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Cation-Independent Mannose 6-Phosphate Receptor Deficiency Enhances β-Cell Susceptibility to Palmitate
Aaron C Baldwin1, Aaron Naatz1, Richard N Bohnsack1
1Department of Biochemistry, Medical College of Wisconsin, Milwaukee, Wisconsin, USA.
Abstract:
Palmitate attenuates insulin secretion and reduces the viability of insulin-producing cells. Previous studies identified the aberrant palmitoylation or mispalmitoylation of proteins as one mechanism by which palmitate causes β-cell damage. In this report, we identify a role for lysosomal protein degradation as a mechanism by which β cells defend themselves against excess palmitate. The cation-independent mannose 6-phosphate receptor (CI-MPR) is responsible for the trafficking of mannose 6-phosphate-tagged proteins to lysosomes via Golgi sorting and from extracellular locations through endocytosis. RINm5F cells, which are highly sensitive to palmitate, lack CI-MPR. The reconstitution of CI-MPR expression attenuates the induction of endoplasmic reticulum (ER) stress and the toxic effects of palmitate on RINm5F cell viability. INS832/13 cells express CI-MPR and are resistant to the palmitate-mediated loss of cell viability. The reduction of CI-MPR expression increases the sensitivity of INS832/13 cells to the toxic effects of palmitate treatment. The inhibition of lysosomal acid hydrolase activity by weak base treatment of islets under glucolipotoxic conditions causes islet degeneration that is prevented by the inhibition of protein palmitoylation. These findings indicate that defects in lysosomal function lead to the enhanced sensitivity of insulin-producing cells to palmitate and support a role for normal lysosomal function in the protection of β cells from excess palmitate.
Insights
Beta cells defend against palmitate toxicity through lysosomal protein degradation. Impaired lysosomal function, specifically defects in the cation-independent mannose 6-phosphate receptor (CI-MPR), enhances cell damage from excess palmitate.
Area of Science:
- Cell Biology
- Metabolic Diseases
- Endocrinology
Background:
- Palmitate impairs insulin secretion and beta-cell viability.
- Aberrant protein palmitoylation is a known mechanism of palmitate-induced beta-cell damage.
Purpose of the Study:
- To investigate the role of lysosomal protein degradation in beta-cell defense against palmitate toxicity.
- To elucidate the function of the cation-independent mannose 6-phosphate receptor (CI-MPR) in this protective mechanism.
Main Methods:
- Utilized RINm5F (CI-MPR deficient) and INS832/13 (CI-MPR expressing) cell lines.
- Reconstituted CI-MPR expression in RINm5F cells and reduced CI-MPR expression in INS832/13 cells.
- Assessed endoplasmic reticulum (ER) stress, cell viability, and lysosomal acid hydrolase activity under glucolipotoxic conditions.
Main Results:
- RINm5F cells, lacking CI-MPR, are highly sensitive to palmitate.
- CI-MPR reconstitution in RINm5F cells attenuated ER stress and palmitate toxicity.
- INS832/13 cells expressing CI-MPR are resistant; reduced CI-MPR expression increased palmitate sensitivity.
- Inhibition of lysosomal function in islets exacerbated glucolipotoxicity, which was prevented by inhibiting protein palmitoylation.
Conclusions:
- Lysosomal protein degradation, mediated by CI-MPR, is a critical defense mechanism for beta cells against palmitate.
- Defects in lysosomal function increase beta-cell sensitivity to palmitate-induced damage.
- Maintaining normal lysosomal function is crucial for protecting beta cells from lipotoxicity.
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