Bioquímica y Biología Molecular
Department
Jorge
Alegre Cebollada
Publications by the researcher in collaboration with Jorge Alegre Cebollada (19)
2023
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Cell response to substrate energy dissipation outweighs rigidity sensing
Biophysical journal, Vol. 122, Núm. 3S1
2016
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Synergistic action of actinoporin isoforms from the same sea anemone species assembled into functionally active heteropores
Journal of Biological Chemistry, Vol. 291, Núm. 27, pp. 14109-14119
2013
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Three-dimensional structure of the actinoporin sticholysin i. influence of long-distance effects on protein function
Archives of Biochemistry and Biophysics, Vol. 532, Núm. 1, pp. 39-45
2011
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Intrinsic local disorder and a network of charge-charge interactions are key to actinoporin membrane disruption and cytotoxicity
FEBS Journal, Vol. 278, Núm. 12, pp. 2080-2089
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The behavior of sea anemone actinoporins at the water-membrane interface
Biochimica et Biophysica Acta - Biomembranes, Vol. 1808, Núm. 9, pp. 2275-2288
2010
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1H, 13C, and 15N NMR assignments of StnII-Y111N, a highly impaired mutant of the sea anemone actinoporin Sticholysin II
Biomolecular NMR Assignments, Vol. 4, Núm. 1, pp. 69-72
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Specific interactions of sticholysin I with model membranes: An NMR study
Proteins: Structure, Function and Bioinformatics, Vol. 78, Núm. 8, pp. 1959-1970
2009
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1H, 13C, and 15N NMR assignments of StnII-R29Q, a defective lipid binding mutant of the sea anemone actinoporin Sticholysin II
Biomolecular NMR Assignments, Vol. 3, Núm. 2, pp. 239-241
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1H, 13C, and 15N NMR assignments of the actinoporin Sticholysin i
Biomolecular NMR Assignments, Vol. 3, Núm. 1, pp. 5-7
2008
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Calorimetric Scrutiny of Lipid Binding by Sticholysin II Toxin Mutants
Journal of Molecular Biology, Vol. 382, Núm. 4, pp. 920-930
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Lactococcus lactis as a vehicle for the heterologous expression of fungal ribotoxin variants with reduced IgE-binding affinity
Journal of Biotechnology, Vol. 134, Núm. 1-2, pp. 1-8
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Mecanismo de formación de poros en membranas por la actinoporina sticholisina II
Mecanismo de formación de poros en membranas por la actinoporina sticholisina II
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The therapeutic potential of fungal ribotoxins
Current Pharmaceutical Biotechnology, Vol. 9, Núm. 3, pp. 153-160
2007
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Fungal ribotoxins: Molecular dissection of a family of natural killers
FEMS Microbiology Reviews, Vol. 31, Núm. 2, pp. 212-237
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Infrared spectroscopy study on the conformational changes leading to pore formation of the toxin sticholysin II
Biophysical Journal, Vol. 93, Núm. 9, pp. 3191-3201
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Sea anemone actinoporins: The transition from a folded soluble state to a functionally active membrane-bound oligomeric pore
Current Protein and Peptide Science, Vol. 8, Núm. 6, pp. 558-572
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Silent mutations at the 5′-end of the cDNA of actinoporins from the sea anemone Stichodactyla helianthus allow their heterologous overproduction in Escherichia coli
Journal of Biotechnology, Vol. 127, Núm. 2, pp. 211-221
2006
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Detergent-resistant membranes are platforms for actinoporin pore-forming activity on intact cells
FEBS Journal, Vol. 273, Núm. 4, pp. 863-871
2004
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Phenotypic selection and characterization of randomly produced non-haemolytic mutants of the toxic sea anemone protein sticholysin II
FEBS Letters, Vol. 575, Núm. 1-3, pp. 14-18