR-DNA Binding Protein 43 (TDP-43) mutants linked to familial ALS. When plasmids encoding wild-type or mutant human FUS or TDP-43 were expressed in motor neurons of dissociated spinal cord cultures prepared from E13 mice, mutant proteins in particular accumulated in the cytoplasm. Immunolabelling of nBAF subunits was reduced in proportion to loss of nuclear FUS or TDP-43 and depletion of Brg1 was associated with nuclear retention of Brg1 mRNA. Dendritic attrition (loss of intermediate and terminal dendritic branches) occurred in motor neurons expressing mutant, but not wild-type, FUS or TDP-43. This attrition was delayed by ectopic over-expression of Brg1 and was reproduced by inhibiting Brg1 activity either through genetic manipulation or treatment with the chemical inhibitor, (E)-1-(2-Hydroxyphenyl)-3-((1R, 4R)-5-(pyridin-2-yl)-2, 5-diazabicyclo[2.2.1]heptan-2-yl)prop-2-en-1-one, demonstrating the importance of Brg1 to maintenance of dendritic architecture. Loss of nBAF subunits was also documented in spinal motor neurons in autopsy tissue from familial amyotrophic sclerosis (chromosome 9 open reading frame 72 with G4C2 nucleotide expansion) and from sporadic cases with no identified mutation, pointing to dysfunction of nBAF chromatin remodelling in multiple forms of ALS.


Subject(s)
Amyotrophic Lateral Sclerosis/physiopathology , Chromatin Assembly and Disassembly/physiology , Amyotrophic Lateral Sclerosis/genetics , Amyotrophic Lateral Sclerosis/metabolism , Amyotrophic Lateral Sclerosis/pathology , Animals , Cell Differentiation/genetics , Cell Differentiation/physiology , Chromatin Assembly and Disassembly/genetics , Cytoplasm/metabolism , DNA Helicases/genetics , DNA Helicases/metabolism , DNA-Binding Proteins/genetics , DNA-Binding Proteins/metabolism , Humans , Mice , Motor Neurons/metabolism , Mutation , Neurons/pathology , Nuclear Proteins/genetics , Nuclear Proteins/metabolism , Protein Subunits , RNA-Binding Protein FUS/genetics , RNA-Binding Protein FUS/metabolism , Spinal Cord/metabolism , Transcription Factors/genetics , Transcription Factors/metabolism
13.
J Neuropathol Exp Neurol ; 76(9): 789-799, 2017 Sep 01.
Article in English | MEDLINE | ID: mdl-28859335

ABSTRACT

Mutations in FIG4, coding for a phosphoinositol(3,5) bisphosphate 5' phosphatase and involved in vesicular trafficking and fusion, have been shown causing a recessive form of Charcot-Marie-Tooth (CMT). We have identified a novel intronic mutation in the FIG4 in a wheel-chair bound patient presenting with a severe form of CMT4J and provide a longitudinal study. Investigations indicated a demyelinating sensorimotor polyneuropathy with diffuse active denervation and severe axonal loss. Genetic testing revealed that the patient is heterozygous for 2 FIG4 mutations, p.I41T and a T > G transversion at IVS17-10, the latter predicted to cause a splicing defect. FIG4 was severely diminished in patient's fibroblasts indicating loss-of-function. Consistent with FIG4's function in phosphoinositol homeostasis and vesicular trafficking, fibroblasts contained multiple large vacuoles and vesicular organelles were abnormally dispersed. FIG4 deficiency has implications for turnover of membrane proteins. The transient receptor cation channel, TRPV4, accumulated at the plasma membrane of patient's fibroblasts due to slow turnover. Knocking down Fig4 in murine cultured motor neurons resulted in vacuolation and cell death. Inhibiting TRPV4 activity significantly preserved viability, although not correcting vesicular trafficking. In conclusion, we demonstrate a new FIG4 intronic mutation and, importantly, a functional interaction between FIG4 and TRPV4.


