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Sarkar A. Biosensing, Characterization of Biosensors, and Improved Drug Delivery Approaches Using Atomic Force Microscopy: A Review. FRONTIERS IN NANOTECHNOLOGY 2022. [DOI: 10.3389/fnano.2021.798928] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.7] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/28/2022] Open
Abstract
Since its invention, atomic force microscopy (AFM) has come forth as a powerful member of the “scanning probe microscopy” (SPM) family and an unparallel platform for high-resolution imaging and characterization for inorganic and organic samples, especially biomolecules, biosensors, proteins, DNA, and live cells. AFM characterizes any sample by measuring interaction force between the AFM cantilever tip (the probe) and the sample surface, and it is advantageous over other SPM and electron micron microscopy techniques as it can visualize and characterize samples in liquid, ambient air, and vacuum. Therefore, it permits visualization of three-dimensional surface profiles of biological specimens in the near-physiological environment without sacrificing their native structures and functions and without using laborious sample preparation protocols such as freeze-drying, staining, metal coating, staining, or labeling. Biosensors are devices comprising a biological or biologically extracted material (assimilated in a physicochemical transducer) that are utilized to yield electronic signal proportional to the specific analyte concentration. These devices utilize particular biochemical reactions moderated by isolated tissues, enzymes, organelles, and immune system for detecting chemical compounds via thermal, optical, or electrical signals. Other than performing high-resolution imaging and nanomechanical characterization (e.g., determining Young’s modulus, adhesion, and deformation) of biosensors, AFM cantilever (with a ligand functionalized tip) can be transformed into a biosensor (microcantilever-based biosensors) to probe interactions with a particular receptors of choice on live cells at a single-molecule level (using AFM-based single-molecule force spectroscopy techniques) and determine interaction forces and binding kinetics of ligand receptor interactions. Targeted drug delivery systems or vehicles composed of nanoparticles are crucial in novel therapeutics. These systems leverage the idea of targeted delivery of the drug to the desired locations to reduce side effects. AFM is becoming an extremely useful tool in figuring out the topographical and nanomechanical properties of these nanoparticles and other drug delivery carriers. AFM also helps determine binding probabilities and interaction forces of these drug delivery carriers with the targeted receptors and choose the better agent for drug delivery vehicle by introducing competitive binding. In this review, we summarize contributions made by us and other researchers so far that showcase AFM as biosensors, to characterize other sensors, to improve drug delivery approaches, and to discuss future possibilities.
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Wang D, Stuart JD, Jones AA, Snow CD, Kipper MJ. Measuring interactions of DNA with nanoporous protein crystals by atomic force microscopy. NANOSCALE 2021; 13:10871-10881. [PMID: 34124715 DOI: 10.1039/d1nr01703a] [Citation(s) in RCA: 7] [Impact Index Per Article: 1.8] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 06/12/2023]
Abstract
Crosslinked porous protein crystals are a new biomaterial that can be engineered to encapsulate, stabilize, and organize guest molecules, nanoparticles, and biological moieties. In this study, for the first time, the combined interactions of DNA strands with porous protein crystals are quantitatively measured by high-resolution atomic force microscopy (AFM) and chemical force microscopy. The surface structure of protein crystals with unusually large pores was observed in liquid via high-resolution AFM. Force-distance (F-D) curves were also obtained using AFM tips modified to present or capture DNA. The modification of AFM tips allowed the tips to covalently bind DNA that was pre-loaded in the protein crystal nanopores. The modified tips enabled the interactions of DNA molecules with protein crystals to be quantitatively studied while revealing the morphology of the buffer-immersed protein crystal surface in detail, thereby preserving the structure and properties of protein crystals that could be disrupted or destroyed by drying. The hexagonal space group was manifest at the crystal surface, as were the strong interactions between DNA and the porous protein crystals in question. In sum, this study furthered our understanding of how a new protein-based biomaterial can be used to bind guest DNA assemblies.
