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Published on: March 3, 2021
Serine biosynthesis as a novel therapeutic target for dilated cardiomyopathy
Isaac Perea-Gil1,2, Timon Seeger3,4, Arne A N Bruyneel2,5
1Department of Cardiothoracic Surgery, Stanford University School of Medicine, 240 Pasteur Dr, Stanford, CA 94304, USA.
Insights
Researchers identified a novel treatment for genetic dilated cardiomyopathy (DCM) by targeting serine biosynthesis. This genotype-agnostic approach uses small molecule kinase inhibitors to restore heart cell function in DCM models.
Area of Science:
- Cardiology
- Genetics
- Biochemistry
Background:
- Genetic dilated cardiomyopathy (DCM) is a major cause of heart failure with unknown molecular mechanisms.
- Lack of disease-specific therapies for familial DCM highlights the need for novel therapeutic targets.
Purpose of the Study:
- To discover novel therapeutic targets for DCM using patient-specific induced pluripotent stem cell-derived cardiomyocytes (iPSC-CMs).
- To develop and utilize a phenotypic screening assay for identifying potential DCM treatments.
Main Methods:
- Developed a DCM model using patient-derived iPSCs with a TNNT2 mutation and CRISPR gene editing.
- Performed phenotypic screening with small molecule kinase inhibitors (SMKIs) on DCM iPSC-CMs.
- Investigated the molecular mechanisms, including metabolic pathways and gene expression, underlying the treatment response.
Main Results:
- Combinatorial treatment with two SMKIs (Gö 6976 and SB 203580) rescued contractile dysfunction in DCM iPSC-CMs with various genetic mutations.
- Treatment upregulated serine, glycine, and one-carbon metabolism, improved mitochondrial function, and increased ATP levels.
- The therapeutic effect was mediated by the ATF4 transcription factor and its downstream targets, including PHGDH and TRIB3.
Conclusions:
- Established a phenotypic screening platform using DCM iPSC-CMs for therapeutic target discovery.
- SMKI combination therapy ameliorated contractile and metabolic dysfunction via the ATF4-dependent serine biosynthesis pathway.
- Modulating serine biosynthesis offers a potential novel, genotype-agnostic therapeutic strategy for genetic DCM.
Aims:
Genetic dilated cardiomyopathy (DCM) is a leading cause of heart failure. Despite significant progress in understanding the genetic aetiologies of DCM, the molecular mechanisms underlying the pathogenesis of familial DCM remain unknown, translating to a lack of disease-specific therapies. The discovery of novel targets for the treatment of DCM was sought using phenotypic sceening assays in induced pluripotent stem cell-derived cardiomyocytes (iPSC-CMs) that recapitulate the disease phenotypes in vitro.
Methods And Results:
Using patient-specific iPSCs carrying a pathogenic TNNT2 gene mutation (p.R183W) and CRISPR-based genome editing, a faithful DCM model in vitro was developed. An unbiased phenotypic screening in TNNT2 mutant iPSC-derived cardiomyocytes (iPSC-CMs) with small molecule kinase inhibitors (SMKIs) was performed to identify novel therapeutic targets. Two SMKIs, Gö 6976 and SB 203580, were discovered whose combinatorial treatment rescued contractile dysfunction in DCM iPSC-CMs carrying gene mutations of various ontologies (TNNT2, TTN, LMNA, PLN, TPM1, LAMA2). The combinatorial SMKI treatment upregulated the expression of genes that encode serine, glycine, and one-carbon metabolism enzymes and significantly increased the intracellular levels of glucose-derived serine and glycine in DCM iPSC-CMs. Furthermore, the treatment rescued the mitochondrial respiration defects and increased the levels of the tricarboxylic acid cycle metabolites and ATP in DCM iPSC-CMs. Finally, the rescue of the DCM phenotypes was mediated by the activating transcription factor 4 (ATF4) and its downstream effector genes, phosphoglycerate dehydrogenase (PHGDH), which encodes a critical enzyme of the serine biosynthesis pathway, and Tribbles 3 (TRIB3), a pseudokinase with pleiotropic cellular functions.
Conclusions:
A phenotypic screening platform using DCM iPSC-CMs was established for therapeutic target discovery. A combination of SMKIs ameliorated contractile and metabolic dysfunction in DCM iPSC-CMs mediated via the ATF4-dependent serine biosynthesis pathway. Together, these findings suggest that modulation of serine biosynthesis signalling may represent a novel genotype-agnostic therapeutic strategy for genetic DCM.
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