TY - JOUR
T1 - Magnetic Nanoparticles
T2 - A Review on Synthesis, Characterization, Functionalization, and Biomedical Applications
AU - Rezaei, Bahareh
AU - Yari, Parsa
AU - Sanders, Sean M.
AU - Wang, Haotong
AU - Chugh, Vinit Kumar
AU - Liang, Shuang
AU - Mostufa, Shahriar
AU - Xu, Kanglin
AU - Wang, Jian Ping
AU - Gómez-Pastora, Jenifer
AU - Wu, Kai
N1 - Publisher Copyright:
© 2023 Wiley-VCH GmbH.
PY - 2024/2/1
Y1 - 2024/2/1
N2 - Nowadays, magnetic nanoparticles (MNPs) are applied in numerous fields, especially in biomedical applications. Since biofluidic samples and biological tissues are nonmagnetic, negligible background signals can interfere with the magnetic signals from MNPs in magnetic biosensing and imaging applications. In addition, the MNPs can be remotely controlled by magnetic fields, which make it possible for magnetic separation and targeted drug delivery. Furthermore, due to the unique dynamic magnetizations of MNPs when subjected to alternating magnetic fields, MNPs are also proposed as a key tool in cancer treatment, an example is magnetic hyperthermia therapy. Due to their distinct surface chemistry, good biocompatibility, and inducible magnetic moments, the material and morphological structure design of MNPs has attracted enormous interest from a variety of scientific domains. Herein, a thorough review of the chemical synthesis strategies of MNPs, the methodologies to modify the MNPs surface for better biocompatibility, the physicochemical characterization techniques for MNPs, as well as some representative applications of MNPs in disease diagnosis and treatment are provided. Further portions of the review go into the diagnostic and therapeutic uses of composite MNPs with core/shell structures as well as a deeper analysis of MNP properties to learn about potential biomedical applications.
AB - Nowadays, magnetic nanoparticles (MNPs) are applied in numerous fields, especially in biomedical applications. Since biofluidic samples and biological tissues are nonmagnetic, negligible background signals can interfere with the magnetic signals from MNPs in magnetic biosensing and imaging applications. In addition, the MNPs can be remotely controlled by magnetic fields, which make it possible for magnetic separation and targeted drug delivery. Furthermore, due to the unique dynamic magnetizations of MNPs when subjected to alternating magnetic fields, MNPs are also proposed as a key tool in cancer treatment, an example is magnetic hyperthermia therapy. Due to their distinct surface chemistry, good biocompatibility, and inducible magnetic moments, the material and morphological structure design of MNPs has attracted enormous interest from a variety of scientific domains. Herein, a thorough review of the chemical synthesis strategies of MNPs, the methodologies to modify the MNPs surface for better biocompatibility, the physicochemical characterization techniques for MNPs, as well as some representative applications of MNPs in disease diagnosis and treatment are provided. Further portions of the review go into the diagnostic and therapeutic uses of composite MNPs with core/shell structures as well as a deeper analysis of MNP properties to learn about potential biomedical applications.
KW - biocompatibility
KW - drug delivery
KW - hyperthermia therapy
KW - magnetic biosensors
KW - magnetic imaging
KW - magnetic nanoparticles
UR - https://www.scopus.com/pages/publications/85171538731
UR - https://www.scopus.com/pages/publications/85171538731#tab=citedBy
U2 - 10.1002/smll.202304848
DO - 10.1002/smll.202304848
M3 - Review article
C2 - 37732364
AN - SCOPUS:85171538731
SN - 1613-6810
VL - 20
JO - Small
JF - Small
IS - 5
M1 - 2304848
ER -