The YdiU Domain Modulates Bacterial Stress Signaling through Mn2+-Dependent UMPylation
CELL REPORTS
Authors: Yang, Yinlong; Yue, Yingying; Song, Nannan; Li, Cuiling; Yuan, Zenglin; Wang, Yan; Ma, Yue; Li, Hui; Zhang, Fengyu; Wang, Weiwei; Jia, Haihong; Li, Peng; Li, Xiaobing; Wang, Qi; Ding, Zhe; Dong, Hongjie; Gu, Lichuan; Li, Bingqing
Abstract
Sensing stressful conditions and adjusting the cellular metabolism to adapt to the environment are essential activities for bacteria to survive in variable situations. Here, we describe a stress-related protein, YdiU, and characterize YdiU as an enzyme that catalyzes the covalent attachment of uridine-5 '-monophosphate to a protein tyrosine/histidine residue, an unusual modification defined as UMPylation. Mn2+ serves as an essential co-factor for YdiU-mediated UMPylation. UTP and Mn2+ binding converts YdiU to an aggregate-prone state facilitating the recruitment of chaperones. The UMPylation of chaperones prevents them from binding co-factors or clients, thereby impairing their function. Consistent with the recent finding that YdiU acts as an AMPylator, we further demonstrate that the self-AMPylation of YdiU padlocks its chaperone-UMPylation activity. A detailed mechanism is proposed based on the crystal structures of Apo-YdiU and YdiU-AMPNPP-Mn2+ and on molecular dynamics simulation models of YdiU-UTP-Mn2+ and YdiU-UTP-peptide. In vivo data demonstrate that YdiU effectively protects Salmonella from stress-induced ATP depletion through UMPylation.
Vitamins Modulate the Expression of Antioxidant Genes in Progesterone-Treated Pancreatic beta Cells: Perspectives for Gestational Diabetes Management
INTERNATIONAL JOURNAL OF ENDOCRINOLOGY
Authors: Borcari, Nathalia Ruder; dos Santos, Jeniffer Farias; Reigado, Gustavo Roncoli; Freitas, Bruna Leticia; Araujo, Mariana da Silva; Nunes, Viviane Abreu
Abstract
Gestational diabetes (GD) is a condition defined as carbohydrate intolerance and hyperglycemia beginning in the second trimester of pregnancy, which overlaps with the progesterone exponential increase. Progesterone has been shown to cause pancreatic beta-cell death by a mechanism dependent on the generation of reactive oxygen species and oxidative stress. Herein, we studied the effect of this hormone on the expression of 84 genes related to oxidative stress and oxidant defense in pancreatic RINm5F cell lineage. Cells were incubated with 0.1, 1.0, or 100 mu M progesterone for 6 or 24 h, in the presence or absence of the vitamins E and C. Among the investigated genes, five of them had their expression increased, at least 2-fold, in two different concentrations independently of the time of incubation, or at the same concentration at the different time points, including those that encode for stearoyl-CoA desaturase 1 (Scd1), dual oxidase 1 (Duox1), glutathione peroxidase 6 (GPx6), heme oxygenase 1 (Hmox1), and heat shock protein a1a (Hspa1a). Vitamins E and C were able to increase, in progesterone-treated cells, the expression of genes with antioxidant function such asHmox1, but decreasedScd1expression, a gene with prooxidant function. At cytoplasmic level, progesterone positively modulatedHmox1andHspa1acontent. These results suggest that the protein encoded by these genes might protect cells against progesterone induced-oxidative damage, opening perspectives to elucidate the molecular mechanism involved in progesterone action in GD, as well as for the development of antioxidant strategies for the prevention and treatment of this disease.