Hyperphosphorylation of tau leading to aggregated tau and tangle formation is a common pathological feature of tauopathies, including Alzheimer’s disease. Abnormal phosphorylation of tau by kinases, in particular GSK3β, has been proposed as a pathogenic mechanism in these diseases. In this study we demonstrate that the heat shock protein 90 (Hsp90) maintains the stability and function of the GSK3β. By using both rat primary cortical neurons and COS-7 cells, we show that Hsp90 inhibitors lead to a reduction of the protein level of GSK3β, and that this effect is associated with both a decrease in tau phosphorylation at putative GSK3β sites and an induction in heat shock protein 70 (Hsp70) levels. We further show that Hsp90 associates with the GSK3β regulating its stability and function and preventing its degradation by the proteasome.
The heat shock proteins (Hsps) are a family of ubiquitous and abundant proteins found in all eukaryotes and prokaryotes. Their function is to mediate the proper folding of native and denatured proteins to insure that those proteins maintain their native conformation [
During about a century of the research on neurodegenerative diseases, researchers find that a common histological feature shared by those diseases is the existence of intra-cellular and/or extra-cellular aggregations in the brain. The appearance of aggregates in diseased brain implies an underlying incapacity of molecular chaperones [
Geldanamycin (GA), ZVAD-FMK, pepstatin, MG132, leupeptin, E64 and Protein A/G plus agarose beads were purchased from Calbiochem, San Diego, CA; poly-L-lysine, novobicin are ordered from Sigma; BCA protein assay kit is ordered from Pierce; FuGENE 6 reagent is ordered from Roche Molecular Biochemicals; cDNA constructs expressing human wild type Tau (T40) and was a kind gift from Dr. Virginia Lee (University of Pennsylvania, Philadelphia, PA); PU24FCl was a kind gift from Dr. Gabriela Chiosis (Memorial Sloan-Kettering Cancer Center, New York, NY); Dulbecco’s Modified Eagle Medium (DMEM), neurobasal medium, fetal bovine serum (FBS), penicillin/streptomycin and B27 supplement are ordered from Invitrogen; anti-β-actin mouse monoclonal antibody (A1978) is ordered from Sigma, St. Louis, MO; anti-GSK3β (#9332) antibody is ordered from cell signaling; antiphospho-tau (pS199/202) is ordered from Biosource; AT8, AT180, AT100, AT270 are ordered from Innogenetics; anti-tau abtibody is from Santa Cruz; anti-Hsp70 (SPA-810) and anti-Hsp90 (SPA-830) are from Stressgen Bioreagents, Victoria, British Columbia, Canada.
COS-7 cells grown in DMEM with 10% FBS and penicillin/streptomycin (50 U/50μg/ml, respectively) were transiently transfected using FuGENE 6 reagent to over-express wild type hTau. At 12 h after transfection, cells were incubated for 20h with the indicated concentration of GA or a purine-based Hsp90 inhibitor PU24FCl [
Primary neuronal cultures were derived from the cerebral cortices of embryonic day 17 (E17) rat embryos and maintained as previously described [
Primary cortical cultures or COS-7 transfected cells were treated with cycloheximide (at a final concentration of 100 μg/ml) for the indicated times. Cell lysates were run on SDS-PAGE gel and proteins transferred to PVDF membranes to be probed with anti-GSK3β antibody.
For isolation of the GSK3β/Hsp90 complexes from cultured cells, COS-7 cells were lysed in TMNSV buffer (50 mM Tris-HCl, pH7.0, 20 mM Na2MoO4, 0.09% NP-40, 150 mM NaCl, 1 mM sodium othovanadate with added protease inhibitors mixture). Cell nuclei and debris were removed by centrifuging at 13,000 × g for 5 min. Samples were immunoprecipitated with anti-GSK3β antibody for 4h at 4°C. Immunoreactive materials and protein A/G agarose beads complexes were washed three times with lysis buffer and once with PBS. Immunoreactive materials were eluted from the beads by incubating with sample buffer for 5min at 95°C and subjected to SDS/PAGE followed by Western blotting.
