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result(s) for
"tau Proteins - toxicity"
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Structure and pro-toxic mechanism of the human Hsp90/PPIase/Tau complex
2018
The molecular chaperone Hsp90 is critical for the maintenance of cellular homeostasis and represents a promising drug target. Despite increasing knowledge on the structure of Hsp90, the molecular basis of substrate recognition and pro-folding by Hsp90/co-chaperone complexes remains unknown. Here, we report the solution structures of human full-length Hsp90 in complex with the PPIase FKBP51, as well as the 280 kDa Hsp90/FKBP51 complex bound to the Alzheimer’s disease-related protein Tau. We reveal that the FKBP51/Hsp90 complex, which synergizes to promote toxic Tau oligomers in vivo, is highly dynamic and stabilizes the extended conformation of the Hsp90 dimer resulting in decreased Hsp90 ATPase activity. Within the ternary Hsp90/FKBP51/Tau complex, Hsp90 serves as a scaffold that traps the PPIase and nucleates multiple conformations of Tau’s proline-rich region next to the PPIase catalytic pocket in a phosphorylation-dependent manner. Our study defines a conceptual model for dynamic Hsp90/co-chaperone/client recognition.
The chaperone Hsp90 plays a key role in maintaining cellular homeostasis. Here the authors provide structural insights into substrate recognition and the pro-folding mechanism of Hsp90/co-chaperone complexes by studying the complex of Hsp90 with its co-chaperone FKBP51 and the substrate Tau bound Hsp90/FKBP51 ternary complex using a NMR based integrative approach.
Journal Article
Discovery and characterization of stable and toxic Tau/phospholipid oligomeric complexes
by
Lv, Guohua
,
Mahul-Mellier, Anne-Laure
,
Eliezer, David
in
631/337/470/2284
,
631/378/1689/1283
,
631/535/878/1264
2017
The microtubule-associated protein Tau plays a central role in the pathogenesis of Alzheimer’s disease. Although Tau interaction with membranes is thought to affect some of its physiological functions and its aggregation properties, the sequence determinants and the structural and functional consequences of such interactions remain poorly understood. Here, we report that the interaction of Tau with vesicles results in the formation of highly stable protein/phospholipid complexes. These complexes are toxic to primary hippocampal cultures and are detected by MC-1, an antibody recognizing pathological Tau conformations. The core of these complexes is comprised of the PHF6* and PHF6 hexapeptide motifs, the latter in a β-strand conformation. Studies using Tau-derived peptides enabled the design of mutants that disrupt Tau interactions with phospholipids without interfering with its ability to form fibrils, thus providing powerful tools for uncoupling these processes and investigating the role of membrane interactions in regulating Tau function, aggregation and toxicity.
The Alzheimer protein Tau interacts with biological membranes, but the role of these interactions in regulating Tau function in health and disease remains unexplored. Here, the authors report on the discovery and characterization of neurotoxic oligomeric protein/phospholipid complexes.
Journal Article
LTP and memory impairment caused by extracellular Aβ and Tau oligomers is APP-dependent
by
Puzzo, Daniela
,
Cocco, Sara
,
Zhang, Hong
in
Alzheimer Disease - physiopathology
,
Alzheimer's disease
,
Amyloid beta-Peptides - metabolism
2017
The concurrent application of subtoxic doses of soluble oligomeric forms of human amyloid-beta (oAβ) and Tau (oTau) proteins impairs memory and its electrophysiological surrogate long-term potentiation (LTP), effects that may be mediated by intra-neuronal oligomers uptake. Intrigued by these findings, we investigated whether oAβ and oTau share a common mechanism when they impair memory and LTP in mice. We found that as already shown for oAβ, also oTau can bind to amyloid precursor protein (APP). Moreover, efficient intra-neuronal uptake of oAβ and oTau requires expression of APP. Finally, the toxic effect of both extracellular oAβ and oTau on memory and LTP is dependent upon APP since APP-KO mice were resistant to oAβ- and oTau-induced defects in spatial/associative memory and LTP. Thus, APP might serve as a common therapeutic target against Alzheimer's Disease (AD) and a host of other neurodegenerative diseases characterized by abnormal levels of Aβ and/or Tau.
Journal Article
Tau Oligomers Derived from Traumatic Brain Injury Cause Cognitive Impairment and Accelerate Onset of Pathology in Htau Mice
by
Gerson, Julia
,
DeWitt, Douglas S.
