Evidence of oxidative stress in the neocortex in incidental Lewy body disease

被引:216
作者
Dalfó, E
Portero-Otín, M
Ayala, V
Martínez, A
Pamplona, R
Ferrer, I
机构
[1] Hosp Univ Bellvitge, IDIBELL, Serv Anat Patol, Inst Neuropathol, Lhospitalet De Llobregat 08907, Spain
[2] Univ Barcelona, Fac Med, Dept Biol Cellular & Anat Patol, Lhospitalet De Llobregat, Spain
[3] Univ Lleida, Fac Med, Dept Ciencies Med Basiques, Barcelona, Spain
关键词
cerebral cortex; dementia with Lewy bodies; oxidative stress; Parkinson disease;
D O I
10.1097/01.jnen.0000179050.54522.5a
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Oxidative stress has been well documented in the substantia nigra in Parkinson disease (PD), but little is known about oxidative damage, particularly lipoxidation, advanced glycation (AGE), and AGE receptors (RAGE) in other structures, including the cerebral cortex, in early stages of diseases with Lewy bodies. The present study was undertaken to analyze these parameters in the frontal cortex (area 8), amygdala, and substantia nigra in selected cases with no neurologic symptoms and with neuropathologically verified incidental Lewy body disease-related changes, comparing them with healthy age-matched individuals. Results of the present study have shown mass spectrometric and immunologic evidences of increased lipoxidative damage by the markers malondialdehyde-lysine (MDAL) and 4-hydroxynonenallysine (HNE), increased expression of AGE in the substantia nigra, amygdala, and frontal cortex, and increased and heterogeneous RAGE cellular expression in the substantia nigra and frontal cortex in cases with early stages of parkinsonian neuropathology. In addition, increased content of the highly peroxidizable docosahexaenoic acid in the amygdala and frontal cortex. These changes were not associated to a-synuclein aggregation in cortex, contrasting with aggregates found in SDS-soluble fractions of frontal cortex in dementia with Lewy bodies (DLB) cases. The pattern of lipidic abnormalities differed in DLB and incidental Lewy body disease. Furthermore, although AGE and RAGE expression were raised in DLB, no increase in the total amount of HNE and MDAL adducts was found in the cerebral cortex in DLB. Preliminary analyses have identified 2 proteins with lipoxidative damage, alpha-synuclein and manganese superoxide dismutase (SOD2), in incidentally Lewy body disease cortex. This study demonstrates abnormal fatty acid profiles, increased and selective lipoxidative damage, and increased AGE and RAGE expression in the frontal cortex in cases with early stages of parkinsonian neuropathology without treatment. These findings further support antioxidant therapy in the treatment of PD to reduce cortical damage associated with oxidative stress.
引用
收藏
页码:816 / 830
页数:15
相关论文
共 58 条
[31]  
Kosaka K., 1996, P238, DOI 10.1017/CBO9780511601187.024
[32]   Activation of the receptor for advanced glycation end products triggers a p21(ras)-dependent mitogen-activated protein kinase pathway regulated by oxidant stress [J].
Lander, HM ;
Tauras, JM ;
Ogiste, JS ;
Hori, O ;
Moss, RA ;
Schmidt, AM .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1997, 272 (28) :17810-17814
[33]   ABAD directly links Aβ to mitochondrial toxicity in Alzheimer's disease [J].
Lustbader, JW ;
Cirilli, M ;
Lin, C ;
Xu, HW ;
Takuma, K ;
Wang, N ;
Caspersen, C ;
Chen, X ;
Pollak, S ;
Chaney, M ;
Trinchese, F ;
Liu, SM ;
Gunn-Moore, F ;
Lue, LF ;
Walker, DG ;
Kuppusamy, P ;
Zewier, ZL ;
Arancio, O ;
Stern, D ;
Yan, SSD ;
Wu, H .
SCIENCE, 2004, 304 (5669) :448-452
[34]  
Markesbery WR, 2001, CONT NEUROS, P21
[35]   OXYGEN-TOXICITY PROTECTING ENZYMES IN PARKINSONS-DISEASE - INCREASE OF SUPEROXIDE DISMUTASE-LIKE ACTIVITY IN THE SUBSTANTIA NIGRA AND BASAL NUCLEUS [J].
MARTTILA, RJ ;
LORENTZ, H ;
RINNE, UK .
JOURNAL OF THE NEUROLOGICAL SCIENCES, 1988, 86 (2-3) :321-331
[36]   Consensus guidelines for the clinical and pathologic diagnosis of dementia with Lewy bodies (DLB): Report of the consortium on DLB international workshop [J].
McKeith, IG ;
Galasko, D ;
Kosaka, K ;
Perry, EK ;
Dickson, DW ;
Hansen, LA ;
Salmon, DP ;
Lowe, J ;
MIrra, SS ;
Byrne, EJ ;
Lennox, G ;
Quinn, NP ;
Edwardson, JA ;
Ince, PG ;
Bergeron, C ;
Burns, A ;
Miller, BL ;
Lovestone, S ;
Collerton, D ;
Jansen, ENH ;
Ballard, C ;
deVos, RAI ;
Wilcock, GK ;
Jellinger, KA ;
Perry, RH .
NEUROLOGY, 1996, 47 (05) :1113-1124
[37]   Mitochondrial disease in superoxide dismutase 2 mutant mice [J].
Melov, S ;
Coskun, P ;
Patel, M ;
Tuinstra, R ;
Cottrell, B ;
Jun, AS ;
Zastawny, TH ;
Dizdaroglu, M ;
Goodman, SI ;
Huang, TT ;
Miziorko, H ;
Epstein, CJ ;
Wallace, DC .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1999, 96 (03) :846-851
[38]   Crosslinking of α-synuclein by advanced glycation endproducts -: an early pathophysiological step in Lewy body formation? [J].
Münch, G ;
Lüth, HJ ;
Wong, A ;
Arendt, T ;
Hirsch, E ;
Ravid, R ;
Riederer, P .
JOURNAL OF CHEMICAL NEUROANATOMY, 2000, 20 (3-4) :253-257
[39]   Both familial Parkinson's disease mutations accelerate α-synuclein aggregation [J].
Narhi, L ;
Wood, SJ ;
Steavenson, S ;
Jiang, YJ ;
Wu, GM ;
Anafi, D ;
Kaufman, SA ;
Martin, F ;
Sitney, K ;
Denis, P ;
Louis, JC ;
Wypych, J ;
Biere, AL ;
Citron, M .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (14) :9843-9846
[40]  
Norris EH, 2005, ANTIOXID REDOX SIGN, V7, P673