Interrelations of Sphingolipid and Lysophosphatidate Signaling with Immune System in Ovarian Cancer
COMPUTATIONAL AND STRUCTURAL BIOTECHNOLOGY JOURNAL
Authors: Meshcheryakova, Anastasia; Svoboda, Martin; Jaritz, Markus; Mungenast, Felicitas; Salzmann, Martina; Pils, Dietmar; Castillo-Tong, Dan Cacsire; Hager, Gudrun; Wolf, Andrea; Braicu, Elena Ioana; Sehouli, Jalid; Lambrechts, Sandrina; Vergote, Ignace; Mahner, Sven; Birner, Peter; Zimmermann, Philip; Brindley, David N.; Heinze, Georg; Zeillinger, Robert; Mechtcheriakova, Diana
Abstract
The sphingolipid and lysophosphatidate regulatory networks impact diverse mechanisms attributed to cancer cells and the tumor immune microenvironment. Deciphering the complexity demands implementation of a holistic approach combined with higher-resolution techniques. We implemented a multi-modular integrative approach consolidating the latest accomplishments in gene expression profiling, prognostic/predictive modeling, next generation digital pathology, and systems biology for epithelial ovarian cancer. We assessed patient-specific transcriptional profiles using the sphingolipid/lysophosphatidate/immune-associated signature. This revealed novel sphingolipid/lysophosphatidate-immune gene-gene associations and distinguished tumor subtypes with immune high/low context. These were characterized by robust differences in sphingolipid-/lysophosphatidate-related checkpoints and the drug response. The analysis also nominates novel survival models for stratification of patients with CD68, LPAR3, .SMPD1 , PPAP2B, and SMPD2 emerging as the most prognostically important genes. Alignment of proprietary data with curated transcriptomic data from public databases across a variety of malignancies (over 600 categories; over 21,000 arrays) showed specificity for ovarian carcinoma. Our systems approach identified novel sphingolipid-lysophosphatidate-immune checkpoints and networks underlying tumor immune heterogeneity and disease outcomes. This holds great promise for delivering novel stratifying and targeting strategies. (C) 2019 The Authors. Published by Elsevier B.V. on behalf of Research Network of Computational and Structural Biotechnology.
Ursodeoxycholic acid upregulates ERK and Akt in the protection of cardiomyocytes against CoCl2
GENETICS AND MOLECULAR RESEARCH
Authors: Hanafi, N. I.; Mohamed, A. S.; Noor, J. Md; Hasani, N. Abdul Hamid; Siran, R.; Osman, N. J.; Ab Rahim, S.; Kadir, S. H. Sheikh Abdul
Abstract
Ursodeoxycholic acid (UDCA) is used to treat liver diseases and demonstrates cardioprotective effects. Accumulation of the plasma membrane sphingolipid sphingomyelin in the heart can lead to atherosclerosis and coronary artery disease. Sphingomyelinases (SMases) break down sphingomyelin, producing ceramide, and inhibition of SMases activity can promote cell survival. We hypothesized that UDCA regulates activation of ERK and Akt survival signaling pathways and SMases in protecting cardiac cells against hypoxia. Neonatal cardiomyocytes were isolated from 0-to 2-day-old Sprague Dawley rats, and given 100 mu M CoCl2, 150 mu M H2O2, or placed in a hypoxia chamber for 24 h. The ameliorative effects of 100-mu M UDCA treatment for 12 h were then assessed using MTS, QuantiGene Plex (for Smpd1 and Smpd2), and SMase assays, beating rate assessment, and western blotting (for ERK and Akt). Data were analyzed by the paired Student t-tests and one-way analyses of variance. Cell viability decreased significantly after H2O2 (85%), CoCl2 (50%), and hypoxia chamber (52%) treatments compared to the untreated control (100%). UDCA significantly counteracted the effects of chamber-and CoCl2--induced hypoxia on viability and beating rate. However, no significant differences were observed in acid SMase gene and protein expression between the untreated, CoCl2, and UDCA-CoCl2 groups. In contrast, neutral SMase gene and protein expression did significantly differ between the latter two groups. ERK and Akt phosphorylation was higher in hypoxic cardiomyocytes treated with UDCA than those given CoCl2 alone. In conclusion, UDCA regulates the activation of survival signaling proteins and SMases in neonatal rat cardiomyocytes during hypoxia.