Patricia Cabezas
European Science Foundation
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Featured researches published by Patricia Cabezas.
PLOS ONE | 2017
Kristina Beblo-Vranesevic; Maria Bohmeier; Alexandra K. Perras; Petra Schwendner; Elke Rabbow; Christine Moissl-Eichinger; Charles S. Cockell; Rüdiger Pukall; Pauline Vannier; Viggo Marteinsson; E. Monaghan; Pascale Ehrenfreund; L. Garcia-Descalzo; Felipe Gómez; Moustafa Malki; Ricardo Amils; Frédéric Gaboyer; Frances Westall; Patricia Cabezas; Nicolas Walter; Petra Rettberg
The limits of life of aerobic microorganisms are well understood, but the responses of anaerobic microorganisms to individual and combined extreme stressors are less well known. Motivated by an interest in understanding the survivability of anaerobic microorganisms under Martian conditions, we investigated the responses of a new isolate, Yersinia intermedia MASE-LG-1 to individual and combined stresses associated with the Martian surface. This organism belongs to an adaptable and persistent genus of anaerobic microorganisms found in many environments worldwide. The effects of desiccation, low pressure, ionizing radiation, varying temperature, osmotic pressure, and oxidizing chemical compounds were investigated. The strain showed a high tolerance to desiccation, with a decline of survivability by four orders of magnitude during a storage time of 85 days. Exposure to X-rays resulted in dose-dependent inactivation for exposure up to 600 Gy while applied doses above 750 Gy led to complete inactivation. The effects of the combination of desiccation and irradiation were additive and the survivability was influenced by the order in which they were imposed. Ionizing irradiation and subsequent desiccation was more deleterious than vice versa. By contrast, the presence of perchlorates was not found to significantly affect the survival of the Yersinia strain after ionizing radiation. These data show that the organism has the capacity to survive and grow in physical and chemical stresses, imposed individually or in combination that are associated with Martian environment. Eventually it lost its viability showing that many of the most adaptable anaerobic organisms on Earth would be killed on Mars today.
International Journal of Astrobiology | 2017
Charles S. Cockell; Petra Schwendner; Alexandra K. Perras; Petra Rettberg; K. Beblo-Vranesevic; Maria Bohmeier; Elke Rabbow; Christine Moissl-Eichinger; L. Wink; V. Marteinsson; P. Vannier; Felipe Gómez; L. Garcia-Descalzo; Pascale Ehrenfreund; E. Monaghan; Frances Westall; Frédéric Gaboyer; Ricardo Amils; Moustafa Malki; Rüdiger Pukall; Patricia Cabezas; Nicolas Walter
Astrobiology seeks to understand the limits of life and to determine the physiology of organisms in order to better assess the habitability of other worlds. To successfully achieve these goals we require microorganisms from environments on Earth that approximate to extraterrestrial environments in terms of physical and/or chemical conditions. The most challenging of these environments with respect to sample collection, isolation and cultivation of microorganisms are anoxic environments. In this paper, an approach to this challenge was implemented within the European Unions MASE (Mars Analogues for Space Exploration) project. In this review paper, we aim to provide a set of methods for future field work and sampling campaigns. A number of anoxic environment based on characteristics that make them analogous to past and present locations on Mars were selected. They included anoxic sulphur-rich springs (Germany), the salt-rich Boulby Mine (UK), a lake in a basaltic context (Iceland), acidic sediments in the Rio Tinto (Spain), glacier samples (Austria) and permafrost samples (Russia and Canada). Samples were collected under strict anoxic conditions to be used for cultivation and genomic community analysis. Using the samples, a culturing approach was implemented to enrich anaerobic organisms using a defined medium that would allow for organisms to be grown under identical conditions in future physiological comparisons. Anaerobic microorganisms were isolated and deposited with the DSMZ (Deutsche Sammlung von Mikroorganismen und Zellkulturen GmbH) culture collection to make them available to other scientists. In MASE, the selected organisms are studied with respect to survival and growth under Mars relevant stresses. They are artificially fossilized and the resulting biosignatures studied and used to investigate the efficacy of life detection instrumentation for planetary missions. Some of the organisms belong to genera with medical and environmental importance such as Yersinia spp., illustrating how astrobiology field research can be used to increase the availability of microbial isolates for applied terrestrial purposes.
