1.Multiple regulatory effects of angiotensin II on the large-conductance Ca- and voltage-activated potassium channel in vascular smooth muscle cells.
Xiao-Chen YIN ; Su-Li ZHANG ; Hui-Rong LIU
Acta Physiologica Sinica 2019;71(2):187-195
		                        		
		                        			
		                        			Renin-angiotensin system (RAS) is involved in the regulation of vascular smooth muscle cell (VSMC) tension. Angiotensin II (Ang II) as the main effector molecule of RAS can increase the intracellular Ca concentration and cause VSMCs contraction by activating angiotensin II type 1 receptor (AT1R). The large-conductance Ca- and voltage-activated potassium (BK) channel is an essential potassium channel in VSMCs, playing an important role in maintaining membrane potential and intracellular potassium-calcium balance. The BK channel in VSMCs mainly consists of α and β1 subunits. Functional BKα subunits contain voltage-sensors and Ca binding sites. Hence, increase in the membrane potential or intracellular Ca concentration can trigger the opening of the BK channel by mediating transient K outward current in a negative regulatory manner. However, increasing evidence has shown that although Ang II can raise the intracellular Ca concentration, it also inhibits the expression and function of the BK channel by activating the PKC pathway, internalizing AT1R-BKα heterodimer, or dissociating α and β1 subunits. Under some specific conditions, Ang II can also activate the BK channel, but the underlying mechanism remains unknown. In this review, we summarize the potential mechanisms underlying the inhibitory or activating effect of Ang II on the BK channel, hoping that it could provide a theoretical basis for improving intracellular ion imbalance.
		                        		
		                        		
		                        		
		                        			Angiotensin II
		                        			;
		                        		
		                        			physiology
		                        			;
		                        		
		                        			Calcium
		                        			;
		                        		
		                        			physiology
		                        			;
		                        		
		                        			Humans
		                        			;
		                        		
		                        			Large-Conductance Calcium-Activated Potassium Channels
		                        			;
		                        		
		                        			physiology
		                        			;
		                        		
		                        			Muscle, Smooth, Vascular
		                        			;
		                        		
		                        			cytology
		                        			;
		                        		
		                        			Myocytes, Smooth Muscle
		                        			;
		                        		
		                        			physiology
		                        			;
		                        		
		                        			Renin-Angiotensin System
		                        			
		                        		
		                        	
2.Recent progress in smooth muscle autophagy of vascular diseases.
Shi TAI ; Qin ZHOU ; Yanan GUO ; Shenghua ZHOU
Journal of Central South University(Medical Sciences) 2018;43(8):920-928
		                        		
		                        			
		                        			Autophagy plays a crucial role in maintaining normal structure and vascular function in vivo. When stress-relevant stimuli are involved, the increases of autophagy can protect vascular smooth muscle cells, promote cell survival, and phenotype transformation, as well as reduce calcification. On the contrary, the decrease of autophagy can accelerate cell senescence, resulting in structural changes and dysfunction of vasomotor and vasodilation. However, excessive activation of autophagy can induce the damage of the healthy protein and essential organelles, and even lead to autophagic cell death, accelerating the progression of vascular disease. Thus, the precise targeting of autophagy opens a novel way for treatment of vascular diseases.
		                        		
		                        		
		                        		
		                        			Autophagy
		                        			;
		                        		
		                        			physiology
		                        			;
		                        		
		                        			Cell Survival
		                        			;
		                        		
		                        			Cellular Senescence
		                        			;
		                        		
		                        			Disease Progression
		                        			;
		                        		
		                        			Humans
		                        			;
		                        		
		                        			Muscle, Smooth, Vascular
		                        			;
		                        		
		                        			cytology
		                        			;
		                        		
		                        			Myocytes, Smooth Muscle
		                        			;
		                        		
		                        			physiology
		                        			;
		                        		
		                        			Vascular Diseases
		                        			;
		                        		
		                        			pathology
		                        			;
		                        		
		                        			therapy
		                        			
		                        		
		                        	
3.miR-379 Inhibits Cell Proliferation, Invasion, and Migration of Vascular Smooth Muscle Cells by Targeting Insulin-Like Factor-1.
Kai LI ; Yong WANG ; Anji ZHANG ; Baixue LIU ; Li JIA
Yonsei Medical Journal 2017;58(1):234-240
		                        		
