Evaluation of cell disruption technologies on magnetosome chain length and aggregation behaviour from Magnetospirillum gryphiswaldense MSR-1
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M. Fay | G. Rance | P. Topham | A. Fernández-Castané | B. Peacock | D. Aubert | B. Fryer | R. Lees | Marta Masó-Martínez
[1] G. Ricci,et al. Platelet Activation in Ovarian Cancer Ascites: Assessment of GPIIb/IIIa and PF4 in Small Extracellular Vesicles by Nano-Flow Cytometry Analysis , 2022, Cancers.
[2] Ashley V. Makela,et al. Magnetic Particle Imaging of Magnetotactic Bacteria as Living Contrast Agents Is Improved by Altering Magnetosome Arrangement. , 2022, Nano letters.
[3] J. Hartikainen,et al. MCF10CA Breast Cancer Cells Utilize Hyaluronan-Coated EV-Rich Trails for Coordinated Migration , 2022, Frontiers in Oncology.
[4] D. Bazylinski,et al. Localization of Native Mms13 to the Magnetosome Chain of Magnetospirillum magneticum AMB-1 Using Immunogold Electron Microscopy, Immunofluorescence Microscopy and Biochemical Analysis , 2021, Crystals.
[5] D. Sharma,et al. Biomineralized and chemically synthesized magnetic nanoparticles: A contrast , 2020, Frontiers of Materials Science.
[6] D. Schüler,et al. An automated oxystat fermentation regime for microoxic cultivation of Magnetospirillum gryphiswaldense , 2020, Microbial Cell Factories.
[7] K. Suthindhiran,et al. Magnetosome mediated oral Insulin delivery and its possible use in diabetes management , 2020, Journal of Materials Science: Materials in Medicine.
[8] Tim W. Overton,et al. Nanoparticle Tracking Analysis: A powerful tool for characterizing magnetosome preparations , 2020, bioRxiv.
[9] M. Fay,et al. Metabolic characterisation of Magnetospirillum gryphiswaldense MSR-1 using LC-MS-based metabolite profiling , 2020, RSC advances.
[10] Allegra T. Aron,et al. Magnetotactic Bacteria Accumulate a Large Pool of Iron Distinct from Their Magnetite Crystals , 2020, Applied and Environmental Microbiology.
[11] M. R. Spier,et al. An overview of cell disruption methods for intracellular biomolecules recovery , 2020, Preparative biochemistry & biotechnology.
[12] F. Guyot,et al. A Method for Producing Highly Pure Magnetosomes in Large Quantity for Medical Applications Using Magnetospirillum gryphiswaldense MSR-1 Magnetotactic Bacteria Amplified in Minimal Growth Media , 2020, Frontiers in Bioengineering and Biotechnology.
[13] C. Péchoux,et al. Transformation Cycle of Magnetosomes in Human Stem Cells: From Degradation to Biosynthesis of Magnetic Nanoparticles Anew. , 2019, ACS nano.
[14] M. Hendrickx,et al. Evaluating microalgal cell disruption upon ultra high pressure homogenization , 2019, Algal Research.
[15] C. Betzel,et al. Dynamic Light Scattering (DLS) , 2019, Radiation in Bioanalysis.
[16] Hong Li. New bioprocess technologies underpinning future manufacture of magnetosome products , 2019 .
[17] Xiaomei Yan,et al. Flow Cytometric Analysis of Nanoscale Biological Particles and Organelles. , 2019, Annual review of analytical chemistry.
[18] Jianping Wang,et al. Magnetic nanoparticles in nanomedicine: a review of recent advances , 2018, Nanotechnology.
[19] O. Thomas,et al. Development of a simple intensified fermentation strategy for growth of Magnetospirillum gryphiswaldense MSR-1: Physiological responses to changing environmental conditions , 2018, New biotechnology.
[20] D. Bazylinski,et al. Applications of Magnetotactic Bacteria, Magnetosomes and Magnetosome Crystals in Biotechnology and Nanotechnology: Mini-Review , 2018, Molecules.
[21] F. Guyot,et al. Fluorescent magnetosomes for controlled and repetitive drug release under the application of an alternating magnetic field under conditions of limited temperature increase (<2.5 °C). , 2018, Nanoscale.
[22] D. Manoil,et al. Oxidative Stress in Bacteria Measured by Flow Cytometry , 2018 .
[23] D. Schüler,et al. Generation of Multifunctional Magnetic Nanoparticles with Amplified Catalytic Activities by Genetic Expression of Enzyme Arrays on Bacterial Magnetosomes , 2018 .
[24] S. Chien,et al. Thy-1 dependent uptake of mesenchymal stem cell-derived extracellular vesicles blocks myofibroblastic differentiation , 2017, Scientific Reports.
[25] F. Guyot,et al. Biocompatible coated magnetosome minerals with various organization and cellular interaction properties induce cytotoxicity towards RG-2 and GL-261 glioma cells in the presence of an alternating magnetic field , 2017, Journal of Nanobiotechnology.
[26] O. Thomas,et al. Flow cytometry as a rapid analytical tool to determine physiological responses to changing O2 and iron concentration by Magnetospirillum gryphiswaldense strain MSR-1 , 2017, Scientific Reports.
[27] Tim W. Overton,et al. Flow cytometry as a rapid analytical tool to determine physiological responses to changing O2 and iron concentration by Magnetospirillum gryphiswaldense strain MSR-1 , 2017, Scientific Reports.
