Academic literature on the topic 'Intracellular biomineralization'

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Journal articles on the topic "Intracellular biomineralization"

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Lemloh, Marie Louise. "Biomineralization in Ciliates." Key Engineering Materials 672 (January 2016): 40–46. http://dx.doi.org/10.4028/www.scientific.net/kem.672.40.

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From a biomineralization point of view, the protist world is far less investigated than its metazoan counterpart. However, eukaryotic single-celled organisms offer a very unique access to discover biomineralization mechanisms in vivo. With respect to intracellular mechanisms involved in ion enrichment, mineral transport or vesicle formation ciliates represent a good model system. One important group of protists, the ciliates, is very common and numerous studies have been performed on their ecology, cell biology, morphology or genetics. Ciliates are also known for their formation of diverse min
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Song, Zhiyong, Long Liu, Xiaoyu Wang, et al. "Intracellular delivery of biomineralized monoclonal antibodies to combat viral infection." Chemical Communications 52, no. 9 (2016): 1879–82. http://dx.doi.org/10.1039/c5cc09252c.

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Conventional therapeutic monoclonal antibodies (mAbs) are invalid for intracellular viruses but by using in situ biomineralization treatment, they can be successfully delivered into cells to inhibit intracellular viral replication.
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Uebe, René, Birgit Voigt, Thomas Schweder, et al. "Deletion of a fur-Like Gene Affects Iron Homeostasis and Magnetosome Formation in Magnetospirillum gryphiswaldense." Journal of Bacteriology 192, no. 16 (2010): 4192–204. http://dx.doi.org/10.1128/jb.00319-10.

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ABSTRACT Magnetotactic bacteria synthesize specific organelles, the magnetosomes, which are membrane-enveloped crystals of the magnetic mineral magnetite (Fe3O4). The biomineralization of magnetite involves the uptake and intracellular accumulation of large amounts of iron. However, it is not clear how iron uptake and biomineralization are regulated and balanced with the biochemical iron requirement and intracellular homeostasis. In this study, we identified and analyzed a homologue of the ferric uptake regulator Fur in Magnetospirillum gryphiswaldense, which was able to complement a fur mutan
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Sun, Bin, Junbing Jiang, Jiali Tao, and Zuozhen Han. "Biomineralization of Carbonates Induced by Mucilaginibacter gossypii HFF1: Significant Role of Biochemical Parameters." Minerals 12, no. 5 (2022): 614. http://dx.doi.org/10.3390/min12050614.

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Although the precipitation of carbonate minerals induced by various bacteria is widely studied, the changes in the biochemical parameters, and their significant role in the biomineralization processes, still need further exploration. In this study, Mucilaginibacter gossypii HFF1 was isolated, identified, and used to induce carbonate minerals at various Mg/Ca ratios. The biochemical parameters were determined in order to explore the biomineralization mechanisms, including cell concentration, pH, ammonia, carbonic anhydrase activity, and alkaline phosphatase activity. The characteristics of extr
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Benzerara, K., F. Skouri-Panet, J. Li, et al. "Intracellular Ca-carbonate biomineralization is widespread in cyanobacteria." Proceedings of the National Academy of Sciences 111, no. 30 (2014): 10933–38. http://dx.doi.org/10.1073/pnas.1403510111.

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Li, Jinhua, Isabel Margaret Oliver, Nithavong Cam, et al. "Biomineralization Patterns of Intracellular Carbonatogenesis in Cyanobacteria: Molecular Hypotheses." Minerals 6, no. 1 (2016): 10. http://dx.doi.org/10.3390/min6010010.

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Xie, Beibei, Huichao Zhao, Yuan-Fu Ding, et al. "Drug-free tumor therapy via spermine-responsive intracellular biomineralization." Journal of Controlled Release 357 (May 2023): 572–79. http://dx.doi.org/10.1016/j.jconrel.2023.04.018.

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Martignier, Agathe, Montserrat Filella, Kilian Pollok, et al. "Marine and freshwater micropearls: biomineralization producing strontium-rich amorphous calcium carbonate inclusions is widespread in the genus <i>Tetraselmis</i> (Chlorophyta)." Biogeosciences 15, no. 21 (2018): 6591–605. http://dx.doi.org/10.5194/bg-15-6591-2018.