,
Hawkins, Bridget E.
in
Animals
,
Brain Injuries, Traumatic - metabolism
,
Brain Injuries, Traumatic - pathology
2016
Tau aggregation is a pathological feature of numerous neurodegenerative disorders and has also been shown to occur under certain conditions of traumatic brain injury (TBI). Currently, no effective treatments exist for the long-term effects of TBI. In some cases, TBI not only induces cognitive changes immediately post-injury, but also leads to increased incidence of neurodegeneration later in life. Growing evidence from our lab and others suggests that the oligomeric forms of tau initiate the onset and spread of neurodegenerative tauopathies. Previously, we have shown increased levels of brain-derived tau oligomers in autopsy samples from patients diagnosed with Alzheimer's disease. We have also shown similar increases in tau oligomers in animal models of neurodegenerative diseases and TBI. In the current study, we evaluated the presence of tau oligomers in blast-induced TBI. To test the direct impact of TBI-derived tau oligomer toxicity, we isolated tau oligomers from brains of rats that underwent either a blast- or a fluid percussion injury–induced TBI. Oligomers were characterized biochemically and morphologically and were then injected into hippocampi of mice overexpressing human tau (Htau). Mice were cognitively evaluated and brains were collected for immunological analysis after testing. We found that tau oligomers form as a result of brain injury in two different models of TBI. Additionally, these oligomers accelerated onset of cognitive deficits when injected into brains of Htau mice. Tau oligomer levels increased in the hippocampal injection sites and cerebellum, suggesting that tau oligomers may be responsible for seeding the spread of pathology post-TBI. Our results suggest that tau oligomers play an important role in the toxicity underlying TBI and may be a viable therapeutic target.
Journal Article
Tau pathology reduction with SM07883, a novel, potent, and selective oral DYRK1A inhibitor: A potential therapeutic for Alzheimer's disease
by
Yazici, Yusuf
,
Güner, Bora
,
Melchior, Benoît
in
Administration, Oral
,
Alzheimer Disease - drug therapy
,
Alzheimer Disease - metabolism
2019
Dual‐specificity tyrosine phosphorylation‐regulated kinase‐1A (DYRK1A) is known to phosphorylate the microtubule‐associated tau protein. Overexpression is correlated with tau hyperphosphorylation and neurofibrillary tangle (NFT) formation in Alzheimer's disease (AD). This study assessed the potential of SM07883, an oral DYRK1A inhibitor, to inhibit tau hyperphosphorylation, aggregation, NFT formation, and associated phenotypes in mouse models. Exploratory neuroinflammatory effects were also studied. SM07883 specificity was tested in a kinase panel screen and showed potent inhibition of DYRK1A (IC50 = 1.6 nM) and GSK‐3β (IC50 = 10.8 nM) kinase activity. Tau phosphorylation measured in cell‐based assays showed a reduction in phosphorylation of multiple tau epitopes, especially the threonine 212 site (EC50 = 16 nM). SM07883 showed good oral bioavailability in multiple species and demonstrated a dose‐dependent reduction of transient hypothermia‐induced phosphorylated tau in the brains of wild‐type mice compared to vehicle (47%, p < 0.001). Long‐term efficacy assessed in aged JNPL3 mice overexpressing the P301L human tau mutation (3 mg/kg, QD, for 3 months) exhibited significant reductions in tau hyperphosphorylation, oligomeric and aggregated tau, and tau‐positive inclusions compared to vehicle in brainstem and spinal cord samples. Reduced gliosis compared to vehicle was further confirmed by ELISA. SM07883 was well tolerated with improved general health, weight gain, and functional improvement in a wire‐hang test compared to vehicle‐treated mice (p = 0.048). SM07883, a potent, orally bioavailable, brain‐penetrant DYRK1A inhibitor, significantly reduced effects of pathological tau overexpression and neuroinflammation, while functional endpoints were improved compared to vehicle in animal models. This small molecule has potential as a treatment for AD. SM07883 is a once‐a‐day oral DYRK1A inhibitor, which enters the brain, prevents tau pathology, and improves health and function in tau transgenic mice.