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Affiliation(s)
- Dafu Wang
- School of Advanced Materials Discovery, Colorado State University, 1617 Campus Delivery, Fort Collins, CO 80523, USA and Department of Chemical and Biological Engineering, Colorado State University, 1370 Campus Delivery, Fort Collins, CO 80523, USA.
| | - Julius D Stuart
- Department of Chemistry, Colorado State University, 1872 Campus Delivery, Fort Collins, CO 80523, USA
| | - Alec A Jones
- School of Biomedical Engineering, Colorado State University, 1301 Campus Delivery, Fort Collins, CO 80523, USA
| | - Christopher D Snow
- School of Advanced Materials Discovery, Colorado State University, 1617 Campus Delivery, Fort Collins, CO 80523, USA and Department of Chemical and Biological Engineering, Colorado State University, 1370 Campus Delivery, Fort Collins, CO 80523, USA. and Department of Chemistry, Colorado State University, 1872 Campus Delivery, Fort Collins, CO 80523, USA and School of Biomedical Engineering, Colorado State University, 1301 Campus Delivery, Fort Collins, CO 80523, USA
| | - Matt J Kipper
- School of Advanced Materials Discovery, Colorado State University, 1617 Campus Delivery, Fort Collins, CO 80523, USA and Department of Chemical and Biological Engineering, Colorado State University, 1370 Campus Delivery, Fort Collins, CO 80523, USA. and School of Biomedical Engineering, Colorado State University, 1301 Campus Delivery, Fort Collins, CO 80523, USA
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Díaz-Marrero AR, Rodríguez González MC, Hernández Creus A, Rodríguez Hernández A, Fernández JJ. Damages at the nanoscale on red blood cells promoted by fire corals. Sci Rep 2019; 9:14298. [PMID: 31586105 PMCID: PMC6778144 DOI: 10.1038/s41598-019-50744-6] [Citation(s) in RCA: 3] [Impact Index Per Article: 0.5] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 06/07/2019] [Accepted: 09/13/2019] [Indexed: 02/08/2023] Open
Abstract
The hydrocoral Millepora alcicornis, known as fire coral, biosynthesize protein toxins with phospholipase A2 (PLA2) activity as a main defense mechanism; proteins that rapidly catalyse the hydrolysis at the sn-2 position of phosphatidylcholine-type phospholipids of cellular membranes. This hydrolysis mechanism triggers a structural damage in the outer leaflet of the red blood cells (RBC) membrane, by generating pores in the lipid bilayer that leads to a depletion of the cellular content of the damaged cell. A secondary mechanism, tentatively caused by pore-forming proteins toxins (PFTs), has been observed. The use of atomic force microscopy (AFM) has allowed to visualize the evolution of damages produced on the surface of the cells at the nanoscale level along the time.
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Affiliation(s)
- Ana R Díaz-Marrero
- Instituto Universitario de Bio-Orgánica Antonio González (IUBO AG), Centro de Investigaciones Biomédicas de Canarias (CIBICAN), Universidad de La Laguna (ULL), Avda, Astrofísico Francisco Sánchez 2, 38206, La Laguna, Tenerife, Spain
| | - Miriam C Rodríguez González
- Departamento de Química, Área de Química Física, Instituto de Materiales y Nanotecnología (IMN), Universidad de La Laguna (ULL), Avda. Astrofísico Francisco Sánchez s.n., 38206, La Laguna, Tenerife, Spain
| | - Alberto Hernández Creus
- Departamento de Química, Área de Química Física, Instituto de Materiales y Nanotecnología (IMN), Universidad de La Laguna (ULL), Avda. Astrofísico Francisco Sánchez s.n., 38206, La Laguna, Tenerife, Spain
| | - Adriana Rodríguez Hernández
- Departamento de Biología Animal, Edafología y Geología. UD Ciencias Marinas. Facultad de Ciencias (Sección Biología), Universidad de La Laguna (ULL), Avda. Astrofísico Francisco Sánchez s.n., 38206, La Laguna, Tenerife, Spain
| | - José J Fernández
- Instituto Universitario de Bio-Orgánica Antonio González (IUBO AG), Centro de Investigaciones Biomédicas de Canarias (CIBICAN), Universidad de La Laguna (ULL), Avda, Astrofísico Francisco Sánchez 2, 38206, La Laguna, Tenerife, Spain. .,Departamento de Química Orgánica, Universidad de La Laguna (ULL), Avda. Astrofísico Francisco Sánchez s.n., 38206, La Laguna, Tenerife, Spain.
