Abstract / Summary
Background: Barth syndrome (BTHS) is an X-linked mitochondrial disorder caused by loss-of-function mutations in TAFAZZIN (TAZ), resulting in defective cardiolipin (CL) remodeling, cardiomyopathy, and premature death. The mechanisms linking TAZ deficiency to impaired mitochondrial quality control remain incompletely understood, and there are no disease-modifying therapies available for BTHS. Here, we investigated the role of Acyl-CoA Lysocardiolipin Acyltransferase-1 (ALCAT1), a stress-inducible phospholipid-remodeling enzyme, in BTHS cardiomyopathy.
Methods: Inducible TAZ knockdown (TAZKD) and cardiomyocyte-specific TAZ knockout (TAZcKO) mice were used to determine the effects of genetic ALCAT1 deletion or pharmacological inhibition with Juvenatin, a highly selective small molecule ALCAT1 inhibitor. Cardiac function, exercise capacity, mitochondrial function, lipid remodeling, lysosomal function, and mitophagic flux were assessed.
Results: ALCAT1 was markedly upregulated in TAZ-deficient hearts. Genetic ALCAT1 deletion attenuated cardiac dysfunction in TAZKD mice. Juvenatin similarly improved cardiac function in TAZKD mice and reversed established cardiomyopathy in TAZcKO mice. Genetic or pharmacological ALCAT1 inhibition improved mitochondrial ultrastructure and respiration and reduced mitochondrial oxidative stress. These benefits occurred without correcting the characteristic CL abnormalities caused by TAZ deficiency. Instead, ALCAT1 deletion or inhibition corrected pathological phosphatidylinositol remodeling, normalized phosphoinositide signaling, and restored lysosomal function and mitophagic flux, leading to improved mitochondrial quality control in TAZ-deficient cells.
Conclusions: ALCAT1 contributes to BTHS cardiomyopathy through a CL-independent pathway involving dysregulated phosphatidylinositol/phosphoinositide signaling, lysosomal dysfunction, and impaired mitophagy. Genetic and pharmacological targeting of ALCAT1 restores mitochondrial and cardiac function despite persistent CL abnormalities, establishing ALCAT1 as a promising disease-modifying therapeutic target for BTHS.