N-glycan and Alzheimer's disease
BIOCHIMICA ET BIOPHYSICA ACTA-GENERAL SUBJECTS
Authors: Kizuka, Yasuhiko; Kitazume, Shinobu; Taniguchi, Naoyuki
Abstract
Background: Alzheimer's disease (AD) is a major form of dementia. Many evidence-based clinical trials have been performed, but no effective treatment has yet been developed. This suggests that our understanding of AD patho-mechanisms is still insufficient. In particular, the pathological roles of posttranslational modifications including glycosylation have remained poorly understood, but recent advances in glycobiology technology have gradually revealed that sugar modifications of AD-related molecules are profoundly involved in the onset and progression of this disease. Scope of review: We summarize the roles of N-glycans in AD pathogenesis and progression, particularly focusing on key AD-related molecules, including amyloid precursor protein (APP), alpha-, beta-, and gamma-secretases, and tau. Major conclusions: Biochemical, genetic and pharmacological studies have gradually revealed how N-glycans regulate AD development and progression through functional modulation of the key glycoproteins. These findings suggest that further glycobiology approaches in AD research will reveal novel glycan-based drug targets and early biomarkers of AD. However, N-glycan structures of these molecules in physiological and disease conditions and their precise functions are still largely unclear. Deeper glycobiology studies will be needed to reveal how AD pathology is regulated by glycosylation. General significance: It is now known that N-glycans play significant roles in AD development. However, specific pathological functions of particular glycan epitopes on each AD-related glycoprotein are still poorly understood. Future glycobiology studies with more sensitive glycoproteomic techniques and a wider variety of chemical glycosylation inhibitors could contribute to the development of novel glycan-based AD therapeutics. This article is part of a Special Issue entitled Neuro-glycoscience, edited by Kenji Kadomatsu and Hiroshi Kitagawa.
Wild type and P301L mutant Tau promote neuro-inflammation and alpha-Synuclein accumulation in lentiviral gene delivery models
MOLECULAR AND CELLULAR NEUROSCIENCE
Authors: Khandelwal, Preeti J.; Dumanis, Sonya B.; Herman, Alexander M.; Rebeck, G. William; Moussa, Charbel E. -H.
Abstract
Neurodegeneration involves multiple pathogenic proteins, including Tau, A beta, TDP-43 and alpha-Synuclein, but there is little information how these pathogenic proteins interact. We cloned human wild type 4 repeat Tau (Tau(wt)) and mutant Tau(P301L) into a lentivirus and performed stereotaxic injection into the rat motor cortex to examine Tau modification, neuro-inflammation and changes of other proteins associated with neurodegeneration. Tau(P301L), was associated with more phosphorylation of Tau, including Thr 181 and Ser 262 residues and resulted in more aggregation. Both forms of Tau expression increased glycogen synthase kinase-3 (GSK-3) activity, polo-like kinase-2 (PLK2) levels and decreased protein phosphatase activity, but had no effects on casein kinase-1 (CK1). No changes were observed in glial fibrillary acidic protein (GFAP) staining with either Tau(wt) or Tau(P301L), but both caused microglial changes and higher interleukin-6 (IL-6) and tumor necrosis factor-alpha (TNF-alpha) levels. Tau(wt) and Tau(P301L) increased the levels of endogenous alpha-Synuclein, but not beta-amyloid precursor protein (beta APP) or Tar-DNA binding protein (TDP-43). The levels of phosphorylated Ser-129 alpha-Synuclein (p-Ser129) were also increased with Tau(wt) and Tau(P301L) expressing animals. These data suggest that Tau(wt) and Tau(P301L) alter kinase activities, but they differentially induce inflammation, Tau modification and alpha-Synuclein phosphorylation. This change of alpha-Synuclein in Tau gene transfer models suggests that Tau pathology may lead to alpha-Synuclein modification in neurodegenerative diseases. (C) 2011 Elsevier Inc. All rights reserved.