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The Human 343delT HSPB5 Chaperone Associated with Early-onset Skeletal Myopathy Causes Defects in Protein Solubility
Katie A Mitzelfelt1, Pattraranee Limphong2, Melinda J Choi3
1From the Department of Biochemistry, University of Utah, Salt Lake City, Utah 84112-5650.
Insights
Mutations in HSPB5 (crystallin, alpha B) cause multisystem disorders. This study shows the 343delT mutation leads to insoluble protein aggregates, suggesting a loss-of-function mechanism for myofibrillar myopathy.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- Mutations in HSPB5 (crystallin, alpha B) are linked to multisystem disorders including cataracts, cardiomyopathy, and skeletal myopathy.
- HSPB5 acts as a heat shock protein and molecular chaperone, crucial for cellular function.
Purpose of the Study:
- To investigate the pathological mechanisms of early-onset myofibrillar myopathy caused by a homozygous recessive HSPB5 343delT mutation.
- To analyze the protein dynamics and cellular effects of the HSPB5 343delT mutation.
Main Methods:
- Utilized induced pluripotent stem cells (iPSCs) from a patient with the 343delT mutation and isogenic controls.
- Employed BHK21 cells lacking endogenous HSPB5 expression for comparative analysis.
- Investigated protein solubility, aggregation, and cellular stress responses upon HSPB5 343delT expression.
Main Results:
- The 343delT mutant HSPB5 protein exhibited extreme insolubility, leading to undetectable levels in patient-derived cells.
- Overexpression of 343delT induced insoluble protein aggregates and cellular stress.
- Co-expression with wild-type (WT) HSPB5 improved 343delT solubility and prevented aggregation, demonstrating an interaction.
Conclusions:
- The study supports a loss-of-function model for HSPB5-related myopathy due to the insolubility and unavailability of the mutant protein.
- Wild-type HSPB5 can solubilize the 343delT mutant, explaining the recessive inheritance pattern and absence of symptoms in carriers.
Abstract:
Mutations of HSPB5 (also known as CRYAB or αB-crystallin), a bona fide heat shock protein and molecular chaperone encoded by the HSPB5 (crystallin, alpha B) gene, are linked to multisystem disorders featuring variable combinations of cataracts, cardiomyopathy, and skeletal myopathy. This study aimed to investigate the pathological mechanisms involved in an early-onset myofibrillar myopathy manifesting in a child harboring a homozygous recessive mutation in HSPB5, 343delT. To study HSPB5 343delT protein dynamics, we utilize model cell culture systems including induced pluripotent stem cells derived from the 343delT patient (343delT/343delT) along with isogenic, heterozygous, gene-corrected control cells (WT KI/343delT) and BHK21 cells, a cell line lacking endogenous HSPB5 expression. 343delT/343delT and WT KI/343delT-induced pluripotent stem cell-derived skeletal myotubes and cardiomyocytes did not express detectable levels of 343delT protein, contributable to the extreme insolubility of the mutant protein. Overexpression of HSPB5 343delT resulted in insoluble mutant protein aggregates and induction of a cellular stress response. Co-expression of 343delT with WT prevented visible aggregation of 343delT and improved its solubility. Additionally, in vitro refolding of 343delT in the presence of WT rescued its solubility. We demonstrate an interaction between WT and 343delT both in vitro and within cells. These data support a loss-of-function model for the myopathy observed in the patient because the insoluble mutant would be unavailable to perform normal functions of HSPB5, although additional gain-of-function effects of the mutant protein cannot be excluded. Additionally, our data highlight the solubilization of 343delT by WT, concordant with the recessive inheritance of the disease and absence of symptoms in carrier individuals.
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