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Essmann CL, Elmi M, Shaw M, Anand GM, Pawar VM, Srinivasan MA. In-vivo high resolution AFM topographic imaging of Caenorhabditis elegans reveals previously unreported surface structures of cuticle mutants. NANOMEDICINE-NANOTECHNOLOGY BIOLOGY AND MEDICINE 2016; 13:183-189. [PMID: 27702605 DOI: 10.1016/j.nano.2016.09.006] [Citation(s) in RCA: 23] [Impact Index Per Article: 2.6] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Received: 02/05/2016] [Revised: 08/04/2016] [Accepted: 09/14/2016] [Indexed: 11/15/2022]
Abstract
Atomic force microscopy (AFM) is a powerful method for topographic imaging of surfaces with nanometer resolution. AFM offers significant advantages over scanning electron microscopy (SEM) including the acquisition of quantitative 3D-images and biomechanical information. More importantly, for in-vivo biological imaging, AFM does not require sample dehydration/labeling. We show for the first time high-resolution topographical images of the cuticle of the model organism C. elegans under physiological conditions using AFM. C. elegans is used extensively for drug screening and to study pathogen adherence in innate immunity; both applications highly depend on the integrity of the nematode's cuticle. Mutations affecting both drug adsorption and pathogen clearance have been proposed to relate to changes in the cuticle structure, but never visually examined in high resolution. In this study we use AFM to visualize the topography of wild-type adult C. elegans as well as several cuticle collagen mutants and describe previously unseen anatomical differences.
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Affiliation(s)
- Clara L Essmann
- UCL TouchLab, Department of Computer Science, University College London, London, UK.
| | - Muna Elmi
- UCL TouchLab, Department of Computer Science, University College London, London, UK
| | - Mike Shaw
- UCL TouchLab, Department of Computer Science, University College London, London, UK; Analytical Science Division, National Physical Laboratory, UK
| | - Giridhar M Anand
- UCL TouchLab, Department of Computer Science, University College London, London, UK; Massachusetts Institute of Technology, Cambridge, MA, USA
| | - Vijay M Pawar
- UCL TouchLab, Department of Computer Science, University College London, London, UK
| | - Mandayam A Srinivasan
- UCL TouchLab, Department of Computer Science, University College London, London, UK; MIT Touchlab, Department of Mechanical Engineering and Research Laboratory of Electronics, Massachusetts Institute of Technology, Cambridge, MA, USA
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Usukura E, Narita A, Yagi A, Ito S, Usukura J. An Unroofing Method to Observe the Cytoskeleton Directly at Molecular Resolution Using Atomic Force Microscopy. Sci Rep 2016; 6:27472. [PMID: 27273367 PMCID: PMC4895337 DOI: 10.1038/srep27472] [Citation(s) in RCA: 26] [Impact Index Per Article: 2.9] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 01/22/2016] [Accepted: 05/19/2016] [Indexed: 11/09/2022] Open
Abstract
An improved unroofing method enabled the cantilever of an atomic force microscope (AFM) to reach directly into a cell to visualize the intracellular cytoskeletal actin filaments, microtubules, clathrin coats, and caveolae in phosphate-buffered saline (PBS) at a higher resolution than conventional electron microscopy. All of the actin filaments clearly exhibited a short periodicity of approximately 5-6 nm, which was derived from globular actins linked to each other to form filaments, as well as a long helical periodicity. The polarity of the actin filaments appeared to be determined by the shape of the periodic striations. Microtubules were identified based on their thickness. Clathrin coats and caveolae were observed on the cytoplasmic surface of cell membranes. The area containing clathrin molecules and their terminal domains was directly visualized. Characteristic ridge structures located at the surface of the caveolae were observed at high resolution, similar to those observed with electron microscopy (EM). Overall, unroofing allowed intracellular AFM imaging in a liquid environment with a level of quality equivalent or superior to that of EM. Thus, AFMs are anticipated to provide cutting-edge findings in cell biology and histology.