Journal Article
Prefoldin 5 is a microtubule-associated protein that suppresses Tau aggregation and neurotoxicity
by
Gopi, Athulya T
,
Das, Abhijit
,
Majumder, Snehasis
in
Animals
,
chaperones
,
Cognitive impairment
2026
Tauopathies represent a major class of neurodegenerative disorders associated with intracellular aggregates of the microtubule-associated protein Tau. To identify molecular modulators of Tau toxicity, we used a genetic screen to identify protein chaperones whose RNAi-mediated knockdown could modulate hTau V337M -induced eye-ommatidial degeneration in Drosophila . This screen identified the Prefoldins Pfdn5 and Pfdn6 as strong modifiers of hTau V337M cytotoxicity. Consistent with the known function of Pfdn as a cotranslational chaperone for tubulin, Pfdn5 mutants showed substantially reduced levels of tubulin monomer. However, additional microtubule-related functions were indicated by the robust unexpected association of Pfdn5 with axonal microtubules in vivo, as well as binding with stabilized microtubules in biochemical assays. Loss of Pfdn5 resulted in neuromuscular junctions (NMJ) defects similar to those previously described in hTau-expressing flies: namely, increased supernumerary boutons and fewer microtubule loops within mature presynaptic boutons. Significantly, synaptic phenotypes caused by hTau V337M overexpression were also strongly enhanced in a Pfdn5 mutant background. Consistent with a role in modulating Tau toxicity, not only did loss of Pfdn5 result in increased accumulations of Tau aggregates in hTau V337M -expressing neurons, but also neuronal overexpression of Prefoldin strikingly ameliorated age-dependent neurodegeneration and memory deficits induced by pathological hTau. Together, these and other observations described herein: (a) provide new insight into Prefoldin-microtubule interactions; (b) point to essential post-translational roles for Pfdn5 in controlling Tau toxicity in vivo; and (c) demonstrate that Pfdn5 overexpression is sufficient to restrict Tau-induced neurodegeneration.
Journal Article
Acetyl-11-keto-β-boswellic acid attenuates tau oligomer-induced neurotoxicity in neuroblastoma cell model
by
Goudarzi, Marziyeh
,
Ehtiati, Sajad
,
Hamed, Nastaran
in
Acetyl-11-keto-β-boswellic acid (AKBA)
,
Alzheimer's disease
,
Animal Models
2026
Background
Alzheimer’s disease (AD) is a progressive neurodegenerative disorder characterized by microtubule destabilization, neuroinflammation, and tau pathology. Among the proposed therapeutic approaches, acetyl-11-keto-β-boswellic acid (AKBA), a bioactive triterpene from Boswellia serrata, has gained attention due to its multiple neuroprotective mechanisms, including microtubule stabilization, anti-inflammatory activity, antioxidant effects, and promotion of neurogenesis. In this study, we aimed to investigate the neuroprotective effect of AKBA against tau oligomer-induced cytotoxicity in SH-SY5Y neuroblastoma cells.
Results
Recombinant human tau protein was expressed, purified, and oligomerized, and the formation of oligomers was confirmed by thioflavin T fluorescence and dynamic light scattering (DLS). SH-SY5Y cells were then treated with AKBA and exposed to tau oligomers. Cell viability was assessed via MTT assay, and apoptosis was evaluated by flow cytometry. The morphology of tau aggregates was visualized using transmission electron microscopy.
Conclusions
Our findings demonstrated that AKBA significantly reduced tau oligomer-induced cytotoxicity and enhanced cell viability. These results suggest that AKBA, through its multifaceted protective mechanisms, holds promise as a potential therapeutic agent for the treatment of tauopathies such as Alzheimer’s disease.
Clinical trial number
Not applicable.
Journal Article
Acetylation mimic of lysine 280 exacerbates human Tau neurotoxicity in vivo
2016
Dysfunction and accumulation of the microtubule-associated human Tau (hTau) protein into intraneuronal aggregates is observed in many neurodegenerative disorders including Alzheimer’s disease (AD). Reversible lysine acetylation has recently emerged as a post-translational modification that may play an important role in the modulation of hTau pathology. Acetylated hTau species have been observed within hTau aggregates in human AD brains and multi-acetylation of hTau
in vitro
regulates its propensity to aggregate. However, whether lysine acetylation at position 280 (K280) modulates hTau-induced toxicity
in vivo
is unknown. We generated new
Drosophila
transgenic models of hTau pathology to evaluate the contribution of K280 acetylation to hTau toxicity, by analysing the respective toxicity of pseudo-acetylated (K280Q) and pseudo-de-acetylated (K280R) mutant forms of hTau. We observed that mis-expression of pseudo-acetylated K280Q-hTau in the adult fly nervous system potently exacerbated fly locomotion defects and photoreceptor neurodegeneration. In addition, modulation of K280 influenced total hTau levels and phosphorylation without changing hTau solubility. Altogether, our results indicate that pseudo-acetylation of the single K280 residue is sufficient to exacerbate hTau neurotoxicity
in vivo
, suggesting that acetylated K280-hTau species contribute to the pathological events leading to neurodegeneration in AD.