COS cells transfected with wild type hTau (the longest isform 1-441aa) were treated with two different Hsp90 inhibitors, GA and PU24FCl. Both inhibitors bind selectively to the regulatory pocket of Hsp90 which inhibits chaperone function and alter the association of client proteins with the chaperone complex. As a consequence, these proteins do not achieve their mature functional conformation and are degraded by the proteasome. In our previous paper, we reported that the inhibition of Hsp90 resulted in a reduction of the protein level of mutant tau. While in the case of WT tau protein, the inhibition of Hsp90 has no effect on total protein level, but to decrease the tau phosphorylation instead (
The effect of Hsp90 inhibitors on kinases was well-defined and selective as the expression of casein kinase 1 (CK-1), casein kinase 2 (CK-2) and cyclic AMP-dependent protein kinase (PKA), kinases shown to prime Tau for GSK3β phosphorylation [
Protein degradation may be achieved in cells by several protease systems. However, proteins regulated by Hsp90 appear to be degraded majorly via the proteasome pathway upon chaperone inhibition [
To examine if Hsp90 plays a direct role in maintaining the stability of GSK3β, we tested whether inhibition of Hsp90 function affected its half-life. Primary neuronal cultures were treated with inhibitor or vehicle in the presence of cycloheximide, a protein synthesis inhibitor. The half-life of the GSK3β protein was remarkably shortened in the cells treated with Hsp90 inhibitors (
We next immunoprecipitated endogenous GSK3β from 2mg of COS cells lysate and demonstrated by western blotting that Hsp90 was coimmunoprecipitated. During the experiment, 15μg of COS cells lysate was loading on the same gel and immunoblotted in parallel. The result showed that only a small fraction of cellular Hsp90 is associated with GSK3β. This observation is not surprising as the Hsp90 is one of the most abundant cellular proteins and is known to be associated with a large number of proteins.
Hyperphosphorylation of tau leading to aggregated tau and tangle formation is a common pathological feature of tauopathies, including Alzheimer’s disease. The toxic behavior of the abnormal tau is solely due to its hyperphosphorylation because dephosphorylation restores it into a normal-like protein [
Direct inhibition of kinases as a therapeutic modality in tauopathies has been recently investigated. Inhibition of GSK3β by lithium was demonstrated to reduced tauopathy and degeneration in the P301L tau transgenic mouse model [
We thank Dr. V. Lee for the Tau constructs, Dr. G. Chiosis for the PU24FCl compound. This work was supported by National Natural Science Foundation of China Grant 30370311(to F. D.).
Effects of Hsp90 inhibition on tau phosphorylation. COS-7 cells were transiently transfected to over-express human tau protein longest isoform. At 12 h after transfection, cells were incubated for 20h with10μM PU24FCl or 400nM GA, cells were collected and lysed, the resulting lysates analyzed by immunoblot.
Inhibition of Hsp90 specifically decreases GSK3β. COS cells were treated with10μM PU24FCl or 400nM GA for 20h, in some experiments, cells were treated with novobicin at indicated concentration for 20h. Rat embryonic cortical primary neurons were treated under same conditions.
Degradation of GSK3β by Hsp90 inhibitors is mediated by the proteasome. Only proteasome inhibitors (i.e. MG132) were able to prevent the degradation of GSK3β over a 20 h treatment with the Hsp90 inhibitors PU24FCl and GA. Primary neurons were treated with DMSO, 10 μM PU24FCl or 400nM GA in the presence of the following inhibitors: 10 μM MG132, 1μM pepstatin, 75μM leupeptin, 10 μM E64 or 20 μM ZVAD for 20h. Cells were collected, lysed and the resulting lysates analyzed by immunoblot. Proteins were analyzed by Western blot. The phosporylation level of tau protein was analyzed by Western blotting using phospho-specific antibodies [AT8 (1:250), AT100 (1:250), AT180(1:250), AT270 (1:250)] anti total tau antibody (1:500). Actin were used as protein quantification control.
Hsp90 inhibition affects the protein’s half-life. COS-7 cells were treated with DMSO or 10 μM PU24FCl in the presence of 30 μM cyclohexamide to halt translation. At the times indicated, cells were lysed and whole-cell lysates immunobloted with anti-GSK3β antibody.
GSK3β exist in a complex with Hsp90. GSK3β was immunoprecipitated from COS cell lysate, the immunoreactive materials were subjected to SDS-PAGE and analyzed by immunoblot using anti-Hsp90 antibody and anti-GSK3β antibidy.