Frontiers in Microbiology | 2018
Petra Schwendner; Maria Bohmeier; Petra Rettberg; Kristina Beblo-Vranesevic; Frédéric Gaboyer; Christine Moissl-Eichinger; Alexandra K. Perras; Pauline Vannier; V. Marteinsson; L. Garcia-Descalzo; F. Gomez; Moustafa Malki; Ricardo Amils; Frances Westall; Andreas Riedo; E. Monaghan; Pascale Ehrenfreund; Patricia Cabezas; Nicolas Walter; Charles S. Cockell
Growth in sodium chloride (NaCl) is known to induce stress in non-halophilic microorganisms leading to effects on the microbial metabolism and cell structure. Microorganisms have evolved a number of adaptations, both structural and metabolic, to counteract osmotic stress. These strategies are well-understood for organisms in NaCl-rich brines such as the accumulation of certain organic solutes (known as either compatible solutes or osmolytes). Less well studied are responses to ionic environments such as sulfate-rich brines which are prevalent on Earth but can also be found on Mars. In this paper, we investigated the global metabolic response of the anaerobic bacterium Yersinia intermedia MASE-LG-1 to osmotic salt stress induced by either magnesium sulfate (MgSO4) or NaCl at the same water activity (0.975). Using a non-targeted mass spectrometry approach, the intensity of hundreds of metabolites was measured. The compatible solutes L-asparagine and sucrose were found to be increased in both MgSO4 and NaCl compared to the control sample, suggesting a similar osmotic response to different ionic environments. We were able to demonstrate that Yersinia intermedia MASE-LG-1 accumulated a range of other compatible solutes. However, we also found the global metabolic responses, especially with regard to amino acid metabolism and carbohydrate metabolism, to be salt-specific, thus, suggesting ion-specific regulation of specific metabolic pathways.
Scientific Reports | 2017
Frédéric Gaboyer; Claude Le Milbeau; Maria Bohmeier; Petra Schwendner; Pauline Vannier; Kristina Beblo-Vranesevic; Elke Rabbow; Frédéric Foucher; Pascale Gautret; Régis Guégan; A. Richard; A. Sauldubois; P. Richmann; A. Perras; Christine Moissl-Eichinger; Charles S. Cockell; Petra Rettberg; Viggo Marteinsson; E. Monaghan; Pascale Ehrenfreund; L. Garcia-Descalzo; F. Gomez; Moustafa Malki; Ricardo Amils; Patricia Cabezas; Nicolas Walter; Frances Westall
The artificial mineralization of a polyresistant bacterial strain isolated from an acidic, oligotrophic lake was carried out to better understand microbial (i) early mineralization and (ii) potential for further fossilisation. Mineralization was conducted in mineral matrixes commonly found on Mars and Early-Earth, silica and gypsum, for 6 months. Samples were analyzed using microbiological (survival rates), morphological (electron microscopy), biochemical (GC-MS, Microarray immunoassay, Rock-Eval) and spectroscopic (EDX, FTIR, RAMAN spectroscopy) methods. We also investigated the impact of physiological status on mineralization and long-term fossilisation by exposing cells or not to Mars-related stresses (desiccation and radiation). Bacterial populations remained viable after 6 months although the kinetics of mineralization and cell-mineral interactions depended on the nature of minerals. Detection of biosignatures strongly depended on analytical methods, successful with FTIR and EDX but not with RAMAN and immunoassays. Neither influence of stress exposure, nor qualitative and quantitative changes of detected molecules were observed as a function of mineralization time and matrix. Rock-Eval analysis suggests that potential for preservation on geological times may be possible only with moderate diagenetic and metamorphic conditions. The implications of our results for microfossil preservation in the geological record of Earth as well as on Mars are discussed.