Subject(s)
Charcot-Marie-Tooth Disease/genetics , Flavoproteins/genetics , Mutation/genetics , Phosphoric Monoester Hydrolases/genetics , TRPV Cation Channels/metabolism , Animals , Cells, Cultured , Charcot-Marie-Tooth Disease/pathology , Charcot-Marie-Tooth Disease/physiopathology , Clustered Regularly Interspaced Short Palindromic Repeats/genetics , Fibroblasts/metabolism , Fibroblasts/pathology , Gene Expression Regulation/genetics , Green Fluorescent Proteins/pharmacology , Humans , Male , Mice , Microscopy, Confocal , Middle Aged , Neurons/metabolism , Phosphatidylinositol Phosphates/metabolism , Skin/pathology , Spinal Cord/cytology , Transfection
14.
Int J Pediatr Otorhinolaryngol ; 97: 42-50, 2017 Jun.
Article in English | MEDLINE | ID: mdl-28483249

ABSTRACT

OBJECTIVE: Hearing loss rates in infants admitted to neonatal intensive care units (NICU) run at 2-15%, compared to 0.3% in full-term births. The etiology of this difference remains poorly understood. We examined whether the level of ambient sound and/or cumulative gentamicin (an aminoglycoside) exposure affect NICU hearing screening results, as either exposure can cause acquired, permanent hearing loss. We hypothesized that higher levels of ambient sound in the NICU, and/or gentamicin dosing, increase the risk of referral on the distortion product otoacoustic emission (DPOAE) assessments and/or automated auditory brainstem response (AABR) screens. METHODS: This was a prospective pilot outcomes study of 82 infants (<37 weeks gestational age) admitted to the NICU at Oregon Health & Science University. An ER-200D sound pressure level dosimeter was used to collect daily sound exposure in the NICU for each neonate. Gentamicin dosing was also calculated for each infant, including the total daily dose based on body mass (mg/kg/day), as well as the total number of treatment days. DPOAE and AABR assessments were conducted prior to discharge to evaluate hearing status. Exclusion criteria included congenital infections associated with hearing loss, and congenital craniofacial or otologic abnormalities. RESULTS: The mean level of ambient sound was 62.9 dBA (range 51.8-70.6 dBA), greatly exceeding American Academy of Pediatrics (AAP) recommendation of <45.0 dBA. More than 80% of subjects received gentamicin treatment. The referral rate for (i) AABRs, (frequency range: ∼1000-4000 Hz), was 5%; (ii) DPOAEs with a broad F2 frequency range (2063-10031 Hz) was 39%; (iii) DPOAEs with a low-frequency F2 range (<4172 Hz) was 29%, and (iv) DPOAEs with a high-frequency F2 range (>4172 Hz) was 44%. DPOAE referrals were significantly greater for infants receiving >2 days of gentamicin dosing compared to fewer doses (p = 0.004). The effect of sound exposure and gentamicin treatment on hearing could not be determined due to the low number of NICU infants without gentamicin exposure (for control comparisons). CONCLUSION: All infants were exposed to higher levels of ambient sound that substantially exceed AAP guidelines. More referrals were generated by DPOAE assessments than with AABR screens, with significantly more DPOAE referrals with a high-frequency F2 range, consistent with sound- and/or gentamicin-induced cochlear dysfunction. Adding higher frequency DPOAE assessments to existing NICU hearing screening protocols could better identify infants at-risk for ototoxicity.


Subject(s)
Aminoglycosides/adverse effects , Gentamicins/adverse effects , Hearing Loss/diagnosis , Hearing Tests/methods , Neonatal Screening/methods , Sound/adverse effects , Female , Humans , Infant , Infant, Newborn , Intensive Care Units, Neonatal , Male , Oregon , Otoacoustic Emissions, Spontaneous/physiology , Pilot Projects , Prospective Studies
15.
Hum Mol Genet ; 26(16): 3130-3143, 2017 08 15.
Article in English | MEDLINE | ID: mdl-28535259

