An H 2 S-BMP6 Dual-Loading System with Regulating YAP/TAZ and Jun Pathway for Synergistic Critical Limb Ischemia Salvaging Therapy.
Jiateng HuZhijue XuDonghui LiaoYihong JiangHongji PuZhaoyu WuXintong XuZhen ZhaoJianqiang LiuXinwu LuXiaobing LiuBo LiPublished in: Advanced healthcare materials (2023)
Critical limb ischemia, the final course of peripheral artery disease, is characterized by an insufficient supply of blood flow and excessive oxidative stress. H 2 S molecular therapy possesses huge potential for accelerating revascularization and scavenging intracellular reactive oxygen species (ROS). Moreover, it is found that BMP6 is the most significantly up-expressed secreted protein-related gene in HUVECs treated with GYY4137, a H 2 S donor, based on the transcriptome analysis. Herein, a UIO-66-NH 2 @GYY4137@BMP6 co-delivery nanoplatform to strengthen the therapeutic effects of limb ischemia is developed. The established UIO-66-NH 2 @GYY4137@BMP6 nanoplatform exerts its proangiogenic and anti-oxidation functions by regulating key pathways. The underlying molecular mechanisms of UIO-66-NH 2 @GYY4137@BMP6 dual-loading system lie in the upregulation of phosphorylated YAP/TAZ and Jun to promote HUVECs proliferation and downregulation of phosphorylated p53/p21 to scavenge excessive ROS. Meanwhile, laser-doppler perfusion imaging (LDPI), injury severity evaluation, and histological analysis confirm the excellent therapeutic effects of UIO-66-NH 2 @GYY4137@BMP6 in vivo. This work may shed light on the treatment of critical limb ischemia by regulating YAP, Jun, and p53 signaling pathways based on gas-protein synergistic therapy. This article is protected by copyright. All rights reserved.
Keyphrases
- mesenchymal stem cells
- reactive oxygen species
- blood flow
- bone regeneration
- room temperature
- signaling pathway
- metal organic framework
- cancer therapy
- oxidative stress
- dna damage
- peripheral artery disease
- cell proliferation
- photodynamic therapy
- cell death
- high resolution
- gene expression
- perovskite solar cells
- epithelial mesenchymal transition
- bone marrow
- induced apoptosis
- cell therapy
- drug release
- weight gain
- protein protein
- physical activity
- pi k akt
- long non coding rna
- mass spectrometry
- coronary artery bypass grafting
- amino acid
- magnetic resonance imaging
- computed tomography
- coronary artery disease
- hydrogen peroxide
- copy number
- magnetic resonance
- small molecule
- binding protein
- high speed
- fluorescence imaging