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Affiliation(s)
- Eiji Usukura
- Structural Biology Research Centre, Graduate School of Science, Nagoya University, Nagoya, 464-8603 Japan
| | - Akihiro Narita
- Structural Biology Research Centre, Graduate School of Science, Nagoya University, Nagoya, 464-8603 Japan
| | - Akira Yagi
- Olympus Corporation, Hachioji, Tokyo, 192-8512 Japan
| | - Shuichi Ito
- Olympus Corporation, Hachioji, Tokyo, 192-8512 Japan
| | - Jiro Usukura
- Structural Biology Research Centre, Graduate School of Science, Nagoya University, Nagoya, 464-8603 Japan
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Yang X, Scott HA, Monickaraj F, Xu J, Ardekani S, Nitta CF, Cabrera A, McGuire PG, Mohideen U, Das A, Ghosh K. Basement membrane stiffening promotes retinal endothelial activation associated with diabetes. FASEB J 2016; 30:601-11. [PMID: 26443820 PMCID: PMC6188223 DOI: 10.1096/fj.15-277962] [Citation(s) in RCA: 42] [Impact Index Per Article: 4.7] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 06/19/2015] [Accepted: 09/21/2015] [Indexed: 12/21/2022]
Abstract
Endothelial activation is a hallmark of the high-glucose (HG)-induced retinal inflammation associated with diabetic retinopathy (DR). However, precisely how HG induces retinal endothelial activation is not fully understood. We hypothesized that HG-induced up-regulation of lysyl oxidase (LOX), a collagen-cross-linking enzyme, in retinal capillary endothelial cells (ECs) enhances subendothelial basement membrane (BM) stiffness, which, in turn, promotes retinal EC activation. Diabetic C57BL/6 mice exhibiting a 70 and 50% increase in retinal intercellular adhesion molecule (ICAM)-1 expression and leukocyte accumulation, respectively, demonstrated a 2-fold increase in the levels of BM collagen IV and LOX, key determinants of capillary BM stiffness. Using atomic force microscopy, we confirmed that HG significantly enhances LOX-dependent subendothelial matrix stiffness in vitro, which correlated with an ∼2.5-fold increase in endothelial ICAM-1 expression, a 4-fold greater monocyte-EC adhesion, and an ∼2-fold alteration in endothelial NO (decrease) and NF-κB activation (increase). Inhibition of LOX-dependent subendothelial matrix stiffening alone suppressed HG-induced retinal EC activation. Finally, using synthetic matrices of tunable stiffness, we demonstrated that subendothelial matrix stiffening is necessary and sufficient to promote EC activation. These findings implicate BM stiffening as a critical determinant of HG-induced retinal EC activation and provide a rationale for examining BM stiffness and underlying mechanotransduction pathways as therapeutic targets for diabetic retinopathy.