ABSTRACT

Autosomal Recessive Spastic Ataxia of Charlevoix-Saguenay (ARSACS) is caused by mutations in the gene SACS, encoding the 520 kDa protein sacsin. Although sacsin's physiological role is largely unknown, its sequence domains suggest a molecular chaperone or protein quality control function. Consequences of its loss include neurofilament network abnormalities, specifically accumulation and bundling of perikaryal and dendritic neurofilaments. To investigate if loss of sacsin affects intermediate filaments more generally, the distribution of vimentin was analysed in ARSACS patient fibroblasts and in cells where sacsin expression was reduced. Abnormal perinuclear accumulation of vimentin filaments, which sometimes had a cage-like appearance, occurred in sacsin-deficient cells. Mitochondria and other organelles were displaced to the periphery of vimentin accumulations. Reorganization of the vimentin network occurs in vitro under stress conditions, including when misfolded proteins accumulate. In ARSACS patient fibroblasts HSP70, ubiquitin and the autophagy-lysosome pathway proteins Lamp2 and p62 relocalized to the area of the vimentin accumulation. There was no overall increase in ubiquitinated proteins, suggesting the ubiquitin-proteasome system was not impaired. There was evidence for alterations in the autophagy-lysosome pathway. Specifically, in ARSACS HDFs cellular levels of Lamp2 were elevated while levels of p62, which is degraded in autophagy, were decreased. Moreover, autophagic flux was increased in ARSACS HDFs under starvation conditions. These data show that loss of sacsin effects the organization of intermediate filaments in multiple cell types, which impacts the cellular distribution of other organelles and influences autophagic activity.


Subject(s)
Heat-Shock Proteins/metabolism , Intermediate Filaments/metabolism , Animals , Ataxia/genetics , Cell Culture Techniques , Cytoskeleton/metabolism , Fibroblasts/metabolism , HSP70 Heat-Shock Proteins/metabolism , Heat-Shock Proteins/genetics , Humans , Lysosomal-Associated Membrane Protein 2/metabolism , Mice , Mitochondria/metabolism , Molecular Chaperones/metabolism , Muscle Spasticity/genetics , Muscle Spasticity/metabolism , Proteostasis/genetics , Proteostasis/physiology , RNA-Binding Proteins/metabolism , Spinocerebellar Ataxias/congenital , Spinocerebellar Ataxias/genetics , Spinocerebellar Ataxias/metabolism , Vimentin/metabolism
16.
Cell Stress Chaperones ; 21(5): 745-53, 2016 09.
Article in English | MEDLINE | ID: mdl-27283588

ABSTRACT

Networks of neuronal synapses are the fundamental basis for making and retaining memory. Reduced synapse number and quality correlates with loss of memory in dementia. Heat shock factor 1 (HSF1), the major transcription factor regulating expression of heat shock genes, plays a central role in proteostasis, in establishing and sustaining synaptic fidelity and function, and in memory consolidation. Support for this thesis is based on these observations: (1) heat shock induces improvements in synapse integrity and memory consolidation; (2) synaptic depolarization activates HSF1; (3) activation of HSF1 alone (independent of the canonical heat shock response) augments formation of essential synaptic elements-neuroligands, vesicle transport, synaptic scaffolding proteins, lipid rafts, synaptic spines, and axodendritic synapses; (4) HSF1 coalesces and activates memory receptors in the post-synaptic dendritic spine; (5) huntingtin or α-synuclein accumulation lowers HSF1 while HSF1 lowers huntingtin and α-synuclein aggregation-a potential vicious cycle; and (6) HSF1 agonists (including physical activity) can improve cognitive function in dementia models. Thus, via direct gene expression of synaptic elements, production of HSPs that assure high protein fidelity, and activation of other neuroprotective signaling pathways, HSF1 agonists could provide breakthrough therapy for dementia-associated disease.