		                        			
		                        			PURPOSE: MicroRNAs are small non-coding RNAs that play important roles in vascular smooth muscle cell (VSMC) function. This study investigated the role of miR-379 on proliferation, invasion, and migration of VSMCs and explored underlying mechanisms thereof. MATERIALS AND METHODS: MicroRNA, mRNA, and protein levels were determined by quantitative real-time PCR and western blot. The proliferative, invasive, and migratory abilities of VSMCs were measured by CCK-8, invasion, and wound healing assay, respectively. Luciferase reporter assay was used to confirm the target of miR-379. RESULTS: Platelet-derived growth factor-bb was found to promote cell proliferation and suppress miR-379 expression in VSMCs. Functional assays demonstrated that miR-379 inhibited cell proliferation, cell invasion, and migration. Flow cytometry results further showed that miR-379 induced apoptosis in VSMCs. TargetScan analysis and luciferase report assay confirmed that insulin-like growth factor-1 (IGF-1) 3'UTR is a direct target of miR-379, and mRNA and protein levels of miR-379 and IGF-1 were inversely correlated. Rescue experiments showed that enforced expression of IGF-1 sufficiently overcomes the inhibitory effect of miR-379 on cell proliferation, invasion, and migration in VSMCs. CONCLUSION: Our results suggest that miR-379 plays an important role in regulating VSMCs proliferation, invasion, and migration by targeting IGF-1.
		                        		
		                        		
		                        		
		                        			Apoptosis
		                        			;
		                        		
		                        			Cell Movement/*physiology
		                        			;
		                        		
		                        			Cell Proliferation/*physiology
		                        			;
		                        		
		                        			Humans
		                        			;
		                        		
		                        			Insulin
		                        			;
		                        		
		                        			Insulin-Like Growth Factor I/*physiology
		                        			;
		                        		
		                        			MicroRNAs/*physiology
		                        			;
		                        		
		                        			Muscle, Smooth, Vascular/*cytology
		                        			;
		                        		
		                        			Proto-Oncogene Proteins c-sis/*physiology
		                        			;
		                        		
		                        			RNA, Messenger/metabolism
		                        			;
		                        		
		                        			Real-Time Polymerase Chain Reaction
		                        			;
		                        		
		                        			Sincalide/physiology
		                        			;
		                        		
		                        			Wound Healing/physiology
		                        			
		                        		
		                        	
4.Tacrolimus inhibits vasoconstriction by increasing Ca(2+) sparks in rat aorta.
Yu-fang CHEN ; Chen WANG ; Rui ZHANG ; Huan WANG ; Rong MA ; Si JIN ; Ji-zhou XIANG ; Qiang TANG
Journal of Huazhong University of Science and Technology (Medical Sciences) 2016;36(1):8-13
		                        		
		                        			
		                        			The present study attempted to test a novel hypothesis that Ca(2+) sparks play an important role in arterial relaxation induced by tacrolimus. Recorded with confocal laser scanning microscopy, tacrolimus (10 µmol/L) increased the frequency of Ca(2+) sparks, which could be reversed by ryanodine (10 µmol/L). Electrophysiological experiments revealed that tacrolimus (10 µmol/L) increased the large-conductance Ca(2+)-activated K(+) currents (BKCa) in rat aortic vascular smooth muscle cells (AVSMCs), which could be blocked by ryanodine (10 µmol/L). Furthermore, tacrolimus (10 and 50 µmol/L) reduced the contractile force induced by norepinephrine (NE) or KCl in aortic vascular smooth muscle in a concentration-dependent manner, which could be also significantly attenuated by iberiotoxin (100 nmol/L) and ryanodine (10 µmol/L) respectively. In conclusion, tacrolimus could indirectly activate BKCa currents by increasing Ca(2+) sparks released from ryanodine receptors, which inhibited the NE- or KCl-induced contraction in rat aorta.
		                        		
		                        		
		                        		
		                        			Animals
		                        			;
		                        		
		                        			Aorta
		                        			;
		                        		
		                        			cytology
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			physiology
		                        			;
		                        		
		                        			Calcium Signaling
		                        			;
		                        		
		                        			Cells, Cultured
		                        			;
		                        		
		                        			Large-Conductance Calcium-Activated Potassium Channels
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Male
		                        			;
		                        		
		                        			Muscle, Smooth, Vascular
		                        			;
		                        		
		                        			drug effects
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			physiology
		                        			;
		                        		
		                        			Myocytes, Smooth Muscle
		                        			;
		                        		
		                        			drug effects
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Norepinephrine
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			Rats
		                        			;
		                        		
		                        			Rats, Sprague-Dawley
		                        			;
		                        		
		                        			Ryanodine
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			Tacrolimus
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			Vasoconstriction
		                        			
		                        		
		                        	
5.Inhibiting Smooth Muscle Cell Proliferation via Immobilization of Heparin/Fibronectin Complexes on Titanium Surfaces.
Gui Cai LI ; Qi Fei XU ; Ping YANG
Biomedical and Environmental Sciences 2015;28(5):378-382
		                        		
		                        			
		                        			The aim of this study was to investigate the inhibitory effect of heparin/fibronectin (Hep/Fn) complexes on neointimal hyperplasia following endovascular intervention. Hep/Fn complexes were immobilized onto titanium (Ti) surfaces, with subsequent X-ray photoelectron spectroscopy (XPS), Toluidine Blue O (TBO) and immunohistochemistry methods were used to characterize surface properties. Smooth muscle cell (SMC) cultures were used to evaluate the effect of Hep/Fn complexes on SMC proliferation. Results showed that Hep/Fn complexes successfully immobilized onto Ti surfaces and resulted in an inhibition of SMC proliferation. This study suggests that Hep/Fn surface-immobilized biomaterials develop as a new generation of biomaterials to prevent neointimal hyperplasia, particularly for use in cardiovascular implants.
		                        		