Journal Article
Antibody against early driver of neurodegeneration cis P-tau blocks brain injury and tauopathy
2015
Traumatic brain injury (TBI), characterized by acute neurological dysfunction, is one of the best known environmental risk factors for chronic traumatic encephalopathy and Alzheimer’s disease, the defining pathologic features of which include tauopathy made of phosphorylated tau protein (P-tau). However, tauopathy has not been detected in the early stages after TBI, and how TBI leads to tauopathy is unknown. Here we find robust
cis
P-tau pathology after TBI in humans and mice. After TBI in mice and stress
in vitro
, neurons acutely produce
cis
P-tau, which disrupts axonal microtubule networks and mitochondrial transport, spreads to other neurons, and leads to apoptosis. This process, which we term ‘cistauosis’, appears long before other tauopathy. Treating TBI mice with
cis
antibody blocks cistauosis, prevents tauopathy development and spread, and restores many TBI-related structural and functional sequelae. Thus,
cis
P-tau is a major early driver of disease after TBI and leads to tauopathy in chronic traumatic encephalopathy and Alzheimer’s disease. The
cis
antibody may be further developed to detect and treat TBI, and prevent progressive neurodegeneration after injury.
Here the
cis
form of tau protein, which disrupts axonal microtubules and transport, spreads to other neurons, and leads to apoptosis
in vitro and in vivo
, is found to be produced by neurons immediately after traumatic brain injury (TBI); treating TBI mice with
cis
antibody blocks early production of
cis
tau, prevents tauopathy and spread and restores brain structural and functional outcomes, and may be further developed to treat TBI and to prevent neurodegeneration after injury.
cis
P-tau tauopathy in traumatic brain injury
The symptoms of traumatic brain injury (TBI), a common condition in players of contact sports and in the military, are associated with acute neurological dysfunction and TBI is a major risk factor for Alzheimer's disease. Tauopathy associated with the aggregation of phosphorylated tau protein (P-tau) in the brain is a defining feature of the neurodegeneration associated with chronic traumatic encephalopathy and Alzheimer's but it has not been observed in the early stages of TBI. Here Kun Ping Lu and colleagues show that tauopathy caused by
cis
P-tau, but not
trans
P-tau, is an early driver of brain injury in patients with TBI and in mouse models. Treating TBI mice with
cis
antibody blocks early production of
cis
P-tau and prevents further tauopathy and spread, and may be further developed to treat TBI after injury.
Journal Article
Drosophila wing is a high-throughput and versatile screening tool for Tau-mediated disease mechanisms and drug discovery
by
Liu, Jie
,
Allan, Douglas Watt
,
Ramirez-Moreno, Miguel
in
Alzheimer's disease
,
Animal models
,
Animals
2026
Tau protein contributes to microtubule stability, which is disrupted in Alzheimer's disease and other tauopathies. In these diseases, Tau molecules become hyperphosphorylated, misfolded and aggregated, propagating pathology across the brain. Studies dissecting disease mechanisms or screening disease-modifying therapies rely on animal models that unveil pathogenic events in vivo but also take several weeks or months to complete. Here, we describe a versatile experimental paradigm that yields results in days and yet offers all the advantages of a genetically tractable in vivo system: the Drosophila wing. Mimicking neurotoxicity, human Tau expression caused cell death in Drosophila wing disc, leading to quantifiable phenotypes in the adult wing. The neuroprotective peptide NAPVSIPQ ameliorated Tau toxicity in this system, validating it as a cost-effective drug-screening tool. Phenocopying adult neurons, Tau toxicity in the wing disc was exacerbated by simulating hyperphosphorylation and prevented by suppressing aggregation. Additionally, we showed that the wing disc can dissect disease mechanisms that underpin clinically relevant Tau variants. Thus, the Drosophila wing offers an in vivo experimental paradigm for fast and efficient exploration of disease mechanism and screening.
Journal Article