Subject(s)
DNA-Binding Proteins/physiology , Nerve Tissue Proteins/genetics , Synapses/physiology , Transcription Factors/physiology , Animals , Cognition , Gene Expression , Heat Shock Transcription Factors , Humans , Memory Consolidation , Nerve Tissue Proteins/metabolism , Transcriptional Activation
17.
Cell Tissue Res ; 360(3): 609-20, 2015 Jun.
Article in English | MEDLINE | ID: mdl-25567110

ABSTRACT

Neurons are extremely polarised cells in which the cytoskeleton, composed of microtubules, microfilaments and neurofilaments, plays a crucial role in maintaining structure and function. Neurofilaments, the 10-nm intermediate filaments of neurons, provide structure and mechanoresistance but also provide a scaffolding for the organization of the nucleus and organelles such as mitochondria and ER. Disruption of neurofilament organization and expression or metabolism of neurofilament proteins is characteristic of certain neurological syndromes including Amyotrophic Lateral Sclerosis, Charcot-Marie-Tooth sensorimotor neuropathies and Giant Axonal Neuropathy. Microfluorometric live imaging techniques have been instrumental in revealing the dynamics of neurofilament assembly and transport and their functions in organizing intracellular organelle networks. The insolubility of neurofilament proteins has limited identifying interactors by conventional biochemical techniques but yeast two-hybrid experiments have revealed new roles for oligomeric, nonfilamentous structures including vesicular trafficking. Although having long half-lives, new evidence points to degradation of subunits by the ubiquitin-proteasome system as a mechanism of normal turnover. Although certain E3-ligases ubiquitinating neurofilament proteins have been identified, the overall process of neurofilament degradation is not well understood. We review these mechanisms of neurofilament homeostasis and abnormalities in motor neuron and peripheral nerve disorders. Much remains to discover about the disruption of processes that leads to their pathological aggregation and accumulation and the relevance to pathogenesis. Understanding these mechanisms is crucial for identifying novel therapeutic strategies.


Subject(s)
Intermediate Filaments/metabolism , Nervous System Diseases/pathology , Animals , Humans , Neurons/pathology , Organ Specificity
18.
Hum Mol Genet ; 24(3): 773-86, 2015 Feb 01.
Article in English | MEDLINE | ID: mdl-25274782

ABSTRACT

Mutations in the RNA-binding protein FUS/TLS (FUS) have been linked to the neurodegenerative disease amyotrophic lateral sclerosis (ALS). Although predominantly nuclear, this heterogenous nuclear ribonuclear protein (hnRNP) has multiple functions in RNA processing including intracellular trafficking. In ALS, mutant or wild-type (WT) FUS can form neuronal cytoplasmic inclusions. Asymmetric arginine methylation of FUS by the class 1 arginine methyltransferase, protein arginine methyltransferase 1 (PRMT1), regulates nucleocytoplasmic shuttling of FUS. In motor neurons of primary spinal cord cultures, redistribution of endogenous mouse and that of ectopically expressed WT or mutant human FUS to the cytoplasm led to nuclear depletion of PRMT1, abrogating methylation of its nuclear substrates. Specifically, hypomethylation of arginine 3 of histone 4 resulted in decreased acetylation of lysine 9/14 of histone 3 and transcriptional repression. Distribution of neuronal PRMT1 coincident with FUS also was detected in vivo in the spinal cord of FUS(R495X) transgenic mice. However, nuclear PRMT1 was not stable postmortem obviating meaningful evaluation of ALS autopsy cases. This study provides evidence for loss of PRMT1 function as a consequence of cytoplasmic accumulation of FUS in the pathogenesis of ALS, including changes in the histone code regulating gene transcription.


