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Published on: June 3, 2018
Cardiomyocyte protein O-GlcNAcylation is regulated by GFAT1 not GFAT2
Adam A Nabeebaccus1, Sharwari Verma1, Anna Zoccarato1
1BHF Centre of Excellence King's College London, The James Black Centre, 125 Coldharbour Lane, London, SE5 9NU, UK.
Insights
Glutamine-fructose amidotransferase (GFAT) isoforms GFAT1 and GFAT2 have distinct roles in the heart. GFAT1 is the main isoform in cardiomyocytes, while GFAT2 is found only in fibroblasts, impacting cardiac cell function.
Area of Science:
- Biochemistry
- Cardiovascular Biology
- Cell Biology
Background:
- The hexosamine biosynthesis pathway (HBP) plays a dual role in cardiac injury responses.
- Glutamine-fructose amidotransferase (GFAT) regulates HBP flux, with two isoforms, GFAT1 and GFAT2, present in the heart.
- Conflicting data exists regarding the specific roles of GFAT1 and GFAT2 in cardiac stress responses.
Purpose of the Study:
- To elucidate the cell-specific expression and functional significance of GFAT1 and GFAT2 in the heart.
- To determine which GFAT isoform is predominantly responsible for HBP activity in cardiomyocytes during stress.
Main Methods:
- Targeted knockdown of GFPT1 and GFPT2 genes in neonatal rat cardiac cells.
- Measurement of HBP activity and O-GlcNAcylation levels.
- Immunostaining for GFAT1 and GFAT2 in rodent cardiac tissues and human iPSC-derived cardiomyocytes.
- Analysis of human heart single-cell sequencing data for GFPT1 and GFPT2 expression.
Main Results:
- Knockdown of GFPT1, but not GFPT2, reduced stress-induced O-GlcNAcylation in cardiac cells, indicating GFAT1's role in HBP activity.
- GFAT1 was expressed in both cardiac myocytes and fibroblasts, whereas GFAT2 was exclusively found in fibroblasts in rodent and human heart tissues.
- Human iPSC-derived cardiomyocytes expressed GFAT1 but lacked GFAT2 protein.
Conclusions:
- GFAT1 is the primary isoform in cardiomyocytes, while GFAT2 is specific to cardiac fibroblasts.
- Cell-specific expression of GFAT isoforms likely contributes to differential effects on cardiac cell function.
- Understanding GFAT isoform distribution is crucial for studying HBP regulation and therapeutic strategies in the heart.
Abstract:
In response to cardiac injury, increased activity of the hexosamine biosynthesis pathway (HBP) is linked with cytoprotective as well as adverse effects depending on the type and duration of injury. Glutamine-fructose amidotransferase (GFAT; gene name gfpt) is the rate-limiting enzyme that controls flux through HBP. Two protein isoforms exist in the heart called GFAT1 and GFAT2. There are conflicting data on the relative importance of GFAT1 and GFAT2 during stress-induced HBP responses in the heart. Using neonatal rat cardiac cell preparations, targeted knockdown of GFPT1 and GFPT2 were performed and HBP activity measured. Immunostaining with specific GFAT1 and GFAT2 antibodies was undertaken in neonatal rat cardiac preparations and murine cardiac tissues to characterise cell-specific expression. Publicly available human heart single cell sequencing data was interrogated to determine cell-type expression. Western blots for GFAT isoform protein expression were performed in human cardiomyocytes derived from induced pluripotent stem cells (iPSCs). GFPT1 but not GFPT2 knockdown resulted in a loss of stress-induced protein O-GlcNAcylation in neonatal cardiac cell preparations indicating reduced HBP activity. In rodent cells and tissue, immunostaining for GFAT1 identified expression in both cardiac myocytes and fibroblasts whereas immunostaining for GFAT2 was only identified in fibroblasts. Further corroboration of findings in human heart cells identified an enrichment of GFPT2 gene expression in cardiac fibroblasts but not ventricular myocytes whereas GFPT1 was expressed in both myocytes and fibroblasts. In human iPSC-derived cardiomyocytes, only GFAT1 protein was expressed with an absence of GFAT2. In conclusion, these results indicate that GFAT1 is the primary cardiomyocyte isoform and GFAT2 is only present in cardiac fibroblasts. Cell-specific isoform expression may have differing effects on cell function and should be considered when studying HBP and GFAT functions in the heart.
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