Coassembly of hypoxia-sensitive macrocyclic amphiphiles and extracellular vesicles for targeted kidney injury imaging and therapy

J Nanobiotechnology. 2021 Dec 27;19(1):451. doi: 10.1186/s12951-021-01192-w.

Abstract

Background: Hypoxia is a major contributor to global kidney diseases. Targeting hypoxia is a promising therapeutic option against both acute kidney injury and chronic kidney disease; however, an effective strategy that can achieve simultaneous targeted kidney hypoxia imaging and therapy has yet to be established. Herein, we fabricated a unique nano-sized hypoxia-sensitive coassembly (Pc/C5A@EVs) via molecular recognition and self-assembly, which is composed of the macrocyclic amphiphile C5A, the commercial dye sulfonated aluminum phthalocyanine (Pc) and mesenchymal stem cell-excreted extracellular vesicles (MSC-EVs).

Results: In murine models of unilateral or bilateral ischemia/reperfusion injury, MSC-EVs protected the Pc/C5A complex from immune metabolism, prolonged the circulation time of the complex, and specifically led Pc/C5A to hypoxic kidneys via surface integrin receptor α4β1 and αLβ2, where Pc/C5A released the near-infrared fluorescence of Pc and achieved enhanced hypoxia-sensitive imaging. Meanwhile, the coassembly significantly recovered kidney function by attenuating cell apoptosis, inhibiting the progression of renal fibrosis and reducing tubulointerstitial inflammation. Mechanistically, the Pc/C5A coassembly induced M1-to-M2 macrophage transition by inhibiting the HIF-1α expression in hypoxic renal tubular epithelial cells (TECs) and downstream NF-κB signaling pathway to exert their regenerative effects.

Conclusion: This synergetic nanoscale coassembly with great translational potential provides a novel strategy for precise kidney hypoxia diagnosis and efficient kidney injury treatment. Furthermore, our strategy of coassembling exogenous macrocyclic receptors with endogenous cell-derived membranous structures may offer a functional platform to address multiple clinical needs.

Keywords: Coassembly; Extracellular vesicles; Kidney hypoxia; Macrocyclic amphiphile; Supramolecular chemistry.

MeSH terms

  • Acute Kidney Injury / diagnostic imaging*
  • Acute Kidney Injury / drug therapy*
  • Acute Kidney Injury / metabolism
  • Acute Kidney Injury / pathology
  • Animals
  • Calixarenes / chemistry
  • Calixarenes / metabolism
  • Calixarenes / pharmacology
  • Calixarenes / therapeutic use
  • Cell Hypoxia / drug effects*
  • Cell Line
  • Epithelial Cells / drug effects
  • Epithelial Cells / metabolism
  • Extracellular Vesicles / chemistry*
  • Extracellular Vesicles / metabolism
  • Humans
  • Hypoxia-Inducible Factor 1, alpha Subunit / metabolism
  • Indoles / chemistry
  • Indoles / metabolism
  • Indoles / pharmacology
  • Indoles / therapeutic use
  • Inflammation
  • Integrins / metabolism
  • Macrocyclic Compounds / chemistry*
  • Macrocyclic Compounds / metabolism
  • Macrocyclic Compounds / pharmacology
  • Macrocyclic Compounds / therapeutic use
  • Macrophages / drug effects
  • Macrophages / metabolism
  • Mice
  • NF-kappa B / metabolism
  • Organometallic Compounds / chemistry
  • Organometallic Compounds / metabolism
  • Organometallic Compounds / pharmacology
  • Organometallic Compounds / therapeutic use
  • Signal Transduction / drug effects
  • Surface-Active Agents / chemistry*
  • Surface-Active Agents / metabolism
  • Surface-Active Agents / pharmacology
  • Surface-Active Agents / therapeutic use

Substances

  • Hypoxia-Inducible Factor 1, alpha Subunit
  • Indoles
  • Integrins
  • Macrocyclic Compounds
  • NF-kappa B
  • Organometallic Compounds
  • Surface-Active Agents
  • aluminum tetrasulfophthalocyanine
  • Calixarenes