De Novo Mutations Affecting the Catalytic C alpha Subunit of PP2A, PPP2CA, Cause Syndromic Intellectual Disability Resembling Other PP2A-Related Neurodevelopmental Disorders
AMERICAN JOURNAL OF HUMAN GENETICS
Authors: Reynhout, Sara; Jansen, Sandra; Haesen, Dorien; van Belle, Siska; de Munnik, Sonja A.; Bongers, Ernie M. H. F.; Schieving, Jolanda H.; Marcelis, Carlo; Amiel, Jeanne; Rio, Marlene; Mclaughlin, Heather; Ladda, Roger; Sell, Susan; Kriek, Marjolein; Peeters-Scholte, Cacha M. P. C. D.; Terhal, Paulien A.; van Gassen, Koen L.; Verbeek, Nienke; Henry, Sonja; Schwoerer, Jessica Scott; Malik, Saleem; Revencu, Nicole; Ferreira, Carlos R.; Macnamara, Ellen; Braakman, Hilde M. H.; Brimble, Elise; Ruznikov, Maura R. Z.; Wagner, Matias; Harrer, Philip; Wieczorek, Dagmar; Kuechler, Alma; Tziperman, Barak; Barel, Ortal; de Vries, Bert B. A.; Gordon, Christopher T.; Janssens, Veerle; Vissers, Lisenka E. L. M.
Abstract
Type 2A protein phosphatases (PP2As) are highly expressed in the brain and regulate neuronal signaling by catalyzing phospho-Ser/Thr dephosphorylations in diverse substrates. PP2A holoenzymes comprise catalytic C-, scaffolding A-, and regulatory B-type subunits, which determine substrate specificity and physiological function. Interestingly, de novo mutations in genes encoding A- and B-type sub-units have recently been implicated in intellectual disability (ID) and developmental delay (DD). We now report 16 individuals with mild to profound ID and DD and a de novo mutation in PPP2CA, encoding the catalytic C alpha, subunit. Other frequently observed features were severe language delay (71%), hypotonia (69%), epilepsy (63%), and brain abnormalities such as ventriculomegaly and a small corpus callosum (67%). Behavioral problems, including autism spectrum disorders, were reported in 47% of individuals, and three individuals had a congenital heart defect. PPP2CA de novo mutations included a partial gene deletion, a frameshift, three nonsense mutations, a single amino acid duplication, a recurrent mutation, and eight non-recurrent missense mutations. Functional studies showed complete PP2A dysfunction in four individuals with seemingly milder ID, hinting at haploinsufficiency. Ten other individuals showed mutation-specific biochemical distortions, including poor expression, altered binding to the A subunit and specific B-type subunits, and impaired phosphatase activity and C-terminal methylation. Four were suspected to have a dominant-negative mechanism, which correlated with severe ID. Two missense variants affecting the same residue largely behaved as wild-type in our functional assays. Overall, we found that pathogenic PPP2CA variants impair PP2A-1356(delta) functionality, suggesting that PP2A-related neurodevelopmental disorders constitute functionally converging ID syndromes.
Aging increases vulnerability to stress-induced depression via upregulation of NADPH oxidase in mice
COMMUNICATIONS BIOLOGY
Authors: Lee, Jung-Eun; Kwon, Hye-Jin; Choi, Juli; Seo, Ji-Seon; Han, Pyung-Lim
Abstract
Brain aging proceeds with cellular and molecular changes in the limbic system. Aging-dependent changes might affect emotion and stress coping, yet the underlying mechanisms remain unclear. Here, we show aged (18-month-old) mice exhibit upregulation of NADPH oxidase and oxidative stress in the hippocampus, which mirrors the changes in young (2-month-old) mice subjected to chronic stress. Aged mice that lack p47phox, a key subunit of NADPH oxidase, do not show increased oxidative stress. Aged mice exhibit depression-like behavior following weak stress that does not produce depressive behavior in young mice. Aged mice have reduced expression of the epigenetic factor SUV39H1 and its upstream regulator p-AMPK, and increased expression of Ppp2ca in the hippocampus-changes that occur in young mice exposed to chronic stress. SUV39H1 mediates stress- and aging-induced sustained upregulation of p47phox and oxidative stress. These results suggest that aging increases susceptibility to stress by upregulating NADPH oxidase in the hippocampus. Jung-Eun Lee et al. show that aged mice have increased oxidative stress and NADPH activity in the hippocampus which is associated with increased susceptibility to stress. Upregulation of NADPH oxidase, due to sustained p47phox expression, was caused by a decrease in SUV39H1 levels, highlighting an important mechanism regulating aging-induced stress susceptibility.