Quantitative proteomic analysis of induced pluripotent stem cells derived from a human Huntington's disease patient

Author:

Chae Jung-Il1,Kim Dong-Wook1,Lee Nayeon2,Jeon Young-Joo1,Jeon Iksoo2,Kwon Jihye2,Kim Jumi2,Soh Yunjo1,Lee Dong-Seok3,Seo Kang Seok4,Choi Nag-Jin5,Park Byoung Chul6,Kang Sung Hyun6,Ryu Joohyun6,Oh Seung-Hun2,Shin Dong Ah7,Lee Dong Ryul2,Do Jeong Tae2,Park In-Hyun89,Daley George Q.8,Song Jihwan2

Affiliation:

1. Department of Oral Pharmacology, School of Dentistry and Institute of Dental Bioscience, BK21 project, Chonbuk National University, Jeonju 651-756, Korea

2. CHA Stem Cell Institute, Department of Biomedical Science, CHA University, Seoul 135-081, Korea

3. College of Natural Sciences, Kyungpook National University, Daegu 702-701, Korea

4. Department of Animal Science and Technology, Sunchon National University, Suncheon 540-742, Korea

5. Department of Animal Science, College of Agricultural and Life Science, Chonbuk National University, Jeonju 651-756, Korea

6. Medical Proteomics Research Center, KRIBB, Daejeon 305-333, Korea

7. Department of Neurosurgery, Yonsei University College of Medicine, Seoul, Korea

8. Department of Biological Chemistry and Molecular Pharmacology, Harvard Medical School, Boston, MA 02115, U.S.A.

9. Department of Genetics, Yale University School of Medicine, New Haven, CT 06520, U.S.A.

Abstract

HD (Huntington's disease) is a devastating neurodegenerative genetic disorder caused by abnormal expansion of CAG repeats in the HTT (huntingtin) gene. We have recently established two iPSC (induced pluripotent stem cell) lines derived from a HD patient carrying 72 CAG repeats (HD-iPSC). In order to understand the proteomic profiles of HD-iPSCs, we have performed comparative proteomic analysis among normal hESCs (human embryonic stem cells; H9), iPSCs (551-8) and HD-iPSCs at undifferentiated stages, and identified 26 up- and down-regulated proteins. Interestingly, these differentially expressed proteins are known to be involved in different biological processes, such as oxidative stress, programmed cell death and cellular oxygen-associated proteins. Among them, we found that oxidative stress-related proteins, such as SOD1 (superoxide dismutase 1) and Prx (peroxiredoxin) families are particularly affected in HD-iPSCs, implying that HD-iPSCs are highly susceptible to oxidative stress. We also found that BTF3 (basic transcription factor 3) is up-regulated in HD-iPSCs, which leads to the induction of ATM (ataxia telangiectasia mutated), followed by activation of the p53-mediated apoptotic pathway. In addition, we observed that the expression of cytoskeleton-associated proteins was significantly reduced in HD-iPSCs, implying that neuronal differentiation was also affected. Taken together, these results demonstrate that HD-iPSCs can provide a unique cellular disease model system to understand the pathogenesis and neurodegeneration mechanisms in HD, and the identified proteins from the present study may serve as potential targets for developing future HD therapeutics.

Publisher

Portland Press Ltd.

Subject

Cell Biology,Molecular Biology,Biochemistry

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