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Abstract. Unicellular algae play important roles in the biogeochemical cycles of numerous elements, particularly through the biomineralization capacity of certain species (e.g., coccolithophores greatly contributing to the “organic carbon pump” of the oceans), and unidentified actors of these cycles are still being discovered. This is the case of the unicellular alga Tetraselmis cordiformis (Chlorophyta) that was recently discovered to form intracellular mineral inclusions, called micropearls, which had been previously overlooked. These intracellular inclusions of hydrated amorphous calcium ca
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Martignier, A., M. Pacton, M. Filella, et al. "Intracellular amorphous carbonates uncover a new biomineralization process in eukaryotes." Geobiology 15, no. 2 (2016): 240–53. http://dx.doi.org/10.1111/gbi.12213.

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Han, Zuozhen, Xiao Gao, Hui Zhao, et al. "Extracellular and Intracellular Biomineralization Induced by Bacillus licheniformis DB1-9 at Different Mg/Ca Molar Ratios." Minerals 8, no. 12 (2018): 585. http://dx.doi.org/10.3390/min8120585.

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Biomineralization has become a research hotspot and attracted widespread attention in the field of carbonate sedimentology. In this study, precipitation of carbonate minerals was induced by Bacillus licheniformis DB1-9 bacteria, (identity confirmed with its phylogenetic tree), to further explore the biomineralization mechanisms. During experiments, lasting up to 24 days with varying Mg/Ca molar ratios and regular monitoring of conditions, ammonia and carbonic anhydrase are released by the bacteria, resulting in a pH increase. Carbonic anhydrase could have promoted carbon dioxide hydration to p
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Dissertations / Theses on the topic "Intracellular biomineralization"

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Park, Yeseul. "Metal sulfide biomineralization by magnetotactic bacteria." Electronic Thesis or Diss., Aix-Marseille, 2022. http://www.theses.fr/2022AIXM0262.

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La biominéralisation de sulfures métalliques est observée tant dans des cultures microbiennes que dans la nature. Cependant, seulement quelques cas ont été définis comme étant des processus biologiquement contrôlés comme cela est le cas pour la greigite produite par les bactéries magnétotactiques. Pendant ma thèse, j'ai découvert un nouveau type de biominéralisation intracellulaire de sulfure métallique en étudiant l'impact du cuivre sur la biominéralisation de la greigite par la bactérie Desulfamplus magnetovallimortis BW-1.Le biominéral que j'ai identifié a une structure et une organisation
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Khan, Monis Athar. "Towards understanding the mechanism of intracellular calcium carbonate formation in cyanobacteria through the development of their genetics." Electronic Thesis or Diss., université Paris-Saclay, 2024. http://www.theses.fr/2024UPASL100.

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Les cyanobactéries sont des microorganismes photosynthétiques qui ont joué un rôle important dans la formation des dépôts sédimentaires de carbonate de calcium (CaCO3). Pendant longtemps on considérait que cette biominéralisation se produisait uniquement à l'extérieur des cellules et était par conséquent le résultat indirect de leur métabolisme photosynthétique. Cependant, récemment, plusieurs espèces de cyanobactéries formant des inclusions intracellulaires de CaCO3 amorphe (iACC) dans des conditions thermodynamiques défavorables ont été isolées dans divers environnements. A ce jour, le(s) mé
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Cam, Nithavong. "Biominéralisation intracellulaire par des cyanobactéries : du modèle aux cellules." Thesis, Paris 6, 2015. http://www.theses.fr/2015PA066495/document.

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Cette thèse vise à avancer dans la compréhension de la formation récemment découverte de carbonates amorphes intracellulaires par des cyanobactéries. Des synthèses abiotiques ont permis de produire des carbonates similaires aux inclusions intracellulaires en termes de morphologie, structure et composition chimique. Ceci a permis notamment de discuter les conditions chimiques présentes dans le milieu intracellulaire de ces bactéries, qui semblent incompatibles avec les connaissances actuelles de l’intérieur des cyanobactéries. Plusieurs souches de cyanobactéries formant ou non des carbonates in
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Cam, Nithavong. "Biominéralisation intracellulaire par des cyanobactéries : du modèle aux cellules." Electronic Thesis or Diss., Paris 6, 2015. http://www.theses.fr/2015PA066495.

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Cette thèse vise à avancer dans la compréhension de la formation récemment découverte de carbonates amorphes intracellulaires par des cyanobactéries. Des synthèses abiotiques ont permis de produire des carbonates similaires aux inclusions intracellulaires en termes de morphologie, structure et composition chimique. Ceci a permis notamment de discuter les conditions chimiques présentes dans le milieu intracellulaire de ces bactéries, qui semblent incompatibles avec les connaissances actuelles de l’intérieur des cyanobactéries. Plusieurs souches de cyanobactéries formant ou non des carbonates in
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De, Wever Alexis. "Étude de la biominéralisation de carbonates intracellulaires et de silicates de magnésium hydratés dans des environnements lacustres alcalins." Electronic Thesis or Diss., Sorbonne université, 2019. https://accesdistant.sorbonne-universite.fr/login?url=https://theses-intra.sorbonne-universite.fr/2019SORUS480.pdf.