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Affiliation(s)
- Xiao Yang
- *Department of Bioengineering and Department of Physics and Astronomy, University of California, Riverside, Riverside, California, USA; Department of Surgery and Department of Cell Biology and Physiology, University of New Mexico, Albuquerque, New Mexico, USA; and New Mexico Veterans Affairs Health Care System, Albuquerque, New Mexico, USA
| | - Harry A Scott
- *Department of Bioengineering and Department of Physics and Astronomy, University of California, Riverside, Riverside, California, USA; Department of Surgery and Department of Cell Biology and Physiology, University of New Mexico, Albuquerque, New Mexico, USA; and New Mexico Veterans Affairs Health Care System, Albuquerque, New Mexico, USA
| | - Finny Monickaraj
- *Department of Bioengineering and Department of Physics and Astronomy, University of California, Riverside, Riverside, California, USA; Department of Surgery and Department of Cell Biology and Physiology, University of New Mexico, Albuquerque, New Mexico, USA; and New Mexico Veterans Affairs Health Care System, Albuquerque, New Mexico, USA
| | - Jun Xu
- *Department of Bioengineering and Department of Physics and Astronomy, University of California, Riverside, Riverside, California, USA; Department of Surgery and Department of Cell Biology and Physiology, University of New Mexico, Albuquerque, New Mexico, USA; and New Mexico Veterans Affairs Health Care System, Albuquerque, New Mexico, USA
| | - Soroush Ardekani
- *Department of Bioengineering and Department of Physics and Astronomy, University of California, Riverside, Riverside, California, USA; Department of Surgery and Department of Cell Biology and Physiology, University of New Mexico, Albuquerque, New Mexico, USA; and New Mexico Veterans Affairs Health Care System, Albuquerque, New Mexico, USA
| | - Carolina F Nitta
- *Department of Bioengineering and Department of Physics and Astronomy, University of California, Riverside, Riverside, California, USA; Department of Surgery and Department of Cell Biology and Physiology, University of New Mexico, Albuquerque, New Mexico, USA; and New Mexico Veterans Affairs Health Care System, Albuquerque, New Mexico, USA
| | - Andrea Cabrera
- *Department of Bioengineering and Department of Physics and Astronomy, University of California, Riverside, Riverside, California, USA; Department of Surgery and Department of Cell Biology and Physiology, University of New Mexico, Albuquerque, New Mexico, USA; and New Mexico Veterans Affairs Health Care System, Albuquerque, New Mexico, USA
| | - Paul G McGuire
- *Department of Bioengineering and Department of Physics and Astronomy, University of California, Riverside, Riverside, California, USA; Department of Surgery and Department of Cell Biology and Physiology, University of New Mexico, Albuquerque, New Mexico, USA; and New Mexico Veterans Affairs Health Care System, Albuquerque, New Mexico, USA
| | - Umar Mohideen
- *Department of Bioengineering and Department of Physics and Astronomy, University of California, Riverside, Riverside, California, USA; Department of Surgery and Department of Cell Biology and Physiology, University of New Mexico, Albuquerque, New Mexico, USA; and New Mexico Veterans Affairs Health Care System, Albuquerque, New Mexico, USA
| | - Arup Das
- *Department of Bioengineering and Department of Physics and Astronomy, University of California, Riverside, Riverside, California, USA; Department of Surgery and Department of Cell Biology and Physiology, University of New Mexico, Albuquerque, New Mexico, USA; and New Mexico Veterans Affairs Health Care System, Albuquerque, New Mexico, USA
| | - Kaustabh Ghosh
- *Department of Bioengineering and Department of Physics and Astronomy, University of California, Riverside, Riverside, California, USA; Department of Surgery and Department of Cell Biology and Physiology, University of New Mexico, Albuquerque, New Mexico, USA; and New Mexico Veterans Affairs Health Care System, Albuquerque, New Mexico, USA
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Gautier HO, Thompson AJ, Achouri S, Koser DE, Holtzmann K, Moeendarbary E, Franze K. Atomic force microscopy-based force measurements on animal cells and tissues. Methods Cell Biol 2015; 125:211-35. [DOI: 10.1016/bs.mcb.2014.10.005] [Citation(s) in RCA: 47] [Impact Index Per Article: 4.7] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/11/2022]
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Demuyser L, Jabra-Rizk MA, Van Dijck P. Microbial cell surface proteins and secreted metabolites involved in multispecies biofilms. Pathog Dis 2014; 70:219-30. [PMID: 24376219 DOI: 10.1111/2049-632x.12123] [Citation(s) in RCA: 28] [Impact Index Per Article: 2.5] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 11/21/2013] [Revised: 12/16/2013] [Accepted: 12/16/2013] [Indexed: 12/15/2022] Open
Abstract
A considerable number of infectious diseases involve multiple microbial species coexisting and interacting in a host. Only recently however the impact of these polymicrobial diseases has been appreciated and investigated. Often, the causative microbial species are embedded in an extracellular matrix forming biofilms, a form of existence that offers protection against chemotherapeutic agents and host immune defenses. Therefore, recent efforts have focused on developing novel therapeutic strategies targeting biofilm-associated polymicrobial infections, a task that has proved to be challenging. One promising approach to inhibit the development of such complex infections is to impede the interactions between the microbial species via inhibition of adhesion. To that end, studies have focused on identifying specific cell wall adhesins and receptors involved in the interactions between the various bacterial species and the most pathogenic human fungal species Candida albicans. This review highlights the important findings from these studies and describes the available tools and techniques that have provided insights into the role of secreted molecules orchestrating microbial interactions in biofilms. Specifically, we focus on the interactions that take place in oral biofilms and the implications of these interactions on oral health and therapeutic strategies.