Subject(s)
Amyotrophic Lateral Sclerosis/metabolism , Cytoplasm/metabolism , Protein-Arginine N-Methyltransferases/metabolism , RNA-Binding Protein FUS/metabolism , Repressor Proteins/metabolism , Amyotrophic Lateral Sclerosis/pathology , Animals , Cell Nucleus/metabolism , Cells, Cultured , DNA Methylation , Disease Models, Animal , Histones/metabolism , Humans , Mice , Mice, Transgenic , Motor Neurons/metabolism , Spinal Cord/metabolism
19.
Hum Mol Genet ; 24(3): 727-39, 2015 Feb 01.
Article in English | MEDLINE | ID: mdl-25260547

ABSTRACT

Autosomal recessive spastic ataxia of Charlevoix-Saguenay (ARSACS [MIM 270550]) is an early-onset neurodegenerative disorder caused by mutations in the SACS gene. Over 170 SACS mutations have been reported worldwide and are thought to cause loss of function of sacsin, a poorly characterized and massive 520 kDa protein. To establish an animal model and to examine the pathophysiological basis of ARSACS, we generated Sacs knockout (Sacs(-/-)) mice. Null animals displayed an abnormal gait with progressive motor, cerebellar and peripheral nerve dysfunctions highly reminiscent of ARSACS. These clinical features were accompanied by an early onset, progressive loss of cerebellar Purkinje cells followed by spinal motor neuron loss and peripheral neuropathy. Importantly, loss of sacsin function resulted in abnormal accumulation of non-phosphorylated neurofilament (NF) bundles in the somatodendritic regions of vulnerable neuronal populations, a phenotype also observed in an ARSACS brain. Moreover, motor neurons cultured from Sacs(-/-) embryos exhibited a similar NF rearrangement with significant reduction in mitochondrial motility and elongated mitochondria. The data points to alterations in the NF cytoskeleton and defects in mitochondrial dynamics as the underlying pathophysiological basis of ARSACS.


Subject(s)
Heat-Shock Proteins/genetics , Mitochondria/pathology , Motor Neurons/pathology , Muscle Spasticity/physiopathology , Purkinje Cells/pathology , Spinocerebellar Ataxias/congenital , Animals , Disease Models, Animal , Heat-Shock Proteins/metabolism , Humans , Intermediate Filaments/pathology , Mice , Mice, Knockout , Motor Neurons/cytology , Muscle Spasticity/genetics , Purkinje Cells/metabolism , Pyramidal Tracts/pathology , Spine/pathology , Spinocerebellar Ataxias/genetics , Spinocerebellar Ataxias/physiopathology , Tissue Culture Techniques
20.
J Neurochem ; 131(5): 588-601, 2014 Dec.
Article in English | MEDLINE | ID: mdl-25113441

ABSTRACT

Peripherin is a type III intermediate filament protein, the expression of which is associated with the acquisition and maintenance of a terminally differentiated neuronal phenotype. Peripherin up-regulation occurs during acute neuronal injury and in degenerating motor neurons of amyotrophic lateral sclerosis. The functional role(s) of peripherin during normal, injurious, and disease conditions remains unknown, but may be related to differential expression of spliced isoforms. To better understand peripherin function, we performed a yeast two-hybrid screen on a mouse brain cDNA library using an assembly incompetent peripherin isoform, Per-61, as bait. We identified new peripherin interactors with roles in vesicular trafficking, signal transduction, DNA/RNA processing, protein folding, and mitochondrial metabolism. We focused on the interaction of Per-61 and the constitutive isoform, Per-58, with SNAP25 interacting protein 30 (SIP30), a neuronal protein involved in SNAP receptor-dependent exocytosis. We found that peripherin and SIP30 interacted through coiled-coil domains and colocalized in cytoplasmic aggregates in SW13vim(-) cells. Interestingly, Per-61 and Per-58 differentially altered the subcellular distribution of SIP30 and SNAP25 in primary motor neurons. Our findings suggest a novel role of peripherin in vesicle trafficking.


Subject(s)
Peripherins/metabolism , Receptors, Lysosphingolipid/metabolism , Subcellular Fractions/metabolism , Two-Hybrid System Techniques , Animals , Cell Line, Transformed , Humans , Immunoprecipitation , Mice , Mutation/genetics , Peripherins/genetics , Protein Isoforms/physiology , Protein Structure, Tertiary , Receptors, Lysosphingolipid/genetics , Transfection
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