Bionano Publications

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  1. Exploring the dynamics and structure of PpiB in living Escherichia coli cells using electron paramagnetic resonance spectroscopy

    Ben-Ishay Y., Barak Y., Feintuch A., Ouari O., Pierro A., Mileo E., Su X. C. & Goldfarb D. (2024) Protein Science. 33, 3, e4903
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  3. A genetic circuit on a single DNA molecule as an autonomous dissipative nanodevice

    Greiss F., Lardon N., Schütz L., Barak Y., Daube S. S., Weinhold E., Noireaux V. & Bar-Ziv R. (2024) Nature Communications. 15, 1, 883
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  5. From Microstates to Macrostates in the Conformational Dynamics of GroEL: A Single-Molecule Förster Resonance Energy Transfer Study

    Liebermann D. G., Jungwirth J., Riven I., Barak Y., Levy D., Horovitz A. & Haran G. (2023) Journal of Physical Chemistry Letters. 14, 29, p. 6513-6521
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  7. From Microstates to Macrostates in the Conformational Dynamics of GroEL: a Single-Molecule FRET Study

    Liebermann D., Jungwirth J., Riven I., Barak Y., Levy D., Horovitz A. & Haran G. (2023) BioRxiv.
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  9. Two closed ATP- and ADP-dependent conformations in yeast Hsp90 chaperone detected by Mn(II) EPR spectroscopic techniques

    Giannoulis A., Feintuch A., Barak Y., Mazal H., Albeck S., Unger T., Yang F., Su X. & Goldfarb D. (2020) Proceedings of the National Academy of Sciences of the United States of America. 117, 1, p. 395-404
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  11. Tracking Conformational Changes in Calmodulin in vitro, in Cell Extract, and in Cells by Electron Paramagnetic Resonance Distance Measurements

    Dalaloyan A., Martorana A., Barak Y., Gataulin D., Reuveny E., Howe A., Elbaum M., Albeck S., Unger T., Frydman V., Abdelkader E. H., Otting G. & Goldfarb D. (2019) ChemPhysChem. 20, 14, p. 1860-1868
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  13. Nrf2 protects against diverse PM<sub>2.5</sub> components-induced mitochondrial oxidative damage in lung cells

    Pardo M., Xu F., Shemesh M., Qiu X., Barak Y., Zhu T. & Rudich Y. (2019) Science of the Total Environment. 669, p. 303-313
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  15. Tunable microsecond dynamics of an allosteric switch regulate the activity of a AAA+ disaggregation machine

    Mazal H., Iljina M., Barak Y., Elad N., Rosenzweig R., Goloubinoff P., Riven I. & Haran G. (2019) Nature Communications. 10, 1, 1438
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  17. Dynamic interactions of type I cohesin modules fine-tune the structure of the cellulosome of Clostridium thermocellum

    Barth A., Hendrix J., Fried D., Barak Y., Bayer E. A. & Lamb D. C. (2018) Proceedings Of The National Academy Of Sciences Of The United States Of America-Physical Sciences. 115, 48, p. E11274-E11283
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  19. Manipulating the Folding Landscape of a Multi-Domain Protein

    Kantaev R., Riven I., Goldenzweig A., Barak Y., Dym O., Peleg Y., Albeck S., Fleishman S. J. & Haran G. (2018) Journal of Physical Chemistry B. 122, 49, p. 11030-11038
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  21. Direct observation of ultrafast large-scale dynamics of an enzyme under turnover conditions

    Aviram H. Y., Pirchi M., Mazal H., Barak Y., Riven I. & Haran G. (2018) Proceedings Of The National Academy Of Sciences Of The United States Of America-Biological Sciences. 115, 13, p. 3243-3248
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  23. Two states or not two states: Single-molecule folding studies of protein L

    Aviram H. Y., Pirchi M., Barak Y., Riven I. & Haran G. (2018) Journal of Chemical Physics. 148, 12, 123303
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  25. Complexity of the Ruminococcus flavefaciens FD-1 cellulosome reflects an expansion of family-related protein-protein interactions

