Maria A. Bauer
University of Graz
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Publication
Featured researches published by Maria A. Bauer.
Cell Cycle | 2011
Eugenia Morselli; Shensi Shen; Christoph Ruckenstuhl; Maria A. Bauer; Guillermo Mariño; Lorenzo Galluzzi; Alfredo Criollo; Mickaël Michaud; Maria Chiara Maiuri; Tokuhiro Chano; Frank Madeo; Guido Kroemer
The tumor suppressor protein p53 tonically suppresses autophagy when it is present in the cytoplasm. This effect is phylogenetically conserved from mammals to nematodes, and human p53 can inhibit autophagy in yeast, as we show here. Bioinformatic investigations of the p53 interactome in relationship to the autophagy-relevant protein network underscored the possible relevance of a direct molecular interaction between p53 and the mammalian ortholog of the essential yeast autophagy protein Atg17, namely RB1-inducible coiled-coil protein 1 (RB1CC1), also called FAK family kinase-interacting protein of 200 KDa (FIP200). Mutational analyses revealed that a single point mutation in p53 (K382R) abolished its capacity to inhibit autophagy upon transfection into p53-deficient human colon cancer or yeast cells. In conditions in which wild-type p53 co-immunoprecipitated with RB1CC1/FIP200, p53K382R failed to do so, underscoring the importance of the physical interaction between these proteins for the control of autophagy. In conclusion, p53 regulates autophagy through a direct molecular interaction with RB1CC1/FIP200, a protein that is essential for the very apical step of autophagy initiation.
Cell Death and Disease | 2012
Nadege Minois; Didac Carmona-Gutierrez; Maria A. Bauer; Patrick Rockenfeller; Tobias Eisenberg; S Brandhorst; Stephan J. Sigrist; Guido Kroemer; Frank Madeo
The naturally occurring polyamine spermidine (Spd) has recently been shown to promote longevity across species in an autophagy-dependent manner. Here, we demonstrate that Spd improves both survival and locomotor activity of the fruit fly Drosophila melanogaster upon exposure to the superoxide generator and neurotoxic agent paraquat. Although survival to a high paraquat concentration (20 mM) was specifically increased in female flies only, locomotor activity and survival could be rescued in both male and female animals when exposed to lower paraquat levels (5 mM). These effects are dependent on the autophagic machinery, as Spd failed to confer resistance to paraquat-induced toxicity and locomotor impairment in flies deleted for the essential autophagic regulator ATG7 (autophagy-related gene 7). Spd treatment did also protect against mild doses of another oxidative stressor, hydrogen peroxide, but in this case in an autophagy-independent manner. Altogether, this study establishes that the protective effects of Spd can be exerted through different pathways that depending on the oxidative stress scenario do or do not involve autophagy.
Cell Death and Disease | 2011
Didac Carmona-Gutierrez; Maria A. Bauer; Julia Ring; Heide Knauer; Tobias Eisenberg; Sabrina Büttner; Christoph Ruckenstuhl; Angela Reisenbichler; Christoph Magnes; Gerald N. Rechberger; Birner-Gruenberger R; Helmut Jungwirth; Kai-Uwe Fröhlich; Frank Sinner; Guido Kroemer; Frank Madeo
The lysosomal endoprotease cathepsin D (CatD) is an essential player in general protein turnover and specific peptide processing. CatD-deficiency is associated with neurodegenerative diseases, whereas elevated CatD levels correlate with tumor malignancy and cancer cell survival. Here, we show that the CatD ortholog of the budding yeast Saccharomyces cerevisiae (Pep4p) harbors a dual cytoprotective function, composed of an anti-apoptotic part, conferred by its proteolytic capacity, and an anti-necrotic part, which resides in the proteins proteolytically inactive propeptide. Thus, deletion of PEP4 resulted in both apoptotic and necrotic cell death during chronological aging. Conversely, prolonged overexpression of Pep4p extended chronological lifespan specifically through the proteins anti-necrotic function. This function, which triggered histone hypoacetylation, was dependent on polyamine biosynthesis and was exerted via enhanced intracellular levels of putrescine, spermidine and its precursor S-adenosyl-methionine. Altogether, these data discriminate two pro-survival functions of yeast CatD and provide first insight into the physiological regulation of programmed necrosis in yeast.