Fems Microbiology Letters | 2018
Kristina Beblo-Vranesevic; Maria Bohmeier; Alexandra K. Perras; Petra Schwendner; Elke Rabbow; Christine Moissl-Eichinger; Charles S. Cockell; Pauline Vannier; V. Marteinsson; E. Monaghan; Pascale Ehrenfreund; L. Garcia-Descalzo; F. Gomez; Moustafa Malki; Ricardo Amils; Frédéric Gaboyer; Frances Westall; Patricia Cabezas; Nicolas Walter; Petra Rettberg
Abstract Four facultative anaerobic and two obligate anaerobic bacteria were isolated from extreme environments (deep subsurface halite mine, sulfidic anoxic spring, mineral-rich river) in the frame MASE (Mars Analogues for Space Exploration) project. The isolates were investigated under anoxic conditions for their survivability after desiccation up to 6 months and their tolerance to ionizing radiation up to 3000 Gy. The results indicated that tolerances to both stresses are strain-specific features. Yersinia intermedia MASE-LG-1 showed a high desiccation tolerance but its radiation tolerance was very low. The most radiation-tolerant strains were Buttiauxella sp. MASE-IM-9 and Halanaerobium sp. MASE-BB-1. In both cases, cultivable cells were detectable after an exposure to 3 kGy of ionizing radiation, but cells only survived desiccation for 90 and 30 days, respectively. Although a correlation between desiccation and ionizing radiation resistance has been hypothesized for some aerobic microorganisms, our data showed that there was no correlation between tolerance to desiccation and ionizing radiation, suggesting that the physiological basis of both forms of tolerances is not necessarily linked. In addition, these results indicated that facultative and obligate anaerobic organisms living in extreme environments possess varied species-specific tolerances to extremes.
Archive | 2017
L. Garcia-Descalzo; F. Gomez; Charles S. Cockell; Petra Schwendner; Frances Westall; Frédéric Gaboyer; Petra Rettberg; Kristina Beblo-Vranesevic; Maria Bohmeier; Elke Rabbow; Christine Moissl-Eichinger; Alexandra K. Perras; Ricardo Amils; Pascale Ehrenfreund; E. Monaghan; V. Marteinsson; Pauline Vannier; Moustafa Malki; Nicolas Walter; Patricia Cabezas
Archive | 2017
Frédéric Gaboyer; C. Le Milbeau; Maria Bohmeier; Petra Schwendner; Pauline Vannier; Kristina Beblo-Vranesevic; Elke Rabbow; Frédéric Foucher; Pascale Gautret; Régis Guégan; A. Richard; A. Sauldubois; P. Richmann; A. Perras; Christine Moissl-Eichinger; Charles S. Cockell; Petra Rettberg; Viggo Marteinsson; E. Monaghan; Pascale Ehrenfreund; L. Garcia-Descalzo; F. Gomez; Moustafa Malki; Ricardo Amils; Patricia Cabezas; Nicolas Walter; Frances Westall
Archive | 2017
Petra Rettberg; John Robert Brucato; Patricia Cabezas; Jean-Louis Fellous; Alissa Haddaji; Gerhard Kminek; Susan McKenna-Lawlor; Elke Rabbow; Samuel H. Royle; Mark A. Sephton; Jean-Charles Treuet; Nicolas Walter; André Antunes; Karen Olsson-Francis; Stefan Leuko
Archive | 2016
Nicolas Walter; Patricia Cabezas; Petra Rettberg; Jean-Louis Fellous; Jean-Jacques Tortora; John Roberto Brucato; Susan McKenna-Lawlor; Mark Septhon; Gerhard Kminek; Michel Viso
Archive | 2016
Petra Schwendner; Charles S. Cockell; Petra Rettberg; Kristina Beblo-Vranesevic; Maria Bohmeier; Elke Rabbow; Frances Westall; Frédéric Gaboyer; Nicolas Walter; Patricia Cabezas; Christine Moissl-Eichinger; Alexandra K. Perras; Felipe Gómez; Mostafa Malki; Ricardo Amils; L. Garcia-Descalzo; Pascale Ehrenfreund; E. Monaghan; Viggo Marteinsson; Pauline Vannier