[28] A. Idbaih,et al. Development of non-pyrogenic magnetosome minerals coated with poly-l-lysine leading to full disappearance of intracranial U87-Luc glioblastoma in 100% of treated mice using magnetic hyperthermia. , 2017, Biomaterials.
[29] Małgorzata Lekka,et al. The Methods of Choice for Extracellular Vesicles (EVs) Characterization , 2017, International journal of molecular sciences.
[30] N. Mohallem,et al. A comparison of TEM and DLS methods to characterize size distribution of ceramic nanoparticles , 2016 .
[31] A. Aytekin,et al. Statistical optimization of cell disruption techniques for releasing intracellular X-prolyl dipeptidyl aminopeptidase from Lactococcus lactis spp. lactis. , 2016, Ultrasonics sonochemistry.
[32] Hoda Jafarizadeh-Malmiri,et al. Application of magnetic nanoparticles in smart enzyme immobilization , 2016, Biotechnology Letters.
[33] F. Guyot,et al. Chemical signature of magnetotactic bacteria , 2015, Proceedings of the National Academy of Sciences.
[34] A. Sbarbati,et al. Magnetic Nanoparticles from Magnetospirillum gryphiswaldense Increase the Efficacy of Thermotherapy in a Model of Colon Carcinoma , 2014, PloS one.
[35] I. Ardelean,et al. The effect and role of environmental conditions on magnetosome synthesis , 2014, Front. Microbiol..
[36] F. Guyot,et al. Use of bacterial magnetosomes in the magnetic hyperthermia treatment of tumours: A review , 2013, International journal of hyperthermia : the official journal of European Society for Hyperthermic Oncology, North American Hyperthermia Group.
[37] Y. Li,et al. A key time point for cell growth and magnetosome synthesis of Magnetospirillum gryphiswaldense based on real-time analysis of physiological factors , 2013, Front. Microbiol..
[38] F. Guyot,et al. Preparation of chains of magnetosomes, isolated from Magnetospirillum magneticum strain AMB-1 magnetotactic bacteria, yielding efficient treatment of tumors using magnetic hyperthermia. , 2012, International journal of pharmaceutics.
[39] Z. Tomori,et al. Magnetosomes on surface: an imaging study approach. , 2012, Scanning.
[40] Lianfeng Zhang,et al. Fluorescence imaging and targeted distribution of bacterial magnetic particles in nude mice , 2012, Applied Microbiology and Biotechnology.
[41] François Guyot,et al. Chains of magnetosomes extracted from AMB-1 magnetotactic bacteria for application in alternative magnetic field cancer therapy. , 2011, ACS nano.
[42] Fangfang Guo,et al. A novel rapid and continuous procedure for large-scale purification of magnetosomes from Magnetospirillum gryphiswaldense , 2011, Applied Microbiology and Biotechnology.
[43] M. Nyitrai,et al. The effects of detergents on the polymerization properties of actin , 2010, Cytometry. Part A : the journal of the International Society for Analytical Cytology.
[44] Y. Li,et al. Preparation and anti‐tumor efficiency evaluation of doxorubicin‐loaded bacterial magnetosomes: Magnetic nanoparticles as drug carriers isolated from Magnetospirillum gryphiswaldense , 2008, Biotechnology and bioengineering.
[45] Damien Faivre,et al. Magnetotactic bacteria and magnetosomes. , 2008, Chemical reviews.
[46] T. Matsunaga,et al. Magnetic cell separation using nano‐sized bacterial magnetic particles with reconstructed magnetosome membrane , 2008, Biotechnology and bioengineering.
[47] Atsushi Arakaki,et al. Cytoplasmic ATPase involved in ferrous ion uptake from magnetotactic bacterium Magnetospirillum magneticum AMB‐1 , 2007, FEBS letters.
[48] J. Wei,et al. Purified and sterilized magnetosomes from Magnetospirillum gryphiswaldense MSR‐1 were not toxic to mouse fibroblasts in vitro , 2007, Letters in applied microbiology.
[49] R. Kopp,et al. Experimental Observation of Magnetosome Chain Collapse in Magnetotactic Bacteria: Sedimentological, paleomagnetic, and evolutionary implications , 2006 .
[50] D. Schüler,et al. Biochemical and Proteomic Analysis of the Magnetosome Membrane in Magnetospirillum gryphiswaldense , 2004, Applied and Environmental Microbiology.
[51] Y. Fukumori,et al. Iron Reductase for Magnetite Synthesis in the Magnetotactic Bacterium Magnetospirillum magnetotacticum , 1999, Journal of bacteriology.
[52] Anton P. J. Middelberg,et al. On the mechanism of microbial cell disruption in high-pressure homogenisation , 1998 .
[53] G. J. Brakenhoff,et al. Fluorescence saturation in confocal microscopy , 1994 .
[54] T. Matsunaga,et al. Immunoassay method for the determination of immunoglobulin G using bacterial magnetic particles. , 1991, Analytical chemistry.
[55] R. Blakemore,et al. Magnetotactic bacteria , 1975, Science.
[56] C. Tanford,et al. Binding of dodecyl sulfate to proteins at high binding ratios. Possible implications for the state of proteins in biological membranes. , 1970, Proceedings of the National Academy of Sciences of the United States of America.
[57] O. Glatter. Dynamic Light Scattering (DLS) , 2018 .
[58] J. Tangtua. Evaluation and comparison of microbial cells disruption methods for extraction of pyruvate decarboxylase , 2014 .