Sex differences in the activation of renal cell death pathways in diabetic vascular endothelial cell ET‐1 knockout mice

2020 ◽  
Vol 34 (S1) ◽  
pp. 1-1
Author(s):  
Carmen De Miguel ◽  
Vianna G. Martinez ◽  
Rawan Almutlaq ◽  
David M. Pollock ◽  
Jennifer S. Pollock
2021 ◽  
Vol 12 ◽  
Author(s):  
Xiaoguang Liu ◽  
Xinyu Weng ◽  
Weihua Xiao ◽  
Xin Xu ◽  
Yingjie Chen ◽  
...  

Angiogenesis is an important process under both physiological and pathophysiological conditions. Here we investigated the role and the underlying mechanism of PD-1 in hindlimb ischemia-induced inflammation and angiogenesis in mice. We found that inhibition of PD-1 by genetic PD-1 knockout or pharmacological PD-1 blocking antibodies dramatically attenuated hindlimb blood perfusion, angiogenesis, and exercise capacity in mice after femoral artery ligation. Mechanistically, we found that PD-1 knockout significantly exacerbated ischemia-induced muscle oxidative stress, leukocyte infiltration and IFN-γ production before abnormal angiogenesis in these mice. In addition, we found that the percentages of IFN-γ positive macrophages and CD8 T cells were significantly increased in P-1 knockout mice after hindlimb ischemia. Macrophages were the major leukocyte subset infiltrated in skeletal muscle, which were responsible for the enhanced muscle leukocyte-derived IFN-γ production in PD-1 knockout mice after hindlimb ischemia. Moreover, we demonstrated that IFN-γ significantly attenuated vascular endothelial cell proliferation, tube formation and migration in vitro. IFN-γ also significantly enhanced vascular endothelial cell apoptosis. In addition, the total number of TNF-α positive leukocytes/muscle weight were significantly increased in PD-1-/- mice after hindlimb ischemia. These data indicate that PD-1 exerts an important role in ischemia-induced muscle inflammation and angiogenesis.


PLoS ONE ◽  
2016 ◽  
Vol 11 (4) ◽  
pp. e0153620 ◽  
Author(s):  
Ramanjaneya V. R. Mula ◽  
Deepa Machiah ◽  
Lauren Holland ◽  
Xinyu Wang ◽  
Harish Parihar ◽  
...  

1995 ◽  
Vol 31 (5) ◽  
pp. 323-325 ◽  
Author(s):  
Ken-Ichi Norioka ◽  
Toshihiro Mitaka ◽  
Takashi Kojima ◽  
Yohichi Mochizuki

2009 ◽  
Vol 54 (5(2)) ◽  
pp. 2129-2132 ◽  
Author(s):  
MyungHwan Jung ◽  
SaengMyung Han ◽  
SunHee Lee ◽  
YouMie Lee ◽  
Yong-Hoon Kim

2021 ◽  
Vol 11 (6) ◽  
pp. 1174-1180
Author(s):  
Zhengli Tan ◽  
Lei Li

The occurrence of vascular endothelial injury is key to the progression of atherosclerosis (AS). This research explores the expression of lncRNA DLGAP1-AS1 in a mouse model of atherosclerosis and its effect on ox-LDL-induced vascular endothelial cell injury. A mouse model of AS was constructed, and DLGAP1-AS1 expression was detected using the nano real-time PCR method. Vascular endothelial cells (VEC) are categorized into four groups. Flow cytometry detects cell apoptosis, and Western blot detects Bax and Bcl-2 expressions; WST-8 method detects level of SOD. Thiobarbituric acid method, Ammonium molybdate colorimetric method, DCFH-DA method were used to detect MDA, CAT, and reactive oxygen species (ROS) levels, respectively. Bioinformatics software predicted the target genes of DLGAP1-AS1. DLGAP1-AS1 expression was raised in AS mice, apoptotic rate and Bax expression in the ox-LDL group were raised, Bcl-2 expression was abated, MDA and ROS levels were raised, SOD and CAT levels were abated than in control. The si-DLGAP1-AS1+ox-LDL group decreased cell death and Bax expression, increased Bcl-2 expression, decreased MDA and ROS levels, and increased SOD and CAT levels than in the si-NC+ox-LDL group. Down-regulation of DLGAP1-AS1 was targeted in order to promote miR-26a-5p expression. Compared with co-transfection with DLGAP1-AS1 siRNA and inhibitor control, the apoptosis rate and Bax expression were increased after co-transfection with DLGAP1-AS1 siRNA and miR-26a-5p inhibitor, Bcl-2 expression was decreased, and MDA and ROS levels were increased, the level of SOD and CAT were decreased. DLGAP1-AS1 was up-regulated in AS mice and downregulated to promote miR-26a-5p to inhibit ox-LDL-induced vascular endothelial cell death and oxidative damage.


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