| Literature DB >> 24497505 |
Takashi Morihara1, Noriyuki Hayashi, Mikiko Yokokoji, Hiroyasu Akatsu, Michael A Silverman, Nobuyuki Kimura, Masahiro Sato, Yuhki Saito, Toshiharu Suzuki, Kanta Yanagida, Takashi S Kodama, Toshihisa Tanaka, Masayasu Okochi, Shinji Tagami, Hiroaki Kazui, Takashi Kudo, Ryota Hashimoto, Naohiro Itoh, Kouhei Nishitomi, Yumi Yamaguchi-Kabata, Tatsuhiko Tsunoda, Hironori Takamura, Taiichi Katayama, Ryo Kimura, Kouzin Kamino, Yoshio Hashizume, Masatoshi Takeda.
Abstract
Alzheimer's disease (AD) is characterized by the accumulation of amyloid-β (Aβ). The genes that govern this process, however, have remained elusive. To this end, we combined distinct mouse strains with transcriptomics to directly identify disease-relevant genes. We show that AD model mice (APP-Tg) with DBA/2 genetic backgrounds have significantly lower levels of Aβ accumulation compared with SJL and C57BL/6 mice. We then applied brain transcriptomics to reveal the genes in DBA/2 that suppress Aβ accumulation. To avoid detecting secondarily affected genes by Aβ, we used non-Tg mice in the absence of Aβ pathology and selected candidate genes differently expressed in DBA/2 mice. Additional transcriptome analysis of APP-Tg mice with mixed genetic backgrounds revealed kinesin light chain-1 (Klc1) as an Aβ modifier, indicating a role for intracellular trafficking in Aβ accumulation. Aβ levels correlated with the expression levels of Klc1 splice variant E and the genotype of Klc1 in these APP-Tg mice. In humans, the expression levels of KLC1 variant E in brain and lymphocyte were significantly higher in AD patients compared with unaffected individuals. Finally, functional analysis using neuroblastoma cells showed that overexpression or knockdown of KLC1 variant E increases or decreases the production of Aβ, respectively. The identification of KLC1 variant E suggests that the dysfunction of intracellular trafficking is a causative factor of Aβ pathology. This unique combination of distinct mouse strains and model mice with transcriptomics is expected to be useful for the study of genetic mechanisms of other complex diseases.Entities:
Keywords: alternative splicing; mouse-to-human translation
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Year: 2014 PMID: 24497505 PMCID: PMC3932848 DOI: 10.1073/pnas.1307345111
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205