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γ-Linolenic acid in maternal milk drives cardiac metabolic maturation

Nature, ISSN: 1476-4687, Vol: 618, Issue: 7964, Page: 365-373
2023
  • 36
    Citations
  • 0
    Usage
  • 86
    Captures
  • 11
    Mentions
  • 267
    Social Media
Metric Options:   Counts1 Year3 Year

Metrics Details

  • Citations
    36
  • Captures
    86
  • Mentions
    11
    • News Mentions
      11
      • 11
  • Social Media
    267
    • Shares, Likes & Comments
      267
      • Facebook
        267

Most Recent News

Author Correction: γ-Linolenic acid in maternal milk drives cardiac metabolic maturation

Nature, Published online: 15 June 2023; doi:10.1038/s41586-023-06316-w Author Correction: γ-Linolenic acid in maternal milk drives cardiac metabolic maturation

Article Description

Birth presents a metabolic challenge to cardiomyocytes as they reshape fuel preference from glucose to fatty acids for postnatal energy production. This adaptation is triggered in part by post-partum environmental changes, but the molecules orchestrating cardiomyocyte maturation remain unknown. Here we show that this transition is coordinated by maternally supplied γ-linolenic acid (GLA), an 18:3 omega-6 fatty acid enriched in the maternal milk. GLA binds and activates retinoid X receptors (RXRs), ligand-regulated transcription factors that are expressed in cardiomyocytes from embryonic stages. Multifaceted genome-wide analysis revealed that the lack of RXR in embryonic cardiomyocytes caused an aberrant chromatin landscape that prevented the induction of an RXR-dependent gene expression signature controlling mitochondrial fatty acid homeostasis. The ensuing defective metabolic transition featured blunted mitochondrial lipid-derived energy production and enhanced glucose consumption, leading to perinatal cardiac dysfunction and death. Finally, GLA supplementation induced RXR-dependent expression of the mitochondrial fatty acid homeostasis signature in cardiomyocytes, both in vitro and in vivo. Thus, our study identifies the GLA–RXR axis as a key transcriptional regulatory mechanism underlying the maternal control of perinatal cardiac metabolism.

Bibliographic Details

Paredes, Ana; Justo-Méndez, Raquel; Jiménez-Blasco, Daniel; Núñez, Vanessa; Calero, Irene; Villalba-Orero, María; Alegre-Martí, Andrea; Fischer, Thierry; Gradillas, Ana; Sant'Anna, Viviane Aparecida Rodrigues; Were, Felipe; Huang, Zhiqiang; Hernansanz-Agustín, Pablo; Contreras, Carmen; Martínez, Fernando; Camafeita, Emilio; Vázquez, Jesús; Ruiz-Cabello, Jesús; Area-Gómez, Estela; Sánchez-Cabo, Fátima; Treuter, Eckardt; Bolaños, Juan Pedro; Estébanez-Perpiñá, Eva; Rupérez, Francisco Javier; Barbas, Coral; Enríquez, José Antonio; Ricote, Mercedes

Springer Science and Business Media LLC

Multidisciplinary

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