Engineering a membrane protein chaperone to ameliorate the proteotoxicity of mutant huntingtin
Abstract
Abstract Toxic protein aggregates are associated with various neurodegenerative diseases, including Huntington’s disease (HD). Since no current treatment delays the progression of HD, we develop a mechanistic approach to prevent mutant huntingtin (mHttex1) aggregation. Here, we engineer the ATP-independent cytosolic chaperone PEX19, which targets peroxisomal membrane proteins to peroxisomes, to remove mHttex1 aggregates. Using yeast toxicity-based screening with a random mutant library, we identify two yeast PEX19 variants and engineer equivalent mutations into human PEX19 ( hs PEX19). These variants effectively delay mHttex1 aggregation in vitro and in cellular HD models. The mutated hydrophobic residue in the α4 helix of hs PEX19 variants binds to the N17 domain of mHttex1, thereby inhibiting the initial aggregation process. Overexpression of the hs PEX19-FV variant rescues HD-associated phenotypes in primary striatal neurons and in Drosophila . Overall, our data reveal that engineering ATP-independent membrane protein chaperones is a promising therapeutic approach for rational targeting of mHttex1 aggregation in HD.
Article Details
Authors (16)
Jeonghyun Oh
Christy Catherine
Eun Seon Kim
Kwang Wook Min
Hae Chan Jeong
Hyojin Kim
Mijin Kim
Department of Physics and Chemistry
Seung Hae Ahn
Nataliia Lukianenko
Min Gu Jo
Hyeon Seok Bak
Sungsu Lim
Yun Kyung Kim
Biomedical Research Division & Brain Science Institute, Korea Institute of Science and Technology, Hwarangro 14gil 5, Seungbuk-gu, Seoul 02792, Republic of Korea
Ho Min Kim
Sung Bae Lee
Hyunju Cho