Cell Cycle | 2011
Didac Carmona-Gutierrez; Angela Reisenbichler; Petra Heimbucher; Maria A. Bauer; Ralf J. Braun; Christoph Ruckenstuhl; Sabrina Büttner; Tobias Eisenberg; Patrick Rockenfeller; Kai-Uwe Fröhlich; Guido Kroemer; Frank Madeo
The activation of ceramide-generating enzymes, the blockade of ceramide degradation, or the addition of ceramide analogues can trigger apoptosis or necrosis in human cancer cells. Moreover, endogenous ceramide plays a decisive role in the killing of neoplastic cells by conventional anticancer chemotherapeutics. Here, we explored the possibility that membrane-permeable C2-ceramide might kill budding yeast (Saccharomyces cerevisiae) cells under fermentative conditions, where they exhibit rapid proliferation and a Warburg-like metabolism that is reminiscent of cancer cells. C2-ceramide efficiently induced the generation of reactive oxygen species (ROS), as well as apoptotic and necrotic cell death, and this effect was not influenced by deletion of the sole yeast metacaspase. However, C2-ceramide largely failed to cause ROS hypergeneration and cell death upon deletion of the mitochondrial genome. Thus, mitochondrial function is strictly required for C2-ceramide-induced yeast lethality. Accordingly, mitochondria from C2-ceramide-treated yeast cells exhibited major morphological alterations including organelle fragmentation and aggregation. Altogether, our results point to a pivotal role of mitochondria in ceramide-induced yeast cell death.
Journal of Applied Microbiology | 2012
Boris Rodríguez-Porrata; Didac Carmona-Gutierrez; Angela Reisenbichler; Maria A. Bauer; G. Lopez; Xavier Escoté; Albert Mas; Frank Madeo; R. Cordero-Otero
Aims: For this study, we performed a genetic screen of S. cerevisiae’s deletion library for mutants sensitive to dehydration stress, with which we aimed to discover cell dehydration–tolerant genes.
Microbial Cell | 2018
Didac Carmona-Gutierrez; Maria A. Bauer; Andreas Zimmermann; Andrés Aguilera; Nicanor Pier Giorgio Austriaco; Kathryn R. Ayscough; Rena Balzan; Shoshana Bar-Nun; Antonio Barrientos; Peter Belenky; Marc Blondel; Ralf J. Braun; Michael Breitenbach; William C. Burhans; Sabrina Büttner; Duccio Cavalieri; Michael Chang; Katrina F. Cooper; Manuela Côrte-Real; Vitor Santos Costa; Christophe Cullin; Ian W. Dawes; Jörn Dengjel; Martin B. Dickman; Tobias Eisenberg; Birthe Fahrenkrog; Nicolas Fasel; Kai-Uwe Fröhlich; Ali Gargouri; Sergio Giannattasio
Elucidating the biology of yeast in its full complexity has major implications for science, medicine and industry. One of the most critical processes determining yeast life and physiology is cellular demise. However, the investigation of yeast cell death is a relatively young field, and a widely accepted set of concepts and terms is still missing. Here, we propose unified criteria for the definition of accidental, regulated, and programmed forms of cell death in yeast based on a series of morphological and biochemical criteria. Specifically, we provide consensus guidelines on the differential definition of terms including apoptosis, regulated necrosis, and autophagic cell death, as we refer to additional cell death routines that are relevant for the biology of (at least some species of) yeast. As this area of investigation advances rapidly, changes and extensions to this set of recommendations will be implemented in the years to come. Nonetheless, we strongly encourage the authors, reviewers and editors of scientific articles to adopt these collective standards in order to establish an accurate framework for yeast cell death research and, ultimately, to accelerate the progress of this vibrant field of research.
