Brain p3‐Alcβ peptide restores neuronal viability impaired by Alzheimer's amyloid β‐peptide

Author:

Hata Saori12,Saito Haruka13,Kakiuchi Takeharu4,Fukumoto Dai4,Yamamoto Shigeyuki4ORCID,Kasuga Kensaku5ORCID,Kimura Ayano1,Moteki Koichi13,Abe Ruriko3,Adachi Shungo6,Kinoshita Shoich13,Yoshizawa‐Kumagaye Kumiko7,Nishio Hideki7,Saito Takashi89ORCID,Saido Takaomi C8ORCID,Yamamoto Tohru10ORCID,Nishimura Masaki11,Taru Hidenori13,Sobu Yuriko13,Ohba Hiroyuki4ORCID,Nishiyama Shingo4,Harada Norihiro4ORCID,Ikeuchi Takeshi5ORCID,Tsukada Hideo4ORCID,Ouchi Yasuomi12,Suzuki Toshiharu13ORCID

Affiliation:

1. Laboratory of Neuroscience, Graduate School of Pharmaceutical Sciences Hokkaido University Sapporo Japan

2. Biomedical Research Institute National Institute of Advanced Industrial Science and Technology (AIST) Tsukuba Japan

3. Advanced Prevention and Research Laboratory for Dementia, Graduate School of Pharmaceutical Sciences Hokkaido University Sapporo Japan

4. Central Research Laboratory, Hamamatsu Photonics K.K. Hamamatsu Japan

5. Molecular Genetics Niigata University Brain Research Institute Nigata Japan

6. Cellular and Molecular Biotechnology Research Institute National Institute of Advanced Industrial Science and Technology (AIST) Tokyo Japan

7. Peptide Institute, Inc. Ibaraki Japan

8. Laboratory for Proteolytic Neuroscience RIKEN Center for Brain Science Institute Wako Japan

9. Department of Neurocognitive Science, Institute of Brain Science Nagoya City University Graduate School of Medical Sciences Nagoya Japan

10. Department of Molecular Neurobiology, Factory of Medicine Kagawa University Takamatsu Japan

11. Molecular Neuroscience Research Center Shiga University of Medical Science Shiga Japan

12. Department of Biofunctional Imaging, Preeminent Medical Education & Research Center Hamamatsu University School of Medicine Hamamatsu Japan

Abstract

AbstractWe propose a new therapeutic strategy for Alzheimer's disease (AD). Brain peptide p3‐Alcβ37 is generated from the neuronal protein alcadein β through cleavage of γ‐secretase, similar to the generation of amyloid β (Aβ) derived from Aβ‐protein precursor/APP. Neurotoxicity by Aβ oligomers (Aβo) is the prime cause prior to the loss of brain function in AD. We found that p3‐Alcβ37 and its shorter peptide p3‐Alcβ9‐19 enhanced the mitochondrial activity of neurons and protected neurons against Aβo‐induced toxicity. This is due to the suppression of the Aβo‐mediated excessive Ca2+ influx into neurons by p3‐Alcβ. Successful transfer of p3‐Alcβ9‐19 into the brain following peripheral administration improved the mitochondrial viability in the brain of AD mice model, in which the mitochondrial activity is attenuated by increasing the neurotoxic human Aβ42 burden, as revealed through brain PET imaging to monitor mitochondrial function. Because mitochondrial dysfunction is common in the brain of AD patients alongside increased Aβ and reduced p3‐Alcβ37 levels, the administration of p3‐Alcβ9‐19 may be a promising treatment for restoring, protecting, and promoting brain functions in patients with AD.

Funder

Japan Agency for Medical Research and Development

Japan Society for the Promotion of Science

Naito Foundation

Publisher

Springer Science and Business Media LLC

Subject

Molecular Medicine

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