Membrane mimetic surface functionalization of nanoparticles: Methods and applications
Nanoparticles (NPs), due to their size-dependent physical and chemical properties, have shown remarkable potential for a wide range of applications over the past decades. Particularly, the biological compatibilities and functions of NPs have been extensively studied for expanding their potential in...
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Published in | Advances in colloid and interface science Vol. 197-198; pp. 68 - 84 |
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Main Authors | , , |
Format | Journal Article |
Language | English |
Published |
Netherlands
Elsevier B.V
01.09.2013
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Abstract | Nanoparticles (NPs), due to their size-dependent physical and chemical properties, have shown remarkable potential for a wide range of applications over the past decades. Particularly, the biological compatibilities and functions of NPs have been extensively studied for expanding their potential in areas of biomedical application such as bioimaging, biosensing, and drug delivery. In doing so, surface functionalization of NPs by introducing synthetic ligands and/or natural biomolecules has become a critical component in regard to the overall performance of the NP system for its intended use. Among known examples of surface functionalization, the construction of an artificial cell membrane structure, based on phospholipids, has proven effective in enhancing biocompatibility and has become a viable alternative to more traditional modifications, such as direct polymer conjugation. Furthermore, certain bioactive molecules can be immobilized onto the surface of phospholipid platforms to generate displays more reminiscent of cellular surface components. Thus, NPs with membrane-mimetic displays have found use in a range of bioimaging, biosensing, and drug delivery applications. This review herein describes recent advances in the preparations and characterization of integrated functional NPs covered by artificial cell membrane structures and their use in various biomedical applications.
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•Nanoparticles have shown remarkable potential for a wide range of biomedical applications due to their unique properties.•Membrane mimetic functionalization of nanoparticles enhances their biocompatibility and specific biological interactions.•Nanoparticles with membrane-mimetic displays can be use for bioimaging, biosensing, and drug delivery applications. |
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AbstractList | Nanoparticles (NPs), due to their size-dependent physical and chemical properties, have shown remarkable potential for a wide range of applications over the past decades. Particularly, the biological compatibilities and functions of NPs have been extensively studied for expanding their potential in areas of biomedical application such as bioimaging, biosensing, and drug delivery. In doing so, surface functionalization of NPs by introducing synthetic ligands and/or natural biomolecules has become a critical component in regard to the overall performance of the NP system for its intended use. Among known examples of surface functionalization, the construction of an artificial cell membrane structure, based on phospholipids, has proven effective in enhancing biocompatibility and has become a viable alternative to more traditional modifications, such as direct polymer conjugation. Furthermore, certain bioactive molecules can be immobilized onto the surface of phospholipid platforms to generate displays more reminiscent of cellular surface components. Thus, NPs with membrane-mimetic displays have found use in a range of bioimaging, biosensing, and drug delivery applications. This review herein describes recent advances in the preparations and characterization of integrated functional NPs covered by artificial cell membrane structures and their use in various biomedical applications.
[Display omitted]
•Nanoparticles have shown remarkable potential for a wide range of biomedical applications due to their unique properties.•Membrane mimetic functionalization of nanoparticles enhances their biocompatibility and specific biological interactions.•Nanoparticles with membrane-mimetic displays can be use for bioimaging, biosensing, and drug delivery applications. Nanoparticles (NPs), due to their size-dependent physical and chemical properties, have shown remarkable potential for a wide range of applications over the past decades. Particularly, the biological compatibilities and functions of NPs have been extensively studied for expanding their potential in areas of biomedical application such as bioimaging, biosensing, and drug delivery. In doing so, surface functionalization of NPs by introducing synthetic ligands and/or natural biomolecules has become a critical component in regard to the overall performance of the NP system for its intended use. Among known examples of surface functionalization, the construction of an artificial cell membrane structure, based on phospholipids, has proven effective in enhancing biocompatibility and has become a viable alternative to more traditional modifications, such as direct polymer conjugation. Furthermore, certain bioactive molecules can be immobilized onto the surface of phospholipid platforms to generate displays more reminiscent of cellular surface components. Thus, NPs with membrane-mimetic displays have found use in a range of bioimaging, biosensing, and drug delivery applications. This review herein describes recent advances in the preparations and characterization of integrated functional NPs covered by artificial cell membrane structures and their use in various biomedical applications. Nanoparticles (NPs), due to their size-dependent physical and chemical properties, have shown remarkable potential for a wide range of applications over the past decades. Particularly, the biological compatibilities and functions of NPs have been extensively studied for expanding their potential in areas of biomedical application such as bioimaging, biosensing, and drug delivery. In doing so, surface functionalization of NPs by introducing synthetic ligands and/or natural biomolecules has become a critical component in regards to the overall performance of the NP system for its intended use. Among known examples of surface functionalization, the construction of an artificial cell membrane structure, based on phospholipids, has proven effective in enhancing biocompatibility and has become a viable alternative to more traditional modifications, such as direct polymer conjugation. Furthermore, certain bioactive molecules can be immobilized onto the surface of phospholipid platforms to generate displays more reminiscent of cellular surface components. Thus, NPs with membrane-mimetic displays have found use in a range of bioimaging, biosensing, and drug delivery applications. This review herein describes recent advances in the preparations and characterization of integrated functional NPs covered by artificial cell membrane structures and their use in various biomedical applications. |
Author | Vabbilisetty, Pratima Weingart, Jacob Sun, Xue-Long |
AuthorAffiliation | a Department of Chemistry, Cleveland State University, Cleveland, OH 44115 b Chemical and Biomedical Engineering, Cleveland State University, Cleveland, OH 44115 |
AuthorAffiliation_xml | – name: a Department of Chemistry, Cleveland State University, Cleveland, OH 44115 – name: b Chemical and Biomedical Engineering, Cleveland State University, Cleveland, OH 44115 |
Author_xml | – sequence: 1 givenname: Jacob surname: Weingart fullname: Weingart, Jacob organization: Department of Chemistry, Cleveland State University, Cleveland, OH 44115, United States – sequence: 2 givenname: Pratima surname: Vabbilisetty fullname: Vabbilisetty, Pratima organization: Department of Chemistry, Cleveland State University, Cleveland, OH 44115, United States – sequence: 3 givenname: Xue-Long surname: Sun fullname: Sun, Xue-Long email: x.sun55@csuohio.edu organization: Department of Chemistry, Cleveland State University, Cleveland, OH 44115, United States |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/23688632$$D View this record in MEDLINE/PubMed |
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Keywords | Bioimaging Membrane-mimetic Drug delivery Nanoparticle Biosensing Lipid |
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SubjectTerms | Biocompatibility Biocompatible Materials - chemistry Bioimaging Biomimetics Biomolecules Biosensing Cellular Displays Drug delivery Drug delivery systems Lipid Membrane structures Membrane-mimetic Nanoparticle Nanoparticles Nanoparticles - chemistry Particle Size Phospholipids Phospholipids - chemistry Polymers - chemistry Surface Properties |
Title | Membrane mimetic surface functionalization of nanoparticles: Methods and applications |
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