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Nanodelivery Vehicles Induce Remote Biochemical Changes in Vivo

Overview
Journal Nanoscale
Specialty Biotechnology
Date 2021 Jul 15
PMID 34264256
Citations 2
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Abstract

Nanomaterial-based platforms are promising vehicles for the controlled delivery of therapeutics. For these systems to be both efficacious and safe, it is essential to understand where the carriers accumulate and to reveal the site-specific biochemical effects they produce in vivo. Here, a dual-mode mass spectrometry imaging (MSI) method is used to evaluate the distributions and biochemical effects of anti-TNF-α nanoparticle stabilized capsules (NPSCs) in mice. It is found that most of the anticipated biochemical changes occur in sub-organ regions that are separate from where the nanomaterials accumulate. In particular, TNF-α-specific lipid biomarker levels change in immune cell-rich regions of organs, while the NPSCs accumulate in spatially isolated filtration regions. Biochemical changes that are associated with the nanomaterials themselves are also observed, demonstrating the power of matrix-assisted laser desorption/ionization (MALDI) MSI to reveal markers indicating possible off-target effects of the delivery agent. This comprehensive assessment using MSI provides spatial context of nanomaterial distributions and efficacy that cannot be easily achieved with other imaging methods, demonstrating the power of MSI to evaluate both expected and unexpected outcomes associated with complex therapeutic delivery systems.

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References
1.
Yih T, Al-Fandi M . Engineered nanoparticles as precise drug delivery systems. J Cell Biochem. 2006; 97(6):1184-90. DOI: 10.1002/jcb.20796. View

2.
Adair J, Parette M, Altinoglu E, Kester M . Nanoparticulate alternatives for drug delivery. ACS Nano. 2010; 4(9):4967-70. DOI: 10.1021/nn102324e. View

3.
Yan B, Kim S, Kim C, Saha K, Moyano D, Xing Y . Multiplexed imaging of nanoparticles in tissues using laser desorption/ionization mass spectrometry. J Am Chem Soc. 2013; 135(34):12564-7. PMC: 3801209. DOI: 10.1021/ja406553f. View

4.
Tang R, Kim C, Solfiell D, Rana S, Mout R, Velazquez-Delgado E . Direct delivery of functional proteins and enzymes to the cytosol using nanoparticle-stabilized nanocapsules. ACS Nano. 2013; 7(8):6667-6673. PMC: 3757120. DOI: 10.1021/nn402753y. View

5.
Borges da Silva H, Fonseca R, Pereira R, Cassado A, Alvarez J, DImperio Lima M . Splenic Macrophage Subsets and Their Function during Blood-Borne Infections. Front Immunol. 2015; 6:480. PMC: 4585205. DOI: 10.3389/fimmu.2015.00480. View