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Affiliation(s)
- Liesbeth Demuyser
- VIB Department of Molecular Microbiology, KU Leuven, Leuven, Belgium; Laboratory of Molecular Cell Biology, KU Leuven, Leuven, Belgium
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Physico-mechanical characterisation of cells using atomic force microscopy — Current research and methodologies. J Microbiol Methods 2011; 86:131-9. [DOI: 10.1016/j.mimet.2011.05.021] [Citation(s) in RCA: 55] [Impact Index Per Article: 3.9] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 03/03/2011] [Revised: 05/18/2011] [Accepted: 05/26/2011] [Indexed: 11/21/2022]
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Bracalello A, Santopietro V, Vassalli M, Marletta G, Del Gaudio R, Bochicchio B, Pepe A. Design and production of a chimeric resilin-, elastin-, and collagen-like engineered polypeptide. Biomacromolecules 2011; 12:2957-65. [PMID: 21707089 DOI: 10.1021/bm2005388] [Citation(s) in RCA: 67] [Impact Index Per Article: 4.8] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/29/2022]
Abstract
Protein-inspired biomaterials have gained great interest as an alternative to synthetic polymers, in particular, for their potential use as biomedical devices. The potential inspiring models are mainly proteins able to confer mechanical properties to tissues and organs, such as elasticity (elastin, resilin, spider silk) and strength (collagen, silk). The proper combination of repetitive sequences, each of them derived from different proteins, represents a useful tool for obtaining biomaterials with tailored mechanical properties and biological functions. In this report we describe the design, the production, and the preliminary characterization of a chimeric polypeptide, based on sequences derived from the highly resilient proteins resilin and elastin and from collagen-like sequences. The results show that the obtained chimeric recombinant material exhibits promising self-assembling properties. Young's modulus of the fibers was determined by AFM image analysis and lies in the range of 0.1-3 MPa in agreement with the expectations for elastin-like and resilin-like materials.
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Affiliation(s)
- Angelo Bracalello
- Department of Chemistry Antonio M. Tamburrro, University of Basilicata , 85100 Potenza, Italy
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Kuznetsov YG, McPherson A. Atomic force microscopy in imaging of viruses and virus-infected cells. Microbiol Mol Biol Rev 2011; 75:268-85. [PMID: 21646429 PMCID: PMC3122623 DOI: 10.1128/mmbr.00041-10] [Citation(s) in RCA: 88] [Impact Index Per Article: 6.3] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/12/2023] Open
Abstract
Atomic force microscopy (AFM) can visualize almost everything pertinent to structural virology and at resolutions that approach those for electron microscopy (EM). Membranes have been identified, RNA and DNA have been visualized, and large protein assemblies have been resolved into component substructures. Capsids of icosahedral viruses and the icosahedral capsids of enveloped viruses have been seen at high resolution, in some cases sufficiently high to deduce the arrangement of proteins in the capsomeres as well as the triangulation number (T). Viruses have been recorded budding from infected cells and suffering the consequences of a variety of stresses. Mutant viruses have been examined and phenotypes described. Unusual structural features have appeared, and the unexpectedly great amount of structural nonconformity within populations of particles has been documented. Samples may be imaged in air or in fluids (including culture medium or buffer), in situ on cell surfaces, or after histological procedures. AFM is nonintrusive and nondestructive, and it can be applied to soft biological samples, particularly when the tapping mode is employed. In principle, only a single cell or virion need be imaged to learn of its structure, though normally images of as many as is practical are collected. While lateral resolution, limited by the width of the cantilever tip, is a few nanometers, height resolution is exceptional, at approximately 0.5 nm. AFM produces three-dimensional, topological images that accurately depict the surface features of the virus or cell under study. The images resemble common light photographic images and require little interpretation. The structures of viruses observed by AFM are consistent with models derived by X-ray crystallography and cryo-EM.