    Israeli-Ruimy V., Bule P., Jindou S., Dassa B., Morais S., Borovok I., Barak Y., Slutzki M., Hamberg Y., Cardoso V., Alves V. D., Najmudin S., White B. A., Flint H. J., Gilbert H. J., Lamed R., Fontes C. M. G. A. & Bayer E. (2017) Scientific Reports. 7, 42355
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  27. Direct fluorescence detection of VirE2 secretion by Agrobacterium tumefaciens

    Yaakov N., Barak Y., Pereman I., Christie P. J. & Elbaum M. (2017) PLoS ONE. 12, 4, e0175273
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  29. The electrosome: A surface-displayed enzymatic cascade in a biofuel cell’s anode and a high-density surface-displayed biocathodic enzyme

    Szczupak A., Aizik D., Morais S., Vazana Y., Barak Y., Bayer E. & Alfonta L. (2017) Nanomaterials. 7, 7, 153
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  31. How does cellulosome composition influence deconstruction of lignocellulosic substrates in Clostridium (Ruminiclostridium) thermocellum DSM 1313?

    Yoav S., Barak Y., Shamshoum M., Borovok I., Lamed R., Dassa B., Hadar Y., Morag E. & Bayer E. (2017) Biotechnology for Biofuels. 10, 1, 222
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  33. Insights into a type III cohesin-dockerin recognition interface from the cellulose-degrading bacterium Ruminococcus flavefaciens

    Weinstein J. Y., Slutzki M., Karpol A., Barak Y., Gul O., Lamed R., Bayer E. & Fried D. B. (2015) Journal of Molecular Recognition. 28, 3, p. 148-154
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  35. Clostridium clariflavum: Key cellulosome players are revealed by proteomic analysis

    Artzi L., Morag E., Barak Y., Lamed R. & Bayer E. (2015) mBio. 6, 3, p. 1-12, e00411-15
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  37. Crucial roles of single residues in binding affinity, specificity, and promiscuity in the cellulosomal cohesin-dockerin interface

    Slutzki M., Reshef D., Barak Y., Haimovitz R., Rotem-Bamberger S., Lamed R., Bayer E. & Schueler-Furman O. (2015) Journal of Biological Chemistry. 290, 22, p. 13654-13666
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  39. Elaborate cellulosome architecture of Acetivibrio cellulolyticus revealed by selective screening of cohesin-dockerin interactions

    Hamberg Y., Ruimy-Israeli V., Dassa B., Barak Y., Lamed R., Cameron K., Fontes C., Bayer E. & Fried D. (2014) PeerJ. 2014, 1, 636
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  41. Intramolecular clasp of the cellulosomal Ruminococcus flavefaciens ScaA dockerin module confers structural stability

    Slutzki M., Jobby M. K., Chitayat S., Karpol A., Dassa B., Barak Y., Lamed R., Smith S. P. & Bayer E. A. (2013) FEBS Open Bio. 3, p. 398-
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  43. A synthetic biology approach for evaluating the functional contribution of designer cellulosome components to deconstruction of cellulosic substrates

    Vazana Y., Barak Y., Unger T., Peleg Y., Shamshoum M., Ben-Yehezkel T., Mazor Y., Shapiro E., Lamed R. & Bayer E. (2013) Biotechnology for Biofuels. 6, 1, 182
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  45. Variable internal flexibility characterizes the helical capsid formed by agrobacterium VirE2 protein on single-stranded DNA

    Bharat T. A. M., Zbaida D., Eisenstein M., Frankenstein Z., Mehlman T., Weiner L., Sorzano C. O. S., Barak Y., Albeck S., Briggs J. A. G., Wolf S. G. & Elbaum M. (2013) Structure. 21, 7, p. 1158-1167
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  47. Measurements of relative binding of cohesin and dockerin mutants using an advanced ELISA technique for high-affinity interactions

    Slutzki M., Barak Y., Reshef D., Schueler-Furman O., Lamed R. & Bayer E. A. (2012) . p. 417-428
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  49. High-throughput screening of cohesin mutant libraries on cellulose microarrays

    Slutzki M., Ruimy V., Morag E., Barak Y., Haimovitz R., Lamed R. & Bayer E. (2012) . p. 453-463
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  51. Designer cellulosomes for enhanced hydrolysis of cellulosic substrates

