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Featured researches published by Keisuke Toichi.


Journal of Biological Chemistry | 2013

Disulfide Scrambling Describes the Oligomer Formation of Superoxide Dismutase (SOD1) Proteins in the Familial Form of Amyotrophic Lateral Sclerosis

Keisuke Toichi; Koji Yamanaka; Yoshiaki Furukawa

Background: Cu,Zn-superoxide dismutase (SOD1) possesses a highly conserved intramolecular disulfide bond. Results: Structural destabilization of SOD1 scrambles the intramolecular disulfide to form cross-linked oligomers with an intermolecular disulfide bond. Conclusion: Disulfide scrambling is a key to understand the folding/misfolding process of SOD1. Significance: A disulfide-scrambling model provides a molecular pathomechanism describing the formation of disulfide-linked SOD1 oligomers in amyotrophic lateral sclerosis. Dominant mutations in Cu,Zn-superoxide dismutase (SOD1) are a cause of a familial form of amyotrophic lateral sclerosis. Wild-type SOD1 forms a highly conserved intra-molecular disulfide bond, whereas pathological SOD1 proteins are cross-linked via intermolecular disulfide bonds and form insoluble oligomers. A thiol-disulfide status in SOD1 will thus play a regulatory role in determining its folding/misfolding pathways; however, it remains unknown how pathogenic mutations in SOD1 affect the thiol-disulfide status to facilitate the protein misfolding. Here, we show that the structural destabilization of SOD1 scrambles a disulfide bond among four Cys residues in an SOD1 molecule. The disulfide scrambling produces SOD1 monomers with distinct electrophoretic mobility and also reproduces the formation of disulfide-linked oligomers. We have also found that the familial form of amyotrophic lateral sclerosis-causing mutations facilitate the disulfide scrambling in SOD1. Based upon our results, therefore, scrambling of the conserved disulfide bond will be a key event to cause the pathological changes in disease-associated mutant SOD1 proteins.


Frontiers in Molecular Biosciences | 2016

Screening of Drugs Inhibiting In vitro Oligomerization of Cu/Zn-Superoxide Dismutase with a Mutation Causing Amyotrophic Lateral Sclerosis

Itsuki Anzai; Keisuke Toichi; Eiichi Tokuda; Atsushi Mukaiyama; Shuji Akiyama; Yoshiaki Furukawa

Dominant mutations in Cu/Zn-superoxide dismutase (SOD1) gene have been shown to cause a familial form of amyotrophic lateral sclerosis (SOD1-ALS). A major pathological hallmark of this disease is abnormal accumulation of mutant SOD1 oligomers in the affected spinal motor neurons. While no effective therapeutics for SOD1-ALS is currently available, SOD1 oligomerization will be a good target for developing cures of this disease. Recently, we have reproduced the formation of SOD1 oligomers abnormally cross-linked via disulfide bonds in a test tube. Using our in vitro model of SOD1 oligomerization, therefore, we screened 640 FDA-approved drugs for inhibiting the oligomerization of SOD1 proteins, and three effective classes of chemical compounds were identified. Those hit compounds will provide valuable information on the chemical structures for developing a novel drug candidate suppressing the abnormal oligomerization of mutant SOD1 and possibly curing the disease.


Molecular Neurodegeneration | 2017

Immunochemical characterization on pathological oligomers of mutant Cu/Zn-superoxide dismutase in amyotrophic lateral sclerosis.

Eiichi Tokuda; Itsuki Anzai; Takao Nomura; Keisuke Toichi; Masahiko Watanabe; Shinji Ohara; Seiji Watanabe; Koji Yamanaka; Yuta Morisaki; Hidemi Misawa; Yoshiaki Furukawa

BackgroundDominant mutations in Cu/Zn-superoxide dismutase (SOD1) gene cause a familial form of amyotrophic lateral sclerosis (SOD1-ALS) with accumulation of misfolded SOD1 proteins as intracellular inclusions in spinal motor neurons. Oligomerization of SOD1 via abnormal disulfide crosslinks has been proposed as one of the misfolding pathways occurring in mutant SOD1; however, the pathological relevance of such oligomerization in the SOD1-ALS cases still remains obscure.MethodsWe prepared antibodies exclusively recognizing the SOD1 oligomers cross-linked via disulfide bonds in vitro. By using those antibodies, immunohistochemical examination and ELISA were mainly performed on the tissue samples of transgenic mice expressing mutant SOD1 proteins and also of human SOD1-ALS cases.ResultsWe showed the recognition specificity of our antibodies exclusively toward the disulfide-crosslinked SOD1 oligomers by ELISA using various forms of purified SOD1 proteins in conformationally distinct states in vitro. Furthermore, the epitope of those antibodies was buried and inaccessible in the natively folded structure of SOD1. The antibodies were then found to specifically detect the pathological SOD1 species in the spinal motor neurons of the SOD1-ALS patients as well as the transgenic model mice.ConclusionsOur findings here suggest that the SOD1 oligomerization through the disulfide-crosslinking associates with exposure of the SOD1 structural interior and is a pathological process occurring in the SOD1-ALS cases.


生物物理 | 2014

2P060 ジスルフィド結合のシャッフリングを標的とした異常なタンパク質オリゴマー化の抑制手法(01C. 蛋白質:物性,ポスター,第52回日本生物物理学会年会(2014年度))

Itsuki Anzai; Keisuke Toichi; Atsushi Mukaiyama; Shuji Akiyama; Yoshiaki Furukawa


Seibutsu Butsuri | 2014

2P060 Disulfide shuffling in Cu,Zn-superoxide dismutase is a key to develop potential drugs for neurodegeneration(01C. Protein: Property,Poster,The 52nd Annual Meeting of the Biophysical Society of Japan(BSJ2014))

Itsuki Anzai; Keisuke Toichi; Atsushi Mukaiyama; Shuji Akiyama; Yoshiaki Furukawa


生物物理 | 2013

2P035 筋萎縮性側索硬化症に関わる変異型SOD1タンパク質のオリゴマー化メカニズム(01B.蛋白質:構造機能相関,ポスター,日本生物物理学会年会第51回(2013年度))

Itsuki Anzai; Keisuke Toichi; Yoshiaki Furukawa


Seibutsu Butsuri | 2013

2P035 Oligomerization mechanism of mutant SOD1 proteins in a familial form of amyotrophic lateral sclerosis(01B. Protein: Structure & Function,Poster)

Itsuki Anzai; Keisuke Toichi; Yoshiaki Furukawa


生物物理 | 2012

2B1610 ジスルフィド結合の組換えによる不溶性SOD1オリゴマーの新たな形成メカニズム : 筋萎縮性側索硬化症における分子病理変化(蛋白質-構造機能相関II:理論,凝集,口頭発表,日本生物物理学会第50回年会(2012年度))

Keisuke Toichi; Yoshiaki Furukawa


Seibutsu Butsuri | 2012

2B1610 Destabilization of SOD1 facilitates abnormal scrambling of its disulfide bond in the familial form of amyotrophic lateral sclerosis(Proteins:Structure & Function II:Theory, Aggregation,Oral Presentation,The 50th Annual Meeting of the Biophysical Society of Japan)

Keisuke Toichi; Yoshiaki Furukawa


生物物理 | 2011

1D1412 筋萎縮性側索硬化症に見られるSOD1凝集体のジスルフィド結合による新たな形成制御メカニズム(蛋白質_物性1,第49回日本生物物理学会年会)

Keisuke Toichi; Yoshiaki Furukawa

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Shuji Akiyama

Graduate University for Advanced Studies

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