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Tat-haFGF14-154 upregulates ADAM10 to attenuate the Alzheimer phenotype of APP/PS1 mice through the PI3K-CREB-IRE1α/XBP1 pathway

Bibliographic

Year of Publication:
2017
Contact PI Name:
Yadong Huang
Contact PI Affiliation:
Cell Biology Department and National Engineering Research Center of Genetic Medicine, Jinan University, Guangzhou, China
Co-Authors:
Tian Meng, Qin Cao, Peng Lei, Ashley I. Bush, Qi Xiang, Zhijian Su, Xiang He, Jack T. Rogers, Ing-Ming Chiu, Qihao Zhang
Primary Reference (PubMED ID):
Funding Source:
Key New Drug Creation and Development Program of China
National Natural Science Foundation of China
Science & Technology Major Planning Project of Guangdong Province
Natural Science Foundation of Guangdong Province
Science and Technology Planning Project of Guangzhou
Study Goal and Principal Findings:

Acid fibroblast growth factor (aFGF) has shown neuroprotection in Alzheimer’s disease (AD) models in previous studies, yet its mechanism is still uncertain. Here we report that the efficacy of Tat-haFGF14–154is markedly increased when loaded cationic liposomes for intranasal delivery are intranasally administered to APP/PS1 mice. Our results demonstrated that liposomal Tat-haFGF14–154 treatment significantly ameliorated behavioral deficits, relieved brain Aβ burden, and increased the expression and activity of disintegrin and metalloproteinase domain-containing protein 10 (ADAM10) in the brain. Tat-haFGF14–154antagonized Aβ1–42-induced cell death and structural damage in rat primary neurons in an ADAM10-dependent manner, which, in turn, was promoted by the activation of XBP1 splicing and modulated by the PI3K-CREB pathway. Both knockdown of ADAM10 and inhibition of PI3K (LY294002) negated Tat-haFGF14–154 rescue. Thus, Tat-haFGF14–154 activates the IRE1α/XBP1 pathway of the unfolded protein response (UPR) against the endoplasmic reticulum (ER) stress induced by Aβ, and, subsequently, the nuclear translocation of spliced XBP1 (XBP1s) promotes transcription of ADAM10. These results highlight the important role of ADAM10 and its activation through the PI3K-CREB-IRE1α/XBP1 pathway as a key factor in the mechanism of neuroprotection for Tat-haFGF14–154.

Therapeutic Agent

Therapeutic Information:
Therapy Type:
Biologic - Peptide
Therapeutic Agent:
TAT-haFGF14–154 Protein
Therapeutic Target:
Fibroblast Growth Factor Receptor (FGFR)

Animal Model

Model Information:
Species:
Mouse
Model Type:
APPxPS1
Strain/Genetic Background:
C57BL/6

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
Nesting Behavior
Open Field Test
Histopathology
beta Amyloid Deposits
beta Amyloid Load
Biochemical
Brain-beta Amyloid Peptide-Total
A Disintegrin and Metalloproteinase Domain 10 (ADAM10)
beta-Site Amyloid Precursor Protein Cleaving Enzyme 1 (BACE1)
Synaptophysin
Growth Associated Protein 43 (GAP43)
X-Box-Binding Protein 1 (XBP1)
Inositol-Requiring Enzyme 1 alpha (IRE1 alpha)
Phosphoinositide 3-Kinase (PI3K)
siRNA
Amyloid Precursor Protein (APP)
cAMP Response Element-Binding Protein (CREB)
phospho-cAMP Response Element-Binding Protein (phospho-CREB)
beta-Site Amyloid Precursor Protein Cleaving Enzyme 1 (BACE1) Activity
phospho-Phosphoinositide 3-Kinase (phospho-PI3K)
alpha Secretase Activity
Presenilin 1 (PS1)
Immunochemistry
beta Amyloid Load
Growth Associated Protein 43 (GAP43)
Synaptophysin
Brain-beta Amyloid Deposits
Electron Microscopy
Neuromorphology
Cell Biology
Cell Viability
Apoptosis
Neuroprotection-Amyloid Neurotoxicity
Toxicology
Body Weight