    Vazana Y., Moraïs S., Barak Y., Lamed R. & Bayer E. A. (2012) . p. 429-452
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  53. Deconstruction of lignocellulose into soluble sugars by native and designer cellulosomes

    Moraïs S., Morag E., Barak Y., Goldman D., Hadar Y., Lamed R., Shoham Y., Wilson D. B. & Bayera E. A. (2012) mBio. 3, 6, e00508-12
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  55. Functional association of catalytic and ancillary modules dictates enzymatic activity in glycoside hydrolase family 43 β-xylosidase

    Moraïs S., Salama-Alber O., Barak Y., Hadar Y., Wilson D. B., Lamed R., Shoham Y. & Bayer E. A. (2012) Journal of Biological Chemistry. 287, 12, p. 9213-9221
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  57. Solvent Accessibility in the Distal Heme Pocket of the Nitrosyl d(1)-Heme Complex of Pseudomonas stutzeri cd(1) Nitrite Reductase

    Radoul M., Barak Y., Rinaldo S., Cutruzzola F., Pecht I. & Goldfarb D. (2012) Biochemistry. 51, 45, p. 9192-9201
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  59. Indirect ELISA-based approach for comparative measurement of high-affinity cohesin-dockerin interactions

    Slutzki M., Barak Y., Reshef D., Schueler-Furman O., Lamed R. & Bayer E. A. (2012) Journal of Molecular Recognition. 25, 11, p. 616-622
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  61. Single-molecule dissection of the high-affinity cohesin-dockerin complex

    Stahl S. W., Nash M. A., Fried D. B., Slutzki M., Barak Y., Bayer E. A. & Gaub H. E. (2012) Proceedings of the National Academy of Sciences of the United States of America. 109, 50, p. 20431-20436
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  63. Paradigmatic status of an endo- and exoglucanase and its effect on crystalline cellulose degradation

    Moraïs S., Barak Y., Lamed R., Wilson D. B., Xu Q., Himmel M. E. & Bayer E. A. (2012) Biotechnology for Biofuels. 5, 78
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  65. Assembly of Xylanases into Designer Cellulosomes Promotes Efficient Hydrolysis of the Xylan Component of a Natural Recalcitrant Cellulosic Substrate

    Morais S., Barak Y., Hadar Y., Wilson D. B., Shoham Y., Lamed R. & Bayer E. (2011) mBio. 2, 6
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  67. Single-molecule fluorescence spectroscopy maps the folding landscape of a large protein

    Pirchi M., Ziv G., Riven I., Cohen S. S., Zohar N., Barak Y. & Haran G. (2011) Nature Communications. 2, 1, 493
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  69. Thermobifida fusca exoglucanase Cel6B is incompatible with the cellulosomal mode in contrast to endoglucanase Cel6A

    Caspi J., Barak Y., Haimovitz R., Gilary H., Irwin D. C., Lamed R., Wilson D. B. & Bayer E. A. (2010) Systems and Synthetic Biology. 4, 3, p. 193-201
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  71. Interplay between Clostridium thermocellum family 48 and family 9 cellulases in cellulosomal versus noncellulosomal states

    Vazana Y., Moraïs S., Barak Y., Lamed R. & Bayer E. A. (2010) Applied and Environmental Microbiology. 76, 10, p. 3236-3243
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  73. Cellulase-xylanase synergy in designer cellulosomes for enhanced degradation of a Complex cellulosic substrate

    Moraïs S., Barak Y., Caspi J., Hadar Y., Lamed R., Shoham Y., Wilson D. B. & Bayer E. A. (2010) mBio. 1, 5, e00285-10
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  75. Contribution of a Xylan-Binding Module to the Degradation of a Complex Cellulosic Substrate by Designer Cellulosomes

    Morais S., Barak Y., Caspi J., Hadar Y., Lamed R., Shoham Y., Wilson D. B. & Bayer E. (2010) Applied and Environmental Microbiology. 76, 12, p. 3787-3796
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  77. Homology swapping of intrinsic secondary structural elements between cellulosomal types I and II cohesins and their effect on dockerin binding

