Glucosamine amends CNS pathology in mucopolysaccharidosis IIIC mouse expressing misfolded HGSNAT

Author:

Pan Xuefang1ORCID,Taherzadeh Mahsa12ORCID,Bose Poulomee1ORCID,Heon-Roberts Rachel12ORCID,Nguyen Annie L.A.1ORCID,Xu TianMeng1ORCID,Pará Camila1ORCID,Yamanaka Yojiro3ORCID,Priestman David A.4ORCID,Platt Frances M.4ORCID,Khan Shaukat5ORCID,Fnu Nidhi5ORCID,Tomatsu Shunji5ORCID,Morales Carlos R.2ORCID,Pshezhetsky Alexey V.12ORCID

Affiliation:

1. Centre Hospitalier Universitaire Sainte-Justine Research Center, University of Montreal, Montreal, QC, Canada 1

2. Department of Anatomy and Cell Biology, McGill University, Montreal, QC, Canada 2

3. Goodman Cancer Research Centre, McGill University, Montreal, QC, Canada 3

4. Department of Pharmacology, University of Oxford, Oxford, UK 4

5. Nemours/Alfred I. duPont Hospital for Children, Wilmington, DE 5

Abstract

The majority of mucopolysaccharidosis IIIC (MPS IIIC) patients have missense variants causing misfolding of heparan sulfate acetyl-CoA:α-glucosaminide N-acetyltransferase (HGSNAT), which are potentially treatable with pharmacological chaperones. To test this approach, we generated a novel HgsnatP304L mouse model expressing misfolded HGSNAT Pro304Leu variant. HgsnatP304L mice present deficits in short-term and working/spatial memory 2–4 mo earlier than previously described constitutive knockout Hgsnat-Geo mice. HgsnatP304L mice also show augmented severity of neuroimmune response, synaptic deficits, and neuronal storage of misfolded proteins and gangliosides compared with Hgsnat-Geo mice. Expression of misfolded human Pro311Leu HGSNAT protein in cultured hippocampal Hgsnat-Geo neurons further reduced levels of synaptic proteins. Memory deficits and majority of brain pathology were rescued in mice receiving HGSNAT chaperone, glucosamine. Our data for the first time demonstrate dominant-negative effects of misfolded HGSNAT Pro304Leu variant and show that they are treatable by oral administration of glucosamine. This suggests that patients affected with mutations preventing normal folding of the enzyme can benefit from chaperone therapy.

Funder

Canadian Institutes of Health Research

Elisa Linton Sanfilippo Research Laboratory

JLK Foundation

Sanfilippo Children’s Research Foundation

Mizutani Foundation

Jonah’s Just Began Foundation

Wellcome Trust

Wolfson Royal Society

Canadian MPS Society

Canadian Glycomics Network

Publisher

Rockefeller University Press

Subject

Immunology,Immunology and Allergy

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