Protein folding intermediates and inclusion body formation. A Mitraki, J King Bio/technology 7 (7), 690-697, 1989 | 702 | 1989 |
A triple β-spiral in the adenovirus fibre shaft reveals a new structural motif for a fibrous protein MJ Van Raaij, A Mitraki, G Lavigne, S Cusack Nature 401 (6756), 935-938, 1999 | 413 | 1999 |
Global suppression of protein folding defects and inclusion body formation A Mitraki, B Fane, C Haase-Pettingell, J Sturtevant, J King Science 253 (5015), 54-58, 1991 | 263 | 1991 |
Using the whole-genome sequence to characterize and name human adenoviruses D Seto, J Chodosh, JR Brister, MS Jones, ... Journal of virology 85 (11), 5701, 2011 | 246 | 2011 |
Thermolabile folding intermediates: inclusion body precursors and chaperonin substrates J King, C Haase-Pettingell, AS Robinson, M Speed, A Mitraki The FASEB journal: official publication of the Federation of American …, 1996 | 188 | 1996 |
Directed three-dimensional patterning of self-assembled peptide fibrils V Dinca, E Kasotakis, J Catherine, A Mourka, A Ranella, A Ovsianikov, ... Nano Letters 8 (2), 538-543, 2008 | 156 | 2008 |
Self‐assembled proteins and peptides as scaffolds for tissue regeneration Y Loo, M Goktas, AB Tekinay, MO Guler, CAE Hauser, A Mitraki Advanced healthcare materials 4 (16), 2557-2586, 2015 | 144 | 2015 |
Plenty of room for biology at the bottom: an introduction to bionanotechnology E Gazit, A Mitraki World Scientific, 2013 | 132 | 2013 |
Design of metal‐binding sites onto self‐assembled peptide fibrils E Kasotakis, E Mossou, L Adler‐Abramovich, EP Mitchell, VT Forsyth, ... Peptide Science: Original Research on Biomolecules 92 (3), 164-172, 2009 | 122 | 2009 |
Effect of solvent on the self-assembly of dialanine and diphenylalanine peptides AN Rissanou, E Georgilis, E Kasotakis, A Mitraki, V Harmandaris The Journal of Physical Chemistry B 117 (15), 3962-3975, 2013 | 117 | 2013 |
Amino acid substitutions influencing intracellular protein folding pathways A Mitraki, J King FEBS letters 307 (1), 20-25, 1992 | 105 | 1992 |
Bacterial inclusion bodies are industrially exploitable amyloids A De Marco, N Ferrer-Miralles, E Garcia-Fruitós, A Mitraki, S Peternel, ... FEMS microbiology reviews 43 (1), 53-72, 2019 | 103 | 2019 |
Structure of the fiber head of Ad3, a non-CAR-binding serotype of adenovirus C Durmort, C Stehlin, G Schoehn, A Mitraki, E Drouet, S Cusack, ... Virology 285 (2), 302-312, 2001 | 92 | 2001 |
Temperature-sensitive mutations and second-site suppressor substitutions affect folding of the P22 tailspike protein in vitro. A Mitraki, M Danner, J King, R Seckler Journal of Biological Chemistry 268 (27), 20071-20075, 1993 | 92 | 1993 |
A switchable self-assembling and disassembling chiral system based on a porphyrin-substituted phenylalanine–phenylalanine motif G Charalambidis, E Georgilis, MK Panda, CE Anson, AK Powell, S Doyle, ... Nature communications 7 (1), 12657, 2016 | 90 | 2016 |
Quasi‐irreversibility in the unfolding‐refolding transition of phosphoglycerate kinase induced by guanidine hydrochloride A Mitraki, JM BETTON, M Desmadril, JM Yon European journal of biochemistry 163 (1), 29-34, 1987 | 90 | 1987 |
Amyloid fibril formation from sequences of a natural β-structured fibrous protein, the adenovirus fiber K Papanikolopoulou, G Schoehn, V Forge, VT Forsyth, C Riekel, ... Journal of Biological Chemistry 280 (4), 2481-2490, 2005 | 89 | 2005 |
Formation of highly stable chimeric trimers by fusion of an adenovirus fiber shaft fragment with the foldon domain of bacteriophage t4 fibritin K Papanikolopoulou, V Forge, P Goeltz, A Mitraki Journal of Biological Chemistry 279 (10), 8991-8998, 2004 | 84 | 2004 |
Development of an electrochemical metal-ion biosensor using self-assembled peptide nanofibrils B Viguier, K Zór, E Kasotakis, A Mitraki, CH Clausen, WE Svendsen, ... ACS applied materials & interfaces 3 (5), 1594-1600, 2011 | 76 | 2011 |
Protein aggregation: from inclusion bodies to amyloid and biomaterials A Mitraki Advances in protein chemistry and structural biology 79, 89-125, 2010 | 67 | 2010 |