Lysosomal alterations and decreased electrophysiological activity in CLN3 disease patient-derived cortical neurons

Author:

Chear Sueanne1,Perry Sharn1,Wilson Richard2,Bindoff Aidan1ORCID,Talbot Jana1,Ware Tyson L.3,Grubman Alexandra4,Vickers James C.1,Pébay Alice56,Ruddle Jonathan B.7,King Anna E.1,Hewitt Alex W.8,Cook Anthony L.1ORCID

Affiliation:

1. Wicking Dementia Research and Education Centre, University of Tasmania 1 , Hobart, TAS 7001 , Australia

2. University of Tasmania 2 Central Science Laboratory , , Hobart, TAS 7001 , Australia

3. Royal Hobart Hospital 3 Department of Paediatrics , , Hobart, TAS 7000 , Australia

4. Monash University 4 Department of Anatomy and Developmental Biology , , Clayton, VIC 3800 , Australia

5. University of Melbourne 5 Department of Anatomy and Physiology , , Parkville, VIC 3010 , Australia

6. Royal Melbourne Hospital, University of Melbourne 6 Department of Surgery , , Parkville, VIC 3010 , Australia

7. Centre for Eye Research Australia, Royal Victorian Eye and Ear Hospital 7 , East Melbourne, VIC 3002 , Australia

8. Menzies Institute for Medical Research, University of Tasmania 8 , Hobart, TAS 7001 , Australia

Abstract

ABSTRACT CLN3 disease is a lysosomal storage disorder associated with fatal neurodegeneration that is caused by mutations in CLN3, with most affected individuals carrying at least one allele with a 966 bp deletion. Using CRISPR/Cas9, we corrected the 966 bp deletion mutation in human induced pluripotent stem cells (iPSCs) of a compound heterozygous patient (CLN3 Δ 966 bp and E295K). We differentiated these isogenic iPSCs, and iPSCs from an unrelated healthy control donor, to neurons and identified disease-related changes relating to protein synthesis, trafficking and degradation, and in neuronal activity, which were not apparent in CLN3-corrected or healthy control neurons. CLN3 neurons showed numerous membrane-bound vacuoles containing diverse storage material and hyperglycosylation of the lysosomal LAMP1 protein. Proteomic analysis showed increase in lysosomal-related proteins and many ribosomal subunit proteins in CLN3 neurons, accompanied by downregulation of proteins related to axon guidance and endocytosis. CLN3 neurons also had lower electrophysical activity as recorded using microelectrode arrays. These data implicate inter-related pathways in protein homeostasis and neurite arborization as contributing to CLN3 disease, and which could be potential targets for therapy.

Funder

Batten Disease Support and Research Association Australia

Royal Hobart Hospital Research Foundation

National Health and Medical Research Council

Publisher

The Company of Biologists

Subject

General Biochemistry, Genetics and Molecular Biology,Immunology and Microbiology (miscellaneous),Medicine (miscellaneous),Neuroscience (miscellaneous)

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