A Hydrogen-Bonded Organic Framework-Based Mitochondrion-Targeting Bioorthogonal Platform for the Modulation of Mitochondrial Epigenetics.
Congcong HuangChuanqi ZhaoYue SunTingting FengJinsong RenXiaogang QuPublished in: Nano letters (2024)
Bioorthogonal chemistry represents a powerful tool in chemical biology, which shows great potential in epigenetic modulation. As a proof of concept, the epigenetic modulation model of mitochondrial DNA (mtDNA) is selected because mtDNA establishes a relative hypermethylation stage under oxidative stress, which impairs the mitochondrion-based therapeutic effect during cancer therapy. Herein, we design a new biocompatible hydrogen-bonded organic framework (HOF) for a HOF-based mitochondrion-targeting bioorthogonal platform TPP@P@PHOF-2. PHOF-2 can activate a prodrug (pro-procainamide) in situ, which can specifically inhibit DNA methyltransferase 1 (DNMT1) activity and remodel the epigenetic modification of mtDNA, making it more susceptible to ROS damage. In addition, PHOF-2 can also catalyze artemisinin to produce large amounts of ROS, effectively damaging mtDNA and achieving better chemodynamic therapy demonstrated by both in vitro and in vivo studies. This work provides new insights into developing advanced bioorthogonal therapy and expands the applications of HOF and bioorthogonal catalysis.
Keyphrases
- mitochondrial dna
- cancer therapy
- copy number
- dna methylation
- oxidative stress
- drug delivery
- genome wide
- dna damage
- gene expression
- cell death
- high throughput
- reactive oxygen species
- drug release
- circulating tumor
- single molecule
- stem cells
- risk assessment
- visible light
- signaling pathway
- human health
- ionic liquid
- climate change
- circulating tumor cells
- endoplasmic reticulum stress
- anti inflammatory
- chemotherapy induced