Cell Death & Differentiation | 2010
Didac Carmona-Gutierrez; Christoph Ruckenstuhl; Maria A. Bauer; Tobias Eisenberg; Sabrina Büttner; Frank Madeo
Cell death in yeast is oftenaccompanied by diagnostic apoptotic markers such asexternalization of phosphatidylserine to the outer leaflet ofthe plasma membrane, DNA degradation, chromatin con-densation, and the generation of reactive oxygen species, allof which can be measured both at a qualitative (microscopic)and at a quantitative (e.g. flow cytometric) level.
Cell Cycle | 2013
Maria A. Bauer; Didac Carmona-Gutierrez; Christoph Ruckenstuhl; Angela Reisenbichler; Evgenia Megalou; Tobias Eisenberg; Christoph Magnes; Helmut Jungwirth; Frank Sinner; Thomas R. Pieber; Kai-Uwe Fröhlich; Guido Kroemer; Nektarios Tavernarakis; Frank Madeo
Spermidine is a naturally occurring polyamine involved in multiple biological processes, including DNA metabolism, autophagy and aging. Like other polyamines, spermidine is also indispensable for successful reproduction at several stages. However, a direct influence on the actual fertilization process, i.e., the fusion of an oocyte with a spermatocyte, remains uncertain. To explore this possibility, we established the mating process in the yeast Saccharomyces cerevisiae as a model for fertilization in higher eukaryotes. During human fertilization, the sperm capacitates and the acrosome reaction is necessary for penetration of the oocyte. Similarly, sexually active yeasts form a protrusion called “shmoo” as a prerequisite for mating. In this study, we demonstrate that pheromone-induced shmoo formation requires spermidine. In addition, we show that spermidine is essential for mating in yeast as well as for egg fertilization in the nematode Caenorhabditis elegans. In both cases, this occurs independently from autophagy. In synthesis, we identify spermidine as an important mating component in unicellular and multicellular model organisms, supporting an unprecedented evolutionary conservation of the mechanisms governing fertilization-related cellular fusion.
Cell Cycle | 2013
Didac Carmona-Gutierrez; Ali Alavian-Ghavanini; Lukas Habernig; Maria A. Bauer; Astrid Hammer; Christine Rossmann; Andreas Zimmermann; Christoph Ruckenstuhl; Sabrina Büttner; Tobias Eisenberg; Wolfgang Sattler; Ernst Malle; Frank Madeo
Following microbial pathogen invasion, the human immune system of activated phagocytes generates and releases the potent oxidant hypochlorous acid (HOCl), which contributes to the killing of menacing microorganisms. Though tightly controlled, HOCl generation by the myeloperoxidase-hydrogen peroxide-chloride system of neutrophils/monocytes may occur in excess and lead to tissue damage. It is thus of marked importance to delineate the molecular pathways underlying HOCl cytotoxicity in both microbial and human cells. Here, we show that HOCl induces the generation of reactive oxygen species (ROS), apoptotic cell death and the formation of specific HOCl-modified epitopes in the budding yeast Saccharomyces cerevisiae. Interestingly, HOCl cytotoxicity can be prevented by treatment with ROS scavengers, suggesting oxidative stress to mediate the lethal effect. The executing pathway involves the pro-apoptotic protease Kex1p, since its absence diminishes HOCl-induced production of ROS, apoptosis and protein modification. By characterizing HOCl-induced cell death in yeast and identifying a corresponding central executor, these results pave the way for the use of Saccharomyces cerevisiae in HOCl research, not least given that it combines both being a microorganism as well as a model for programmed cell death in higher eukaryotes.
Microbial Cell | 2014
Andreas Zimmermann; Maria A. Bauer; Guido Kroemer; Frank Madeo; Didac Carmona-Gutierrez
All living organisms need to adapt to ever changing adverse conditions in order to survive. The phenomenon termed hormesis describes an evolutionarily conserved process by which a cell or an entire organism can be preconditioned, meaning that previous exposure to low doses of an insult protects against a higher, normally harmful or lethal dose of the same stressor. Growing evidence suggests that hormesis is directly linked to an organism’s (or cell’s) capability to cope with pathological conditions such as aging and age-related diseases. Here, we condense the conceptual and potentially therapeutic importance of hormesis by providing a short overview of current evidence in favor of the cytoprotective impact of hormesis, as well as of its underlying molecular mechanisms.