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Biology subjects

Westerhoff, M.

Publications and source records attributed to Westerhoff, M..

4 recordsLinked to original sources

Differential responses of murine embryonic stem cells (mESC) and their endothelial progeny to doxorubicin and pharmacological inhibitors of DNA repair and DNA damage response

The clinical use of the anticancer drug doxorubicin (Dox) is limited by irreversible cardiotoxicity. The detailed molecular mechanisms involved and the pathophysiological relevance of different cardiac cell types, including progenitor cells, are still unclear. Here, we investigated stress responses of murine embryonic stem cells (mESC), endothelial progenitor cells (EC d4) and terminally differentiated endothelial-like cells (EC d6) following exposure to Dox and selected pharmacological inhibitors of DNA repair and DNA damage response (DDR) (RAD51i B02 and HDACi entinostat (EST)). We found that EC d4 exhibited a pronounced Dox hypersensitivity as compared to both mESC and EC d6, which was independent of drug transport. Analysis of EdU incorporation and replication fork progression following drug treatment revealed substantial agent-specific differences between mESC and the various differentiation stages. Furthermore, cellular susceptibility to drug-induced formation of DNA damage (i.e. DSB and SSB) also changes with ongoing differentiation and drug treatment, with mESC and EC d4 / EC d6 being particular prone to enhanced residual SSB and DSB levels, respectively. Dox treatment of EC d4 did not affect their differentiation into EC d6, but caused multiple functional impairments of the surviving EC d6 progeny, including defects in mitochondrial homeostasis, barrier function related to cell-cell adhesion factors ZO1 and VE-cadherin, response to cytokine stimulation as well as LDL uptake. To summarize, we show substantial differences in the response of mESC, EC d4 and EC d6 to Dox and pharmacological inhibitors of DNA repair and DDR. Most important, treatment of EC d4 results in pronounced persisting functional impairments of differentiated EC d6, pointing to a transient particularly drug-sensitive time window during endothelial differentiation. These findings are important for hazard assessment in developmental toxicology and regenerative medicine in the context of anticancer drug-induced normal tissue damage. Highlights- EC d4 are most vulnerable towards Dox-induced cytotoxicity independent of drug transport - EC d4 and EC d6 display higher steady-state levels of drug-induced DSB as compared to mESC - Drug-induced replication stress is highest in mESC and decreases with differentiation. - Both Dox and DNA repair/DDR inhibitors damage mitochondrial homeostasis in EC d4 and EC d6 - Terminally differentiated EC d6 derived from drug-treated EC d4 display multiple functional impairments

pharmacology and toxicology↗

Preconditioning of human iPSCs with doxorubicin causes genome-wide transcriptional reprogramming in iPSC-derived cardiomyocytes linked to mitochondrial dysfunction and impaired cardiac regeneration

BackgroundThe anthracycline doxorubicin (Dox) is a widely used genotoxic chemotherapeutic drug with known dose-limiting cardiotoxic effects. How Dox-induced damage either to cardiomyocytes or to cardiac stem cells, which may compromise cardiac regeneration, contributes to cardiotoxicity remains poorly understood. MethodsHere we used a human induced pluripotent stem cell (iPSC)-based model system to determine the sensitivity of stem cells (iPSCs) and iPSC-derived derived cardiomyocytes (iCMs) applying different treatment regimens of Dox. Next to a broad range of methods to determine cellular and mitochondrial functions we performed an in-depth whole genome transcriptome profiling in iPSCs as well as iCMs. ResultsAs compared to their differentiated counterparts, iPSCs are highly sensitive against even short pulse-treatments with low Dox concentrations. Using such rather mild treatment conditions, we observed major mitochondrial impairments as demonstrated by increased mitochondrial fragmentation, persistent loss of mitochondrial membrane potential, and reduced ATP levels, while neither a markedly increased nuclear DNA damage response nor apoptosis were detected. Albeit mitochondrial dysfunction was not accompanied by changes in mitochondrial ultrastructure or altered OXPHOS complex assembly, mitochondrial genome (mtDNA) organization was altered. This points to a possible role of mtDNA remodelling for contributing to the high susceptibility of iPSCs to Dox. Whole genome transcriptome profiling revealed major differences in the transcriptional response to Dox treatment between iPSCs and iCMs. We could show that a moderate and transient exposure of iPSCs to Dox is sufficient to cause major transcriptional changes as for example reflected by the downregulation of numerous pivotal genes regulating cellular homeostasis and energy metabolism in iPSCs. Furthermore, pulse-treatment with Dox at the iPSC stage, termed preconditioning here, shifts the global transcriptional landscape of iCMs towards the expression of genes associated with impaired cardiac muscle regeneration, disrupted energy metabolism, altered muscle contraction, and increased fibrosis. ConclusionsOur findings support the hypothesis that Dox-induced mitochondrial dysfunction and transcriptional preconditioning in stem cells results in an impaired regenerative capacity after differentiation. This highlights a potential critical role of stem cells in mediating Dox-induced cardiotoxicity.

