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Rais, I.

Publications and source records attributed to Rais, I..

2 recordsLinked to original sources

Metabolic immunity to infection is driven by mitochondrial one-carbon metabolism

As large consumers of cellular metabolites, mitochondria are positioned to compete with invading microbes for the nutrients they require to grow. Yet, little is known of whether cells weaponize mitochondrial metabolism during infection. We found that the transcription factor ATF4 activated a mitochondrial metabolic defense based on the essential B vitamin folate. During infection with the human parasite Toxoplasma gondii, ATF4 increased mitochondrial DNA (mtDNA) levels by driving the one-carbon (1C) metabolism processes that occur in mitochondria and use folate. The activation of ATF4 depended on host detection of parasite effector proteins, and restricted parasite growth by limiting its access to folate(s) required for dTMP synthesis. Impairing host mitochondrial 1C metabolism downstream of ATF4 promoted parasite growth, while forcing host dependence on mitochondrial 1C metabolism had the opposite effect. ATF4 activation also promoted a host-protective response in a mouse model of Toxoplasma infection. Thus, ATF4 rewires mitochondrial metabolism to activate a folate-based metabolic immunity against Toxoplasma. Our work paves the way for future studies exploring noncanonical defense strategies mediated by mitochondria and the role of folate metabolism during infectious disease. One-Sentence SummaryATF4 rewires mitochondrial metabolism during infection to drive a host-protective response based on folate competition.

cell biology↗

Phosphoinositide- and Collybistin-Dependent Synaptic Clustering of Gephyrin

Gephyrin is the main scaffolding protein at inhibitory synapses clustering glycine and GABA type A receptors. At specific GABAergic synapses, the nucleotide exchange factor collybistin recruits gephyrin to the postsynaptic membrane via interaction with phosphoinositides. However, the molecular mechanisms underlying the formation, maintenance and regulation of collybistin-dependent gephyrin clusters remain poorly understood. This study sheds light on the molecular mechanism of gephyrin cluster formation based on gephyrin self-oligomerization induced by collybistin, leading to the formation of a high-molecular weight (>5 MDa) gephyrin-collybistin complex, which is regulated in two ways: First, plasma-membrane phosphoinositides promote complex formation demonstrating their critical role in membrane targeting and stabilization of gephyrin-collybistin clusters at postsynaptic sites. Second, gephyrin phosphorylation at Ser325 abolishes complex formation with collybistin thus impairing collybistin-dependent gephyrin clustering at GABAergic synapses. Collectively, our data demonstrates a molecular mechanism for synaptic clustering of gephyrin which involves collybistin- and phosphoinositide-dependent formation of high-molecular gephyrin oligomers.

biochemistry↗