Investigating bioconjugation by atomic force microscopy
نویسندگان
چکیده
Nanotechnological applications increasingly exploit the selectivity and processivity of biological molecules. Integration of biomolecules such as proteins or DNA into nano-systems typically requires their conjugation to surfaces, for example of carbon-nanotubes or fluorescent quantum dots. The bioconjugated nanostructures exploit the unique strengths of both their biological and nanoparticle components and are used in diverse, future oriented research areas ranging from nanoelectronics to biosensing and nanomedicine. Atomic force microscopy imaging provides valuable, direct insight for the evaluation of different conjugation approaches at the level of the individual molecules. Recent technical advances have enabled high speed imaging by AFM supporting time resolutions sufficient to follow conformational changes of intricately assembled nanostructures in solution. In addition, integration of AFM with different spectroscopic and imaging approaches provides an enhanced level of information on the investigated sample. Furthermore, the AFM itself can serve as an active tool for the assembly of nanostructures based on bioconjugation. AFM is hence a major workhorse in nanotechnology; it is a powerful tool for the structural investigation of bioconjugation and bioconjugation-induced effects as well as the simultaneous active assembly and analysis of bioconjugation-based nanostructures.
منابع مشابه
Attaching Biological Molecules to AFM Probes for Nanoscale Molecular Recognition Studies
Atomic Force Microscopy (AFM) is an important tool to study nanoscale molecular interactions. A strong suit of AFM is its ability to measure ligand-receptor interactions with picoNewton sensitivity. These biomolecular interactions are critical factors in a variety of physiological processes; such as the initiation, modulation and termination of DNA replication, transcription, enzyme activity, i...
متن کاملImmobilizing Biological Molecules on AFM Probes for MRFM and TREC Studies
Ligand molecules for a particular receptor can be attached to the tip of an AFM probe, transforming the probe into a sensitive, chemically selective biosensor for that receptor [Riener et al. 2003]. Molecular recognition force microscopy (MRFM) is a single-molecule AFMbased technique that relies heavily on nanoscale surface chemistry, nanoscale biochemical immobilization chemistry, and bioconju...
متن کاملImmobilizing Biological Molecules on AFM Probes for MRFM and TREC Studies
Ligand molecules for a particular receptor can be attached to the tip of an AFM probe, transforming the probe into a sensitive, chemically selective biosensor for that receptor [Riener et al. 2003]. Molecular recognition force microscopy (MRFM) is a single-molecule AFMbased technique that relies heavily on nanoscale surface chemistry, nanoscale biochemical immobilization chemistry, and bioconju...
متن کاملSelective streptavidin bioconjugation on silicon and silicon carbide nanowires for biosensor applications
A functionalization method for the specific and selective immobilization of the streptavidin (SA) protein on semiconductor nanowires (NWs) was developed. Silicon (Si) and silicon carbide (SiC) NWs were functionalized with 3-aminopropyltriethoxysilane (APTES) and subsequently biotinylated for the conjugation of SA. Existence of a thin native oxide shell on both Si and SiC NWs enabled efficient b...
متن کاملHigh Resolution Image with Multi-wall Carbon Nanotube Atomic Force Microscopy Tip (RESEARCH NOTE)
In this paper, a simple and reproducible approach for attaching the multi-wall carbon nanotubes (MWNTs) to the apex of the atomic force microscope probe has been proposed. For this purpose, the dielectrophoresis method was applied due to its simple performance, cheapness and reliability. In this method, various parameters such as voltage, frequency, concentration of carbon nanotubes solution an...
متن کاملذخیره در منابع من
با ذخیره ی این منبع در منابع من، دسترسی به آن را برای استفاده های بعدی آسان تر کنید
عنوان ژورنال:
دوره 11 شماره
صفحات -
تاریخ انتشار 2013