cell biology↗

Prebiotic proanthocyanidins inhibit bile reflux-induced esophageal adenocarcinoma through reshaping the gut microbiome and esophageal metabolome

The gut and local esophageal microbiome progressively shift from healthy commensal bacteria to inflammatory-linked pathogenic bacteria in patients with gastroesophageal reflux disease, Barretts esophagus and esophageal adenocarcinoma (EAC). However, mechanisms by which microbial communities and metabolites contribute to reflux-driven EAC remain incompletely understood and challenging to target. Herein, we utilized a rat reflux-induced EAC model to investigate targeting the gut microbiome-esophageal metabolome axis with cranberry proanthocyanidins (C-PAC) to inhibit EAC progression. Sprague Dawley rats, with or without reflux-induction received water or C-PAC ad libitum (700 {micro}g/rat/day) for 25 or 40 weeks. C-PAC exerted prebiotic activity abrogating reflux-induced dysbiosis, and mitigating bile acid metabolism and transport, culminating in significant inhibition of EAC through TLR/NF-{kappa}B/P53 signaling cascades. At the species level, C-PAC mitigated reflux-induced pathogenic bacteria (Clostridium perfringens, Escherichia coli, and Proteus mirabilis). C-PAC specifically reversed reflux-induced bacterial, inflammatory and immune-implicated proteins and genes including Ccl4, Cd14, Crp, Cxcl1, Il6, Il1{beta}, Lbp, Lcn2, Myd88, Nfkb1, Tlr2 and Tlr4 aligning with changes in human EAC progression, as confirmed through public databases. C-PAC is a safe promising dietary constituent that may be utilized alone or potentially as an adjuvant to current therapies to prevent EAC progression through ameliorating reflux-induced dysbiosis, inflammation and cellular damage.

cancer biology↗

JNK signalling regulates self-renewal of proliferative urine-derived renal progenitor cells via inhibition of ferroptosis

With a global increase in chronic kidney disease patients, alternatives to dialysis and organ transplantation are needed. Stem cell-based therapies could be one possibility to treat chronic kidney disease. Here, we used multipotent urine-derived renal progenitor cells (UdRPCs) to study nephrogenesis. UdRPCs treated with the JNK inhibitor-AEG3482, displayed decreased proliferation and downregulated transcription of cell cycle-associated genes as well as the kidney progenitor markers -SIX2, CITED1, and SALL1. In addition, levels of activated SMAD2/3, which is associated with the maintenance of self-renewal in UdRPCs, were decreased. JNK inhibition resulted in less efficient oxidative phosphorylation and more lipid peroxidation via ferroptosis-an iron-dependent non-apoptotic cell death pathway linked to various forms of kidney disease. Our study reveals the importance of JNK signalling in maintaining self-renewal as well as protection against ferroptosis in SIX2-positive UdRPCs. We propose that UdRPCs can be used for modelling ferroptosis-induced kidney diseases.

cell biology↗