TY - JOUR
T1 - Amyloid-dependent triosephosphate isomerase nitrotyrosination induces glycation and tau fibrillation
AU - Guix, Francesc X.
AU - Ill-Raga, Gerard
AU - Bravo, Ramona
AU - Nakaya, Tadashi
AU - de Fabritiis, Gianni
AU - Coma, Mireia
AU - Pietro Miscione, Gian
AU - Villa-Freixa, Jordi
AU - Suzuki, Toshiharu
AU - Fernandez-Busquets, Xavier
AU - Valverde, Miguel A.
AU - de Strooper, Bart
AU - Munoz, Francisco J.
PY - 2009/5
Y1 - 2009/5
N2 - Alzheimers disease neuropathology is characterized by neuronal death, amyloid -peptide deposits and neurofibrillary tangles composed of paired helical filaments of tau protein. Although crucial for our understanding of the pathogenesis of Alzheimers disease, the molecular mechanisms linking amyloid -peptide and paired helical filaments remain unknown. Here, we show that amyloid -peptide-induced nitro-oxidative damage promotes the nitrotyrosination of the glycolytic enzyme triosephosphate isomerase in human neuroblastoma cells. Consequently, nitro-triosephosphate isomerase was found to be present in brain slides from double transgenic mice overexpressing human amyloid precursor protein and presenilin 1, and in Alzheimers disease patients. Higher levels of nitro-triosephosphate isomerase (P 0.05) were detected, by Western blot, in immunoprecipitates from hippocampus (9 individuals) and frontal cortex (13 individuals) of Alzheimers disease patients, compared with healthy subjects (4 and 9 individuals, respectively). Triosephosphate isomerase nitrotyrosination decreases the glycolytic flow. Moreover, during its isomerase activity, it triggers the production of the highly neurotoxic methylglyoxal (n 4; P 0.05). The bioinformatics simulation of the nitration of tyrosines 164 and 208, close to the catalytic centre, fits with a reduced isomerase activity. Human embryonic kidney (HEK) cells overexpressing double mutant triosephosphate isomerase (Tyr164 and 208 by Phe164 and 208) showed high methylglyoxal production. This finding correlates with the widespread glycation immunostaining in Alzheimers disease cortex and hippocampus from double transgenic mice overexpressing amyloid precursor protein and presenilin 1. Furthermore, nitro-triosephosphate isomerase formed large -sheet aggregates in vitro and in vivo, as demonstrated by turbidometric analysis and electron microscopy. Transmission electron microscopy (TEM) and atomic force microscopy studies have demonstrated that nitro-triosephosphate isomerase binds tau monomers and induces tau aggregation to form paired helical filaments, the characteristic intracellular hallmark of Alzheimers disease brains. Our results link oxidative stress, the main etiopathogenic mechanism in sporadic Alzheimers disease, via the production of peroxynitrite and nitrotyrosination of triosephosphate isomerase, to amyloid -peptide-induced toxicity and tau pathology.
AB - Alzheimers disease neuropathology is characterized by neuronal death, amyloid -peptide deposits and neurofibrillary tangles composed of paired helical filaments of tau protein. Although crucial for our understanding of the pathogenesis of Alzheimers disease, the molecular mechanisms linking amyloid -peptide and paired helical filaments remain unknown. Here, we show that amyloid -peptide-induced nitro-oxidative damage promotes the nitrotyrosination of the glycolytic enzyme triosephosphate isomerase in human neuroblastoma cells. Consequently, nitro-triosephosphate isomerase was found to be present in brain slides from double transgenic mice overexpressing human amyloid precursor protein and presenilin 1, and in Alzheimers disease patients. Higher levels of nitro-triosephosphate isomerase (P 0.05) were detected, by Western blot, in immunoprecipitates from hippocampus (9 individuals) and frontal cortex (13 individuals) of Alzheimers disease patients, compared with healthy subjects (4 and 9 individuals, respectively). Triosephosphate isomerase nitrotyrosination decreases the glycolytic flow. Moreover, during its isomerase activity, it triggers the production of the highly neurotoxic methylglyoxal (n 4; P 0.05). The bioinformatics simulation of the nitration of tyrosines 164 and 208, close to the catalytic centre, fits with a reduced isomerase activity. Human embryonic kidney (HEK) cells overexpressing double mutant triosephosphate isomerase (Tyr164 and 208 by Phe164 and 208) showed high methylglyoxal production. This finding correlates with the widespread glycation immunostaining in Alzheimers disease cortex and hippocampus from double transgenic mice overexpressing amyloid precursor protein and presenilin 1. Furthermore, nitro-triosephosphate isomerase formed large -sheet aggregates in vitro and in vivo, as demonstrated by turbidometric analysis and electron microscopy. Transmission electron microscopy (TEM) and atomic force microscopy studies have demonstrated that nitro-triosephosphate isomerase binds tau monomers and induces tau aggregation to form paired helical filaments, the characteristic intracellular hallmark of Alzheimers disease brains. Our results link oxidative stress, the main etiopathogenic mechanism in sporadic Alzheimers disease, via the production of peroxynitrite and nitrotyrosination of triosephosphate isomerase, to amyloid -peptide-induced toxicity and tau pathology.
KW - Alzheimer's disease (AD)
KW - Amyloid β-peptide
KW - Nitrotyrosination
KW - Tau protein
KW - Triosephosphate isomerase
KW - Neurofibrillary tangles
KW - Triosephosphate isomerase
KW - Alzheimer's disease (AD)
KW - Tau protein
KW - Nitrotyrosination
KW - Neurofibrillary tangles
KW - Amyloid beta-peptide
KW - Alzheimer's disease (AD)
KW - Amyloid beta-peptide
KW - Nitrotyrosination
KW - Tau protein
KW - Triosephosphate isomerase
KW - Neurofibrillary tangles
UR - http://www.scopus.com/inward/record.url?scp=66549128353&partnerID=8YFLogxK
UR - https://www.webofscience.com/api/gateway?GWVersion=2&SrcApp=pure_univeritat_ramon_llull&SrcAuth=WosAPI&KeyUT=WOS:000265950900021&DestLinkType=FullRecord&DestApp=WOS
U2 - 10.1093/brain/awp023
DO - 10.1093/brain/awp023
M3 - Article
C2 - 19251756
SN - 0006-8950
VL - 132
SP - 1335
EP - 1345
JO - Brain
JF - Brain
ER -