PINK1 and Parkin Ameliorate the Loss of Motor Activity and Mitochondrial Dysfunction Induced by Peripheral Neuropathy-Associated HSPB8 Mutants in Drosophila Models

Author:

Kang Kyong-hwa12,Han Ji Eun13,Kim Hyunjin12,Kim Sohee13,Hong Young Bin2345,Yun Jeanho2345ORCID,Nam Soo Hyun46,Choi Byung-Ok6,Koh Hyongjong1234ORCID

Affiliation:

1. Department of Pharmacology, Dong-A University College of Medicine, Busan 49201, Republic of Korea

2. Neuroscience Translational Research Solution Center, Dong-A University College of Medicine, Busan 49201, Republic of Korea

3. Department of Translational Biomedical Sciences, Dong-A University College of Medicine, Busan 49201, Republic of Korea

4. Peripheral Neuropathy Research Center, Dong-A University College of Medicine, Busan 49201, Republic of Korea

5. Department of Biochemistry, Dong-A University College of Medicine, Busan 49201, Republic of Korea

6. Department of Neurology, Sungkyunkwan University School of Medicine, Seoul 06351, Republic of Korea

Abstract

Charcot–Marie–Tooth disease (CMT) is a group of inherited peripheral nerve disorders characterized by progressive muscle weakness and atrophy, sensory loss, foot deformities and steppage gait. Missense mutations in the gene encoding the small heat shock protein HSPB8 (HSP22) have been associated with hereditary neuropathies, including CMT. HSPB8 is a member of the small heat shock protein family sharing a highly conserved α-crystallin domain that is critical to its chaperone activity. In this study, we modeled HSPB8 mutant-induced neuropathies in Drosophila. The overexpression of human HSPB8 mutants in Drosophila neurons produced no significant defect in fly development but led to a partial reduction in fly lifespan. Although these HSPB8 mutant genes failed to induce sensory abnormalities, they reduced the motor activity of flies and the mitochondrial functions in fly neuronal tissue. The motor defects and mitochondrial dysfunction were successfully restored by PINK1 and parkin, which are Parkinson’s disease-associated genes that have critical roles in maintaining mitochondrial function and integrity. Consistently, kinetin riboside, a small molecule amplifying PINK1 activity, also rescued the loss of motor activity in our HSPB8 mutant model.

Funder

National Research Foundation of Korea

National Research Facilities and Equipment Center

Publisher

MDPI AG

Subject

General Biochemistry, Genetics and Molecular Biology,Medicine (miscellaneous)

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