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020 _a9783031023859
024 7 _a10.1007/978-3-031-02385-9
_2doi
040 _aES-MaUEC
_bspa
_cES-MaUEC
_dES-MaUEC
050 4 _aQH212.A78
_b2020 EB
100 1 _aTouhami, Ahmed
_eautor
_4aut
_4http://id.loc.gov/vocabulary/relators/aut
_9688325
245 1 0 _aAtomic Force Microscopy :
_bA New Look at Microbes
_cby Ahmed Touhami
250 _a1st edition 2020
264 1 _aCham
_bSpringer International Publishing
_c2020
300 _a1 recurso en línea (XIV, 97 páginas)
336 _atexto
_btxt
_2rdacontent
337 _aelectrónico
_bc
_2rdamedia
338 _arecurso electrónico
_bcr
_2rdacarrier
347 _aarchivo de texto
_bPDF
490 0 _aSynthesis Lectures on Materials and Optics
_x2691-1949
505 0 _aPreface -- Acknowledgments -- Measurement Methods in Atomic Force Microscopy -- Cell Surface Structures at the Nanoscale -- AFM Force Spectroscopy of Living Bacteria -- Bacteria Mechanics at the Nanoscale -- Author's Biography.
520 _aOver the last two decades, Atomic Force Microscopy (AFM) has undoubtedly had a considerable impact in unraveling the structures and dynamics of microbial surfaces with nanometer resolution, and under physiological conditions. Moreover, the continuous innovations in AFM-based modalities as well as the combination of AFM with modern optical techniques, such as confocal fluorescence microscopy or Raman spectroscopy, increased the diversity and volume of data that can be acquired in an experiment. It is evident that these combinations provide new ways to investigate a broad spectrum of microbiological processes at the level of single cells. In this book, I have endeavored to highlight the wealth of AFM-based modalities that have been implemented over the recent years leading to the multiparametric and multifunctional characterization of, specifically, bacterial surfaces. Examples include the real-time imaging of the nanoscale organization of cell walls, the quantification of subcellular chemical heterogeneities, the mapping and functional analysis of individual cell wall constituents, and the probing of the nanomechanical properties of living bacteria. It is expected that in the near future more AFM-based modalities and complementary techniques will be combined into single experiments to address pertinent problems and challenges in microbial research. Such improvements may make it possible to address the dynamic nature of many more microbial cell surfaces and their constituents, including the restructuring of cellular membranes, pores and transporters, signaling of cell membrane receptors, and formation of cell-adhesion complexes. Ultimately, manifold discoveries and engineering possibilities will materialize as multiparametric tools allow systems of increasing complexity to be probed and manipulated.
988 _aSynthesis Collection of Technology_2020
650 7 _2embne
_9138719
_aMicroscopía
650 7 _2embne
_9142266
_aMembranas celulares
776 0 8 _iPrinted edition:
_z9783031002496
776 0 8 _iPrinted edition:
_z9783031012570
776 0 8 _iPrinted edition:
_z9783031035135
856 4 0 _uhttps://go.openathens.net/redirector/universidadeuropea.es?url=https://doi.org/10.1007/978-3-031-02385-9
_zAcceso a este recurso digital (usuarios Universidad Europea de Madrid)
942 _2lcc
_cLE
998 _b04/2023
_dz
_eIG
_zSI