TY - JOUR
T1 - A hepatocyte-targeting nanoparticle for enhanced hepatobiliary magnetic resonance imaging
AU - Zhang, Huan
AU - Guo, Yingkun
AU - Jiao, Ju
AU - Qiu, Ying
AU - Miao, Yuqing
AU - He, Yuan
AU - Li, Zhenlin
AU - Xia, Chunchao
AU - Li, Li
AU - Cai, Jing
AU - Xu, Ke
AU - Liu, Xiaoli
AU - Zhang, Ce
AU - Bay, Boon Huat
AU - Song, Shijie
AU - Yang, Yanlian
AU - Peng, Mingli
AU - Wang, Yaoyu
AU - Fan, Haiming
N1 - Publisher Copyright:
© 2022, The Author(s), under exclusive licence to Springer Nature Limited.
PY - 2023/3
Y1 - 2023/3
N2 - Hepatobiliary magnetic resonance imaging (MRI) can inform the diagnosis of liver tumours in patients with liver cirrhosis and hepatitis. However, its clinical utility has been hampered by the lack of sensitive and specific contrast agents, partly because hepatocyte-specific nanoparticles, regardless of their surface ligands, are readily sequestered by Kupffer cells. Here we show, in rabbits, pigs and macaques, that the performance of hepatobiliary MRI can be enhanced by an ultrasmall nanoparticle composed of a manganese ferrite core (3 nm in diameter) and poly(ethylene glycol)-ethoxy-benzyl surface ligands binding to hepatocyte-specific transmembrane metal and anion transporters. The nanoparticle facilitated faster, more sensitive and higher-resolution hepatobiliary MRI than the clinically used contrast agent gadoxetate disodium, a substantial enhancement in the detection rate (92% versus 48%) of early-stage liver tumours in rabbits, and a more accurate assessment of biliary obstruction in macaques. The nanoparticle’s performance and biocompatibility support the further translational development of liver-specific MRI contrast agents.
AB - Hepatobiliary magnetic resonance imaging (MRI) can inform the diagnosis of liver tumours in patients with liver cirrhosis and hepatitis. However, its clinical utility has been hampered by the lack of sensitive and specific contrast agents, partly because hepatocyte-specific nanoparticles, regardless of their surface ligands, are readily sequestered by Kupffer cells. Here we show, in rabbits, pigs and macaques, that the performance of hepatobiliary MRI can be enhanced by an ultrasmall nanoparticle composed of a manganese ferrite core (3 nm in diameter) and poly(ethylene glycol)-ethoxy-benzyl surface ligands binding to hepatocyte-specific transmembrane metal and anion transporters. The nanoparticle facilitated faster, more sensitive and higher-resolution hepatobiliary MRI than the clinically used contrast agent gadoxetate disodium, a substantial enhancement in the detection rate (92% versus 48%) of early-stage liver tumours in rabbits, and a more accurate assessment of biliary obstruction in macaques. The nanoparticle’s performance and biocompatibility support the further translational development of liver-specific MRI contrast agents.
UR - https://www.scopus.com/pages/publications/85144213488
U2 - 10.1038/s41551-022-00975-2
DO - 10.1038/s41551-022-00975-2
M3 - 文章
C2 - 36536254
AN - SCOPUS:85144213488
SN - 2157-846X
VL - 7
SP - 221
EP - 235
JO - Nature Biomedical Engineering
JF - Nature Biomedical Engineering
IS - 3
ER -