open access publication

Article, 2024

Defect‐Engineered Metal–Organic Frameworks as Nanocarriers for Pharmacotherapy: Insights into Intracellular Dynamics at The Single Particle Level

Advanced Materials, ISSN 1521-4095, 0935-9648, Page e2405898, 10.1002/adma.202405898

Contributors

Huang, Guiqian 0000-0002-9799-507X [1] Dreisler, Marcus Winther 0009-0001-1230-8307 [1] Kæstel-Hansen, Jacob 0000-0001-7365-9664 [1] Nielsen, Annette Juma 0000-0001-5746-0954 [1] Zhang, Min 0000-0002-2797-5049 [1] Hatzakis, Nikos S 0000-0003-4202-0328 (Corresponding author) [1]

Affiliations

  1. [1] University of Copenhagen
  2. [NORA names: KU University of Copenhagen; University; Denmark; Europe, EU; Nordic; OECD]

Abstract

Nanoscale Metal-Organic Frameworks (nanoMOFs) are widely implemented in a host of assays involving drug delivery, biosensing catalysis, and bioimaging. However, the cell pathways and cell fate remain poorly understood. Here, a new fluorescent nanoMOF integrating ATTO 655 into surface defects of colloidal UiO-66 is synthesized, allowing to track the spatiotemporal localization of Single nanoMOF in live cells. density functional theory reveals the stronger binding of ATTO 655 to the Zr6 cluster nodes compared with phosphate and Alendronate Sodium. Parallelized tracking of the spatiotemporal localization of thousands of nanoMOFs and analysis using machine learning platforms reveals whether nanoMOFs remain outside as well as their cellular internalization pathways. To quantitatively assess their colocalization with endo/lysosomal compartments, a colocalization proxy approach relying on the nanoMOF detection of particles in one channel to the signal in the corresponding endo/lysosomal compartments channel, considering signal versus local background intensity ratio and signal-to-noise ratio is developed. This strategy mitigates colocalization value inflation from high or low signal expression in endo/lysosomal compartments. The results accurately measure the nanoMOFs' colocalization from early to late endosomes and lysosomes and emphasize the importance of understanding their intracellular dynamics based on single-particle tracking for optimal and safe drug delivery.

Keywords

ATTO, UiO-66, alendronate, alendronate sodium, analysis, approach, assay, background intensity ratio, bioimaging, biosensing, catalysis, cell fate, cell pathways, cells, cellular internalization pathways, channel, cluster nodes, colocalization, compartment, defect-engineered metal-organic frameworks, delivery, density, density functional theory, detection of particles, drug, drug delivery, dynamics, endo/lysosomal compartments, endosomes, expression, fate, framework, functional theory, host, inflation, intensity ratio, internalization pathway, intracellular dynamics, intracellularly, learning platform, levels, living cells, localization, lysosomes, machine, machine learning platform, metal-organic frameworks, nanoMOFs, nanocarriers, nanoscale, nanoscale metal-organic frameworks, nodes, parallel tracks, particle level, particles, pathway, pharmacotherapy, phosphate, platform, proxy approach, ratio, results, signal, signal expression, signal-to-noise ratio, single particle level, single-particle tracking, sodium, spatiotemporal localization, stronger binding, surface, surface defects, theory, tracking

Funders

  • China Scholarship Council
  • Lundbeck Foundation
  • Carlsberg Foundation
  • Novo Nordisk Foundation
  • University of Copenhagen
  • The Velux Foundations

Data Provider: Digital Science