Carbon Nanotubes: A Review on Structure and Their Interaction with Proteins
Углеродные нанотрубки: обзор их структуры и взаимодействия с белками
2012-09-17
SCID: 54.1/44wjvf5t
Discuss with AI
carbon nanotubesenzyme immobilizationmultienzyme coimmobilizationnanomaterialsprotein interaction
Figures from the paper
Abstract (AI)
Carbon nanotubes (CNTs) are allotropes of carbon with a nanostructure that can have a length‐to‐diameter ratio greater than 1,000,000. Techniques have been developed to produce nanotubes in sizeable quantities, including arc discharge, laser ablation, and chemical vapor deposition. Developments in the past few years have illustrated the potentially revolutionizing impact of nanomaterials, especially in biomedical imaging, drug delivery, biosensing, and the design of functional nanocomposites. Methods to effectively interface proteins with nanomaterials for realizing these applications continue to evolve. The high surface‐to‐volume ratio offered by nanoparticles resulted in the concentration of the immobilized entity being considerably higher than that afforded by other materials. There has also been an increasing interest in understanding the influence of nanomaterials on the structure and function of proteins. Various immobilization methods have been developed, and in particular, specific attachment of enzymes on carbon nanotubes has been an important focus of attention. With the growing attention paid to cascade enzymatic reaction, it is possible that multienzyme coimmobilization would be one of the next goals in the future. In this paper, we focus on advances in methodology for enzyme immobilization on carbon nanotubes.
Key Findings
1
Arc discharge, laser ablation, and chemical vapor deposition enable carbon nanotube production in substantial quantities.
2
Carbon nanotubes possess extreme aspect ratios, potentially exceeding a length-to-diameter ratio of 1,000,000.
3
Carbon nanotubes’ high surface-to-volume ratio allows greater concentrations of immobilized proteins than conventional materials.
4
Enzyme immobilization on carbon nanotubes is a major methodological focus, with multienzyme co-immobilization identified as a prospective goal for cascade reactions.
5
Protein–nanomaterial interfacing is advancing applications in biomedical imaging, drug delivery, biosensing, and functional nanocomposites.
Research Object
Carbon nanotubes (CNTs)
Research Subject
methodologies for enzyme immobilization on carbon nanotubes
Publication Details
Publication Date
2012-09-17
Journal
Publisher
ISSN
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest