Lysophagy protects against propagation of α-synuclein aggregation through ruptured lysosomal vesicles

Author:

Kakuda Keita1ORCID,Ikenaka Kensuke1ORCID,Kuma Akiko2,Doi Junko1,Aguirre César1,Wang Nan1,Ajiki Takahiro1,Choong Chi-Jing1ORCID,Kimura Yasuyoshi1ORCID,Badawy Shaymaa Mohamed Mohamed13ORCID,Shima Takayuki2,Nakamura Shuhei4ORCID,Baba Kousuke15,Nagano Seiichi15,Nagai Yoshitaka6ORCID,Yoshimori Tamotsu2ORCID,Mochizuki Hideki1ORCID

Affiliation:

1. Department of Neurology, Osaka University, Graduate School of Medicine, Suita, Osaka 565-0871, Japan

2. Department of Genetics, Osaka University, Graduate School of Medicine, Suita, Osaka 565-0871, Japan

3. Department of Agricultural Biochemistry, Faculty of Agriculture, Zagazig University, Zagazig 44519, Egypt

4. Department of Biochemistry, Nara Medical University, Kashihara, Nara 634-8521, Japan

5. Department of Neurotherapeutics, Osaka University, Graduate School of Medicine, Suita, Osaka 565-0871, Japan

6. Department of Neurology, Kindai University, Faculty of Medicine, Osaka-sayama, Osaka 589-8511, Japan

Abstract

The neuron-to-neuron propagation of misfolded α-synuclein (αSyn) aggregates is thought to be key to the pathogenesis of synucleinopathies. Recent studies have shown that extracellular αSyn aggregates taken up by the endosomal–lysosomal system can rupture the lysosomal vesicular membrane; however, it remains unclear whether lysosomal rupture leads to the transmission of αSyn aggregation. Here, we applied cell-based αSyn propagation models to show that ruptured lysosomes are the pathway through which exogenous αSyn aggregates transmit aggregation, and furthermore, this process was prevented by lysophagy, i.e., selective autophagy of damaged lysosomes. αSyn aggregates accumulated predominantly in lysosomes, causing their rupture, and seeded the aggregation of endogenous αSyn, initially around damaged lysosomes. Exogenous αSyn aggregates induced the accumulation of LC3 on lysosomes. This LC3 accumulation was not observed in cells in which a key regulator of autophagy, RB1CC1/FIP200, was knocked out and was confirmed as lysophagy by transmission electron microscopy. Importantly, RB1CC1/FIP200-deficient cells treated with αSyn aggregates had increased numbers of ruptured lysosomes and enhanced propagation of αSyn aggregation. Furthermore, various types of lysosomal damage induced using lysosomotropic reagents, depletion of lysosomal enzymes, or more toxic species of αSyn fibrils also exacerbated the propagation of αSyn aggregation, and impaired lysophagy and lysosomal membrane damage synergistically enhanced propagation. These results indicate that lysophagy prevents exogenous αSyn aggregates from escaping the endosomal–lysosomal system and transmitting aggregation to endogenous cytosolic αSyn via ruptured lysosomal vesicles. Our findings suggest that the progression and severity of synucleinopathies are associated with damage to lysosomal membranes and impaired lysophagy.

Funder

MEXT | JST | Core Research for Evolutional Science and Technology

Japan Agency for Medical Research and Development

MEXT | Japan Society for the Promotion of Science

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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