CFTR-PTEN–dependent mitochondrial metabolic dysfunction promotes Pseudomonas aeruginosa airway infection

SA Riquelme, C Lozano, AM Moustafa… - Science translational …, 2019 - science.org
SA Riquelme, C Lozano, AM Moustafa, K Liimatta, KL Tomlinson, C Britto, S Khanal, SK Gill…
Science translational medicine, 2019science.org
Phosphatase and tensin homolog deleted on chromosome 10 (PTEN) is a tumor suppressor
best known for regulating cell proliferation and metabolism. PTEN forms a complex with the
cystic fibrosis (CF) transmembrane conductance regulator (CFTR) at the plasma membrane,
and this complex is known to be functionally impaired in CF. Here, we demonstrated that the
combined effect of PTEN and CFTR dysfunction stimulates mitochondrial activity, resulting in
excessive release of succinate and reactive oxygen species. This environment promoted the …
Phosphatase and tensin homolog deleted on chromosome 10 (PTEN) is a tumor suppressor best known for regulating cell proliferation and metabolism. PTEN forms a complex with the cystic fibrosis (CF) transmembrane conductance regulator (CFTR) at the plasma membrane, and this complex is known to be functionally impaired in CF. Here, we demonstrated that the combined effect of PTEN and CFTR dysfunction stimulates mitochondrial activity, resulting in excessive release of succinate and reactive oxygen species. This environment promoted the colonization of the airway by Pseudomonas aeruginosa, bacteria that preferentially metabolize succinate, and stimulated an anti-inflammatory host response dominated by immune-responsive gene 1 (IRG1) and itaconate. The recruitment of myeloid cells induced by these strains was inefficient in clearing the infection and increased numbers of phagocytes accumulated under CFTR-PTEN axis dysfunction. This central metabolic defect in mitochondrial function due to impaired PTEN activity contributes to P. aeruginosa infection in CF.
AAAS