TfamKnockdown Results in Reduction of mtDNA Copy Number, OXPHOS Deficiency and Abnormalities in Zebrafish Embryos
FRONTIERS IN CELL AND DEVELOPMENTAL BIOLOGY
Authors: Otten, Auke B. C.; Kamps, Rick; Lindsey, Patrick; Gerards, Mike; Pendeville-Samain, Helene; Muller, Marc; van Tienen, Florence H. J.; Smeets, Hubert J. M.
Abstract
High mitochondrial DNA (mtDNA) copy numbers are essential for oogenesis and embryogenesis and correlate with fertility of oocytes and viability of embryos. To understand the pathology and mechanisms associated with low mtDNA copy numbers, we knocked down mitochondrial transcription factor A (tfam), a regulator of mtDNA replication, during early zebrafish development. Reduction oftfamusing a splice-modifying morpholino (MO) resulted in a 42 +/- 17% decrease in mtDNA copy number in embryos at 4 days post fertilization. Morphant embryos displayed abnormal development of the eye, brain, heart, and muscle, as well as a 50 +/- 22% decrease in ATP production. Transcriptome analysis revealed a decrease in protein-encoding transcripts from the heavy strand of the mtDNA, and down-regulation of genes involved in haem production and the metabolism of metabolites, which appear to trigger increased rRNA and tRNA synthesis in the nucleoli. However, this stress or compensatory response appears to fall short as pathology emerges and expression of genes related to eye development are severely down-regulated. Taken together, this study highlights the importance of sufficient mtDNA copies for early zebrafish development. Zebrafish is an excellent model to manipulate the mtDNA bottleneck and study its effect on embryogenesis rapidly and in large numbers of offspring.
T cells with dysfunctional mitochondria induce multimorbidity and premature senescence
SCIENCE
Authors: Desdin-Mico, Gabriela; Soto-Heredero, Gonzalo; Francisco Aranda, Juan; Oller, Jorge; Carrasco, Elisa; Gabande-Rodriguez, Enrique; Maria Blanco, Eva; Alfranca, Arantzazu; Cusso, Lorena; Desco, Manuel; Ibanez, Borja; Gortazar, Arancha R.; Fernandez-Marcos, Pablo; Navarro, Maria N.; Hernaez, Bruno; Alcami, Antonio; Baixauli, Francesc; Mittelbrunn, Maria
Abstract
The effect of immunometabolism on age-associated diseases remains uncertain. In this work, we show that T cells with dysfunctional mitochondria owing to mitochondrial transcription factor A (TFAM) deficiency act as accelerators of senescence. In mice, these cells instigate multiple aging-related features, including metabolic, cognitive, physical, and cardiovascular alterations, which together result in premature death. T cell metabolic failure induces the accumulation of circulating cytokines, which resembles the chronic inflammation that is characteristic of aging ("inflammaging"). This cytokine storm itself acts as a systemic inducer of senescence. Blocking tumor necrosis factor-a signaling or preventing senescence with nicotinamide adenine dinucleotide precursors partially rescues premature aging in mice with Tfam-deficient T cells. Thus, T cells can regulate organismal fitness and life span, which highlights the importance of tight immunometabolic control in both aging and the onset of age-associated diseases.