4.8 Article

Quantification of Lipoprotein Uptake in Vivo Using Magnetic Particle Imaging and Spectroscopy

期刊

ACS NANO
卷 15, 期 1, 页码 434-446

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.0c03229

关键词

magnetic particle imaging; brown adipose tissue; BAT; chylomicron; TRL; magnetic particle spectroscopy; lipid uptake

资金

  1. DFG [FOR917, 335447717/SFB1328, 397484323/SFB TRR 259/1, SHA 1506/2-1, TR 408/9-1, SFB 1340/1 2018, 372486779]
  2. DAAD [57172123]
  3. Bonn International Graduate School of Drug Sciences (BIGS DrugS), University of Bonn
  4. EPSRC [EP/M018016/1, EP/M015157/1]
  5. AOARD [FA2386-17-1-4042]
  6. Royal Thai Government
  7. European Union [657215]
  8. Ministerio de Economia y Competitividad (Ramon y Cajal subprogram) [RYC-201517640]
  9. Spanish MINECO [BIO2017-84246-C2-1-R]
  10. DGA
  11. Fondos Feder (Bionanosurf) [E15_17R]

向作者/读者索取更多资源

This study quantified in vivo uptake of dietary lipids by utilizing magnetic particle imaging (MPI) and magnetic particle spectroscopy (MPS) techniques. Loading artificial chylomicrons with iron oxide nanoparticles enabled rapid detection of lipid uptake, with potential for whole-animal scans. The focus on brown adipose tissue (BAT) highlighted its correlation with leanness and cardiometabolic health.
Lipids are a major source of energy for most tissues, and lipid uptake and storage is therefore crucial for energy homeostasis. So far, quantification of lipid uptake in vivo has primarily relied on radioactive isotope labeling, exposing human subjects or experimental animals to ionizing radiation. Here, we describe the quantification of in vivo uptake of chylomicrons, the primary carriers of dietary lipids, in metabolically active tissues using magnetic particle imaging (MPI) and magnetic particle spectroscopy (MPS). We show that loading artificial chylomicrons (ACM) with iron oxide nanoparticles (IONPs) enables rapid and highly sensitive post hoc detection of lipid uptake in situ using MPS. Importantly, by utilizing highly magnetic Zn-doped iron oxide nanoparticles (ZnMNPs), we generated ACM with MPI tracer properties superseding the current gold-standard, Resovist, enabling quantification of lipid uptake from whole-animal scans. We focused on brown adipose tissue (BAT), which dissipates heat and can consume a large part of nutrient lipids, as a model for tightly regulated and inducible lipid uptake. High BAT activity in humans correlates with leanness and improved cardiometabolic health. However, the lack of nonradioactive imaging techniques is an important hurdle for the development of BAT-centered therapies for metabolic diseases such as obesity and type 2 diabetes. Comparison of MPI measurements with iron quantification by inductively coupled plasma mass spectrometry revealed that MPI rivals the performance of this highly sensitive technique. Our results represent radioactivity-free quantification of lipid uptake in metabolically active tissues such as BAT.

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