| Literature DB >> 35163845 |
Zhenqi Jiang1,2, Xiao Han1, Chen Zhao1, Shanshan Wang2, Xiaoying Tang1.
Abstract
In recent decades, as a subclass of biomaterials, biologically sensitive nanoparticles have attracted increased scientific interest. Many of the demands for physiologically responsive nanomaterials in applications involving the human body cannot be met by conventional technologies. Due to the field's importance, considerable effort has been expended, and biologically responsive nanomaterials have achieved remarkable success thus far. This review summarizes the recent advancements in biologically responsive nanomaterials and their applications in biosensing and molecular imaging. The nanomaterials change their structure or increase the chemical reaction ratio in response to specific bio-relevant stimuli (such as pH, redox potentials, enzyme kinds, and concentrations) in order to improve the signal for biologically responsive diagnosis. We use various case studies to illustrate the existing issues and provide a clear sense of direction in this area. Furthermore, the limitations and prospects of these nanomaterials for diagnosis are also discussed.Entities:
Keywords: bioimaging; biological responsive nanomaterials; biosensing; photoacoustic imaging
Mesh:
Substances:
Year: 2022 PMID: 35163845 PMCID: PMC8837089 DOI: 10.3390/ijms23031923
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Advanced biological responsive nanomaterials and their diagnostic application.
| Type of Diagnosis | Materials | Types | Bio-Relevant | Application | Ref. |
|---|---|---|---|---|---|
| Biosensing | Peptide conjugated Au NP | Inorganic nanomaterials | Protein | Immunoassays | [ |
| Fe3O4 MNP | Inorganic nanomaterials | H2O2 | Immunoassays | [ | |
| GOx/hemin@ZIF-8 | Metal-organic Frameworks | Glucose | Biosensing | [ | |
| Platinum NPs/graphene oxide | Carbon-based nanomaterials | Protein | Cancer cell detection | [ | |
| ZIF-8-ferrocene | Metal-organic Frameworks | AβO | Electrochemical sensing | [ | |
| Polycurcumin | Organic nanomaterials | AβO | Electrochemical sensing | [ | |
| rGO–Cu2O/GCE | Carbon-based nanomaterials | dopamine | Electrochemical sensing | [ | |
| Pt/PANI/rGO/CuO | Carbon-based nanomaterials | Glucose | Electrochemical sensing | [ | |
| PdCu alloy | Inorganic nanomaterials | Glucose | Electrochemical sensing | [ | |
| Molecular imaging | MnO2 nanoplatforms | Inorganic nanomaterials | pH | MRI | [ |
| Mn-SS/DOX@PDA-PEG | Organic nanomaterials | Glutathione | MRI | [ | |
| Albumin-Based Nanoprobe | Organic nanomaterials | pH | Photoacoustic imaging | [ | |
| IR775-Phe-Phe-Tyr(H2PO3)-OH | Organic nanomaterials | alkaline phosphatase | Photoacoustic imaging | [ |
Figure 1Schematic illustration of Fe3O4 nanozyme-strip for the detection of EBOV. Adapted from ref [18], with permission from Copyright © 2015, Elsevier B.V. All rights reserved.
Figure 2Nanoscale ZIF-8/Fer for AβO sensing utilizing electrochemical and optical methods. Adapted from ref [21], with permission from Copyright © 2019, American Chemical Society.
Figure 3Synthesis and characterization of Mn-SS NCPs, as well as the GSH, triggered nanoparticle decomposition, drug release, and Mn2+-enhanced MRI. Adapted from ref [27], with permission from Copyright © 2017, American Chemical Society.
Figure 4ALP-triggered self-assembly of near-infrared nanoparticles for the enhanced PA imaging of tumors. Adapted from ref [29], with permission from Copyright © 2018, American Chemical Society.