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Les stromatolites sont des roches organo-sédimentaires laminées composées de carbonates de Ca et/ou Mg mais également de silicates de Mg dans certains cas. Les processus impliqués dans leur formation restent encore mal compris. L’objectif central de cette thèse est de mieux comprendre les processus géochimiques et géomicrobiologiques permettant de favoriser ou au contraire de défavoriser la formation des carbonates et silicates de magnésium dans les environnements lacustres alcalins mexicains. Deux axes principaux ont été développés. Le premier axe s’est focalisé sur les analyses de souches fo
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Books on the topic "Intracellular biomineralization"

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Pan, Yongxin, Damien Faivre, Karim Benzerara, and Wei Lin, eds. Intracellular biomineralization in bacteria. Frontiers SA Media, 2014. http://dx.doi.org/10.3389/978-2-88919-272-4.

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Book chapters on the topic "Intracellular biomineralization"

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Jroundi, Fadwa, Mohamed L. Merroun, Francisca Martínez-Ruiz, and María Teresa González-Muñoz. "Intracellular and Extracellular Bacterial Biomineralization." In Microbiology Monographs. Springer International Publishing, 2022. http://dx.doi.org/10.1007/978-3-030-80807-5_2.

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Watabe, Norimitsu, and Roni J. Kingsley. "Extra-, Inter-, and Intracellular Mineralization in Invertebrates and Algae." In Origin, Evolution, and Modern Aspects of Biomineralization in Plants and Animals. Springer US, 1989. http://dx.doi.org/10.1007/978-1-4757-6114-6_15.

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Tester, Chantel C., and Derk Joester. "Precipitation in Liposomes as a Model for Intracellular Biomineralization." In Research Methods in Biomineralization Science. Elsevier, 2013. http://dx.doi.org/10.1016/b978-0-12-416617-2.00012-6.

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Lowenstam, Heinz A., and Stephen Weiner. "Some Nonskeletal Functions in Biomineralization." In On Biomineralization. Oxford University Press, 1989. http://dx.doi.org/10.1093/oso/9780195049770.003.0012.

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The functions of mineralized hard parts are often self-evident. In many of the tables throughout the book we note the assigned or very often assumed functions of many different mineralized bodies. Often, however, assumed functions do not stand up to closer examination. A good example is the study of the cells of the hepatopancreas of gastropods (Howard et al. 1981). These glands have numerous cells containing intracellular mineralized granules. It was generally assumed that they all functioned as transient storage sites for calcium ions, until it was found that a subpopulation forms granules o
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Egwim, Evans C., Oluwafemi A. Oyewole, and Japhet G. Yakubu. "Fungal Bioremediation of Pollutants." In Bioremediation for Environmental Pollutants. BENTHAM SCIENCE PUBLISHERS, 2023. http://dx.doi.org/10.2174/9789815123494123010009.

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Advancement in industrialization and urbanization has caused an influx of contaminants into the environment polluting the soil, water, and air. These contaminants come in various forms and structures, including heavy metals, petroleum hydrocarbons, industrial dyes, pharmaceutically active compounds, pesticides, and many other toxic chemicals. The presence of these pollutants in the environment poses a serious threat to living things, including humans. Various conventional methods have been developed to tackle this menace, though effective, are however not safe for the ecosystem. Interestingly,
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Lowenstam, Heinz A., and Stephen Weiner. "Protoctista." In On Biomineralization. Oxford University Press, 1989. http://dx.doi.org/10.1093/oso/9780195049770.003.0006.

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This kingdom is denned by exclusion, in that its members are neither animals, plants, fungi, nor prokaryotes. They comprise eukaryotic microorganisms and their immediate descendants (Margulis and Schwartz 1988). Of the 27 phyla that make up this kingdom, no less than 17 contain members that form mineralized hard parts. Although the vast majority of Protoctista are microorganisms, their smallness does not in any way imply an inability to control their biomineralization processes. On the contrary, many of the mineralizing Protoctista form very elaborate and complex structures. D’Arcy Thompson wa
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Conference papers on the topic "Intracellular biomineralization"

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Gaëtan, Juliette, Karim Benzerara, Neha Mehta, et al. "Microbial ecology of intracellular calcium carbonate biomineralization by bloom-forming cyanobacteria." In Goldschmidt2021. European Association of Geochemistry, 2021. http://dx.doi.org/10.7185/gold2021.7056.

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