    Noach I., Barak Y., Frolow F., Lamed R. & Bayer E. A. (2010) Pure and Applied Chemistry. 82, 1, p. 193-204
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  79. Enhanced cellulose degradation by nano-complexed enzymes: Synergism between a scaffold-linked exoglucanase and a free endoglucanase

    Moraïs S., Heyman A., Barak Y., Caspi J., Wilson D. B., Lamed R., Shoseyov O. & Bayer E. A. (2010) Journal of Biotechnology. 147, 3-4, p. 205-211
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  81. Characterization of a dockerin-based affinity tag: Application for purification of a broad variety of target proteins

    Demishtein A., Karpol A., Barak Y., Lamed R. & Bayer E. A. (2010) Journal of Molecular Recognition. 23, 6, p. 525-535
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  83. Engineering a reversible, high-affinity system for efficient protein purification based on the cohesin-dockerin interaction

    Karpol A., Kantorovich L., Demishten A., Barak Y., Morag E., Lamed R. & Bayer E. A. (2009) Journal of Molecular Recognition. 22, 2, p. 91-98
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  85. Effect of linker length and dockerin position on conversion of a Thermobifida fusca endoglucanase to the cellulosomal mode

    Caspi J., Barak Y., Haimovitz R., Irwin D., Lamed R., Wilson D. B. & Bayer E. (2009) Applied and Environmental Microbiology. 75, 23, p. 7335-7342
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  87. Cohesin-dockerin microarray: Diverse specificities between two complementary families of interacting protein modules

    Haimovitz R., Barak Y., Morag E., Voronov-Goldman M., Shoham Y., Lamed R. & Bayer E. (2008) Proteomics. 8, 5, p. 968-979
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  89. Functional asymmetry in cohesin binding belies inherent symmetry of the dockerin module: Insight into cellulosome assembly revealed by systematic mutagenesis

    Karpol A., Barak Y., Lamed R., Shoham Y. & Bayer E. A. (2008) Biochemical Journal. 410, 2, p. 331-338
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  91. A novel cell surface-anchored cellulose-binding protein encoded by the sca gene cluster of Ruminococcus flavefaciens

    Rincon M. T., Cepeljnik T., Martin J. C., Barak Y., Lamed R., Bayer E. & Flint H. J. (2007) Journal of Bacteriology. 189, 13, p. 4774-4783
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  93. Multiple display of catalytic modules on a protein scaffold: Nano-fabrication of enzyme particles

    Heyman A., Barak Y., Caspi J., Wilson D. B., Altmana A., Bayer E. & Shoseyov O. (2007) Journal of Biotechnology. 131, 4, p. 433-439
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  95. The functional repertoire of prokaryote cellulosomes includes the serpin superfamily of serine proteinase inhibitors

    Kang S., Barak Y., Lamed R., Bayer E. & Morrison M. (2006) Molecular Microbiology. 60, 6, p. 1344-1354
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  97. Versatile derivatives of carbohydrate-binding modules for imaging of complex carbohydrates approaching the molecular level of resolution

    Ding S. Y., Xu Q., Ali M. K., Baker J. O., Bayer E. A., Barak Y., Lamed R., Sugiyama J., Rumbles G. & Himmel M. E. (2006) BioTechniques. 41, 4, p. 435-443
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  99. Versatile protein microarray based on carbohydrate-binding modules

    Ofir K., Berdichevsky Y., Benhar I., Azriel-Rosenfeld R., Larned R., Barak Y., Bayer E. & Morag E. (2005) Proteomics. 5, 7, p. 1806-1814
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  101. Unconventional mode of attachment of the Ruminococcus flavefaciens cellulosome to the cell surface

    Rincon M., Cepeljnik T., Martin J., Lamed R., Barak Y., Bayer E. & Flint H. (2005) Journal of Bacteriology. 187, 22, p. 7569-7578
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  103. Matching fusion protein systems for affinity analysis of two interacting families of proteins: The cohesin-dockerin interaction

    Barak Y., Handelsman T., Nakar D., Mechaly A., Lamed R., Shoham Y. & Bayer E. (2005) Journal of Molecular Recognition. 18, 6, p. 491-501