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Affiliation(s)
- Yurii G. Kuznetsov
- University of California, Irvine, Department of Molecular Biology and Biochemistry, 560 Steinhaus Hall, Irvine, California 92697-3900
| | - Alexander McPherson
- University of California, Irvine, Department of Molecular Biology and Biochemistry, 560 Steinhaus Hall, Irvine, California 92697-3900
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de Souza W, Rocha GM. Atomic force microscopy: a tool to analyze the structural organization of pathogenic protozoa. Trends Parasitol 2011; 27:160-7. [PMID: 21273123 DOI: 10.1016/j.pt.2010.12.010] [Citation(s) in RCA: 7] [Impact Index Per Article: 0.5] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 10/14/2010] [Revised: 12/22/2010] [Accepted: 12/23/2010] [Indexed: 10/18/2022]
Abstract
The fine structure of parasitic protozoa has been the subject of intense investigation with the use of electron microscopy. The recent development of atomic force microscopy (AFM) and all of the techniques associated with AFM has created new ways to further analyze the structure of cells. In this review, the various, presently-available modalities of AFM are discussed, as well as the results obtained in analysis of: (i) the structure of intact and detergent-extracted protozoa; (ii) the surface of infected cells; (iii) the structure of parasite macromolecules; (iv) the measurement of surface potential; and (v) force spectroscopy, the measurement of elasticity and ligand-receptor interactions.
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Affiliation(s)
- Wanderley de Souza
- Laboratório de Ultraestrutura Celular Hertha Meyer, Instituto de Biofísica Carlos Chagas Filho and Instituto Nacional de Ciência e Tecnologia em Biologia Estrutural e Bioimagens - Universidade Federal do Rio de Janeiro, Rio de Janeiro 21941-902, Brasil.
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Kuznetsov YG, Dowell JJ, Gavira JA, Ng JD, McPherson A. Biophysical and atomic force microscopy characterization of the RNA from satellite tobacco mosaic virus. Nucleic Acids Res 2010; 38:8284-94. [PMID: 20693537 PMCID: PMC3001053 DOI: 10.1093/nar/gkq662] [Citation(s) in RCA: 15] [Impact Index Per Article: 1.0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/14/2022] Open
Abstract
Agarose gel electrophoresis, circular dichroism and differential scanning calorimetry showed that single-stranded RNA from satellite tobacco mosaic virus transforms from a conformationally ‘closed state’ at 4°C to a more conformationally ‘open state’ at 65°C. The transition is reversible and shows no hysteresis. Atomic force microscopy (AFM) allowed visualization of the two states and indicated that the conformationally ‘closed state’ probably corresponds to the native encapsidated conformation, and that the ‘open state’ represents a conformation, characterized as short, thick chains of domains, as a consequence of the loss of tertiary interactions. Heating from 75°C to 85°C in the presence of EDTA was necessary to further unravel the ‘open’ conformation RNA into extended chains of lengths >280 nm. Virus exposed to low concentrations of phenol at 65°C, extruded RNA as distinctive ‘pigtails’ in a synchronous fashion, and these ‘pigtails’ then elongated, as the RNA was further discharged by the particles. Moderate concentrations of phenol at 65°C produced complete disruption of virions and only remains of decomposed particles and disordered RNA were evident. AFM images of RNA emerging from disrupted virions appear most consistent with linear arrangements of structural domains.
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Affiliation(s)
- Yuri G Kuznetsov
- Department of Molecular Biology and Biochemistry, University of California, Irvine, CA 92697, USA
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