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Acetyl-Ile-Gly-Leu protects neurons from Abeta(1-42) induced toxicity in vitro and in V337M human tau-expressing mice

Bibliographic

Year of Publication:
2009
Contact PI Name:
Kaori Kitagawa
Contact PI Affiliation:
Department of Pharmacology, Kansai Medical University, Moriguchi, Osaka, Japan
Co-Authors:
Zheng-Mei Xiong, Yuji Nishiuchi, Terutoshi Kimura, Tomoyuki Nakamura, Chiyoko Inagaki
Primary Reference (PubMED ID):
Funding Source:
Japanese Private School Promotion Foundation
Core Research for Evolutional Science and Technology of Japan Science and Technology Agency
Science Frontier & 21st Century Center of Excellence (COE) Programs of the Ministry of Education of Japan
Study Goal and Principal Findings:

Aims: We previously reported that the neurotoxicity of amyloid beta protein (Abeta(1-42), 10 nM) was blocked by an Abeta-derived tripeptide, Abeta(32-34) (Ile-Gly-Leu, IGL), suggesting that IGL may be a lead compound in the design of Abeta antagonists. In the present study, three stable forms of IGL peptide with acetylation of its N-terminal and/or amidation of its C-terminal (acetyl-IGL, IGL-NH(2) and acetyl-IGL-NH(2)) were synthesized and examined for their effects on Abeta-induced neurotoxicity.

Main methods: Phosphatidylinositol 4-kinase type II (PI4KII) activity was measured using recombinant human PI4KIIalpha kinase and cell viability was assessed in primary cultured hippocampal neurons. To test effects in vivo, 1.5 microl of 100 nM Abeta and/or 100 nM acetyl-IGL was injected into the hippocampal CA1 region of right hemisphere in transgenic mice expressing V337M human tau protein. Four weeks later, behavior performance in the Morris water maze was tested and after another 2 weeks, sections of brain were prepared for immunohistochemistry.

Key findings: Among the three modified tripeptides, acetyl-IGL attenuated the Abeta-induced inhibition of PI4KII activity as well as enhancement of glutamate neurotoxicity in primary cultured rat hippocampal neurons. Injection of Abeta into the hippocampus of mice impaired spatial memory and increased the number of degenerating neurons in bilateral hippocampal regions. Co-injection of acetyl-IGL prevented the learning impairment as well as the neuronal degeneration induced by Abeta.

Significance: These results suggest that a modified tripeptide, acetyl-IGL, may be effective in the treatment of Alzheimer's disease.

Therapeutic Agent

Therapeutic Information:
Therapy Type:
Biologic - Peptide
Therapeutic Agent:
beta Amyloid Peptide 32–34 (Ile-Gly-Leu IGL)
Therapeutic Target:
beta Amyloid Peptide
Therapeutic Notes:
Modified Aβ32–34 tripeptides (Ac-IGL, IGL-NH2, Ac-IGL-NH2) were also synthesized and used in this study. These tripeptides function as β-sheet breakers to block the formation of amyloid fibrils/protofibrils (oligomers).

Animal Model

Model Information:
Species:
Mouse
Model Type:
Tau
Strain/Genetic Background:
Not Reported
Animal Model Notes:
Aβ1–42 (100 nM, 1.5 μl) with or without Ac-IGL (100 nM) was injected into the hippocampal CA1 region.

Experimental Design

Is the following information reported in the study?:
Power/Sample Size Calculation
Randomized into Groups
Blinded for Treatment
Blinded for Outcome Measures
Pharmacokinetic Measures
Pharmacodynamic Measures
Toxicology Measures
ADME Measures
Biomarkers
Dose
Formulation
Route of Delivery
Duration of Treatment
Frequency of Administration
Age of Animal at the Beginning of Treatment
Age of Animal at the End of Treatment
Sex as a Biological Variable
Study Balanced for Sex as a Biological Variable
Number of Premature Deaths
Number of Excluded Animals
Statistical Plan
Genetic Background
Inclusion/Exclusion Criteria Included
Conflict of Interest

Outcomes

Outcome Measured
Outcome Parameters
Behavioral
Morris Water Maze
Histopathology
Neurodegeneration
Neuronal Loss
Biochemical
Phosphatidylinositol 4-Kinase Type II alpha (PI4KII alpha) Activity
Lactate Dehydrogenase (LDH)
Mitochondrial Proteins
Immunochemistry
Caspase 3
Neuronal Damage Markers
Apoptosis
Microscopy
Neurodegeneration
Cell Count
Apoptosis
Cell Biology
Cell Viability
Cytotoxicity
Neuroprotection-Excitotoxicity
Toxicology
Cell Viability