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Analyzing Mitochondrial Transport and Morphology in Human Induced Pluripotent Stem Cell-Derived Neurons in Hereditary Spastic Paraplegia
Published on: February 9, 2020
Impaired neural differentiation of MPS IIIA patient induced pluripotent stem cell-derived neural progenitor cells
Rebecca J Lehmann1,2, Lachlan A Jolly3,4, Brett V Johnson3,4
1Genetics and Molecular Pathology, SA Pathology (at the Women's and Children's Hospital), 72 King William Rd, North Adelaide, SA 5006, Australia.
Abstract:
Mucopolysaccharidosis type IIIA (MPS IIIA) is characterised by a progressive neurological decline leading to early death. It is caused by bi-allelic loss-of-function mutations in SGSH encoding sulphamidase, a lysosomal enzyme required for heparan sulphate glycosaminoglycan (HS GAG) degradation, that results in the progressive build-up of HS GAGs in multiple tissues most notably the central nervous system (CNS). Skin fibroblasts from two MPS IIIA patients who presented with an intermediate and a severe clinical phenotype, respectively, were reprogrammed into induced pluripotent stem cells (iPSCs). The intermediate MPS IIIA iPSCs were then differentiated into neural progenitor cells (NPCs) and subsequently neurons. The patient derived fibroblasts, iPSCs, NPCs and neurons all displayed hallmark biochemical characteristics of MPS IIIA including reduced sulphamidase activity and increased accumulation of an MPS IIIA HS GAG biomarker. Proliferation of MPS IIIA iPSC-derived NPCs was reduced compared to control, but could be partially rescued by reintroducing functional sulphamidase enzyme, or by doubling the concentration of the mitogen fibroblast growth factor 2 (FGF2). Whilst both control heparin, and MPS IIIA HS GAGs had a similar binding affinity for FGF2, only the latter inhibited FGF signalling, suggesting accumulated MPS IIIA HS GAGs disrupt the FGF2:FGF2 receptor:HS signalling complex. Neuronal differentiation of MPS IIIA iPSC-derived NPCs was associated with a reduction in the expression of neuronal cell marker genes βIII-TUBULIN, NF-H and NSE, revealing reduced neurogenesis compared to control. A similar result was achieved by adding MPS IIIA HS GAGs to the culture medium during neuronal differentiation of control iPSC-derived NPCs. This study demonstrates the generation of MPS IIIA iPSCs, and NPCs, the latter of which display reduced proliferation and neurogenic capacity. Reduced NPC proliferation can be explained by a model in which soluble MPS IIIA HS GAGs compete with cell surface HS for FGF2 binding. The mechanism driving reduced neurogenesis remains to be determined but appears downstream of MPS IIIA HS GAG accumulation.
Insights
Mucopolysaccharidosis type IIIA (MPS IIIA) patient cells show impaired neural progenitor cell proliferation and neurogenesis due to HS GAG buildup. This study generated MPS IIIA induced pluripotent stem cells and NPCs to investigate disease mechanisms.
Area of Science:
- Biochemistry
- Genetics
- Neuroscience
Background:
- Mucopolysaccharidosis type IIIA (MPS IIIA) is a genetic disorder causing progressive neurological decline.
- It results from mutations in the SGSH gene, leading to impaired heparan sulphate glycosaminoglycan (HS GAG) degradation and accumulation.
- Accumulated HS GAGs, particularly in the central nervous system (CNS), contribute to disease pathology.
Purpose of the Study:
- To generate and characterize induced pluripotent stem cells (iPSCs) and neural progenitor cells (NPCs) from MPS IIIA patients.
- To investigate the impact of HS GAG accumulation on NPC proliferation and neuronal differentiation.
- To explore the role of HS GAGs in disrupting FGF2 signaling pathways.
Main Methods:
- Reprogramming skin fibroblasts from MPS IIIA patients into iPSCs.
- Differentiating iPSCs into NPCs and subsequently neurons.
- Assessing sulphamidase activity, HS GAG levels, NPC proliferation, and gene expression during neuronal differentiation.
- Investigating FGF2 binding affinity and signaling inhibition by HS GAGs.
Main Results:
- MPS IIIA iPSCs, NPCs, and neurons exhibited reduced sulphamidase activity and increased HS GAG accumulation.
- MPS IIIA iPSC-derived NPCs showed reduced proliferation, partially rescued by functional sulphamidase or increased FGF2.
- Accumulated HS GAGs inhibited FGF2 signaling, and impaired neurogenesis was observed in MPS IIIA NPCs and control NPCs exposed to MPS IIIA HS GAGs.
Conclusions:
- Generation of MPS IIIA iPSCs and NPCs provides a valuable model for studying the disease.
- Accumulated HS GAGs in MPS IIIA disrupt FGF2 signaling, leading to reduced NPC proliferation.
- MPS IIIA HS GAGs impair neurogenesis, with mechanisms requiring further elucidation.
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