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The Use of Primary Human Fibroblasts for Monitoring Mitochondrial Phenotypes in the Field of Parkinson's Disease
Published on: October 3, 2012
Human INCL fibroblasts display abnormal mitochondrial and lysosomal networks and heightened susceptibility to
Bailey Balouch1, Halle Nagorsky1, Truc Pham2
1Neuroscience Program, Union College, Schenectady, New York, United States of America.
Insights
Infantile Neuronal Ceroid Lipofuscinosis (INCL) involves lysosomal storage and neurodegeneration due to Palmitoyl Protein Thioesterase 1 (PPT1) deficiency. This study reveals cellular abnormalities and heightened oxidative stress in INCL fibroblasts, suggesting potential therapeutic avenues.
Area of Science:
- Biochemistry
- Cell Biology
- Genetics
Background:
- Infantile Neuronal Ceroid Lipofuscinosis (INCL) is a severe pediatric neurodegenerative disease.
- It stems from a deficiency in the lysosomal enzyme Palmitoyl Protein Thioesterase 1 (PPT1).
- The precise molecular mechanisms driving INCL pathology, particularly the role of oxidative stress, are not well understood.
Purpose of the Study:
- To conduct a detailed cellular characterization of human PPT1-deficient fibroblasts from INCL patients.
- To investigate the cellular and organellar consequences of PPT1 deficiency.
- To explore the potential involvement of oxidative stress in INCL pathogenesis.
Main Methods:
- Cultured human fibroblasts with compound heterozygous Met1Ile and Tyr247His mutations in the PPT1 gene.
- Microscopy to assess lysosomal and mitochondrial morphology and autofluorescence.
- Assessment of cell susceptibility to reactive oxygen species (ROS).
Main Results:
- Detected autofluorescence storage material and abnormalities in lysosomal and mitochondrial structures.
- Observed increased lysosomal biogenesis and association with endoplasmic reticulum stress.
- Demonstrated heightened susceptibility of INCL fibroblasts to ROS-induced cell death, indicating elevated endogenous ROS.
Conclusions:
- Cellular and organellar dysfunctions, including lysosomal and mitochondrial abnormalities, are key features of INCL.
- Oxidative stress plays a significant role in INCL pathology.
- Partial enzyme restoration may be possible, and targeting oxidative stress could be a therapeutic strategy.
Abstract:
Infantile Neuronal Ceroid Lipofuscinosis (INCL) is a pediatric neurodegenerative disorder characterized by progressive retinal and central nervous system deterioration during infancy. This lysosomal storage disorder results from a deficiency in the Palmitoyl Protein Thioesterase 1 (PPT1) enzyme-a lysosomal hydrolase which cleaves fatty acid chains such as palmitate from lipid-modified proteins. In the absence of PPT1 activity, these proteins fail to be degraded, leading to the accumulation of autofluorescence storage material in the lysosome. The underlying molecular mechanisms leading to INCL pathology remain poorly understood. A role for oxidative stress has been postulated, yet little evidence has been reported to support this possibility. Here we present a comprehensive cellular characterization of human PPT1-deficient fibroblast cells harboring Met1Ile and Tyr247His compound heterozygous mutations. We detected autofluorescence storage material and observed distinct organellar abnormalities of the lysosomal and mitochondrial structures, which supported previous postulations about the role of ER, mitochondria and oxidative stress in INCL. An increase in the number of lysosomal structures was found in INCL patient fibroblasts, which suggested an upregulation of lysosomal biogenesis, and an association with endoplasmic reticulum stress response. The mitochondrial network also displayed abnormal spherical punctate morphology instead of normal elongated tubules with extensive branching, supporting the involvement of mitochondrial and oxidative stress in INCL cell death. Autofluorescence accumulation and lysosomal pathologies can be mitigated in the presence of conditioned wild type media suggesting that a partial restoration via passive introduction of the enzyme into the cellular environment may be possible. We also demonstrated, for the first time, that human INCL fibroblasts have a heightened susceptibility to exogenous reactive oxygen species (ROS)-induced cell death, which suggested an elevated basal level of endogenous ROS in the mutant cell. Collectively, these findings support the role of intracellular organellar networks in INCL pathology, possibly due to oxidative stress.
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