		                        		
		                        		
		                        			Biocompatible Materials
		                        			;
		                        		
		                        			Cell Proliferation
		                        			;
		                        		
		                        			drug effects
		                        			;
		                        		
		                        			physiology
		                        			;
		                        		
		                        			Cells, Cultured
		                        			;
		                        		
		                        			Fibronectins
		                        			;
		                        		
		                        			chemistry
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			Heparin
		                        			;
		                        		
		                        			chemistry
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			Humans
		                        			;
		                        		
		                        			Immobilized Proteins
		                        			;
		                        		
		                        			chemistry
		                        			;
		                        		
		                        			Muscle, Smooth, Vascular
		                        			;
		                        		
		                        			cytology
		                        			;
		                        		
		                        			Myocytes, Smooth Muscle
		                        			;
		                        		
		                        			drug effects
		                        			;
		                        		
		                        			physiology
		                        			;
		                        		
		                        			Surface Properties
		                        			;
		                        		
		                        			Titanium
		                        			;
		                        		
		                        			chemistry
		                        			;
		                        		
		                        			Umbilical Arteries
		                        			
		                        		
		                        	
6.Isoliquiritigenin relaxes the cerebral basilar artery by enhancing BKCa current in spontaneously hypertensive rat: role of sGC/cGMP.
Wei-Wei TIAN ; Lei ZHAO ; Ke-Tao MA ; Li LI ; Jun-Qiang SI
Acta Physiologica Sinica 2015;67(3):329-334
		                        		
		                        			
		                        			The purpose of the present study is to investigate the effect of isoliquiritigenin (ISL) on the cerebral basilar artery in spontaneously hypertensive rats (SHR). The change of SHR systolic pressure was measured by tail artery pressure measurement instrument before and after ISL intervention. After perfusion with 1 × 10(-5) mol/L phenylephrine (PE), 1 × 10(-5) mol/L PE + 1 × 10(-4) mol/L ISL and 1 × 10(-5) mol/L PE, the diameter of the cerebral basilar artery separated from SHR was measured by pressure myograph. The current of large-conductance calcium-activated potassium (BKCa) channel of SHR single vascular smooth muscle cell (VSMC) was recorded by whole-cell patch-clamp technique and the cGMP levels of basilar artery was evaluated by ELISA. The results showed that 1) after intervention with ISL for 14 days, the systolic pressure of SHR was decreased from (218.3 ± 1.6) mmHg to (119.2 ± 1.9) mmHg (P < 0.01), but there was no difference in systolic pressure between ISL-treated SHR and Wistar-Kyoto (WKY) rat; 2) 1 × 10(-4) mol/L ISL relaxed the SHR cerebral basilar artery (P < 0.01); 3) ISL significantly increased the outward current density of VSMC from SHR cerebral basilar artery (P < 0.01, n = 6), and the effect could be reversed by 1 × 10(-3) mol/L TEA (a BKCa channel inhibitor), but 3 × 10(-4) mol/L 4-AP (a Kv channel inhibitor) had no effect on the enhanced current density induced by ISL in VSMC; 4) 1 × 10(-5) mol/L Methylene blue (a sGC inhibitor) significantly inhibited the ISL-enhanced current density in VSMC (P < 0.05, n = 6); 5) ISL significantly increased the cGMP level of SHR basilar artery (P < 0.05, n = 6). The results suggest that the role of the ISL in relaxing the SHR cerebral basilar artery may be related to its effect in enhancing BKCa current by increasing the levels of cGMP in the VSMC.
		                        		
		                        		
		                        		
		                        			Animals
		                        			;
		                        		
		                        			Basilar Artery
		                        			;
		                        		
		                        			drug effects
		                        			;
		                        		
		                        			Blood Pressure
		                        			;
		                        		
		                        			Cerebral Arteries
		                        			;
		                        		
		                        			drug effects
		                        			;
		                        		
		                        			Chalcones
		                        			;
		                        		
		                        			pharmacology
		                        			;
		                        		
		                        			Cyclic GMP
		                        			;
		                        		
		                        			physiology
		                        			;
		                        		
		                        			Muscle, Smooth, Vascular
		                        			;
		                        		
		                        			cytology
		                        			;
		                        		
		                        			Myocytes, Smooth Muscle
		                        			;
		                        		
		                        			physiology
		                        			;
		                        		
		                        			Patch-Clamp Techniques
		                        			;
		                        		
		                        			Potassium Channels, Calcium-Activated
		                        			;
		                        		
		                        			physiology
		                        			;
		                        		
		                        			Rats
		                        			;
		                        		
		                        			Rats, Inbred SHR
		                        			;
		                        		
		                        			Rats, Inbred WKY
		                        			;
		                        		
		                        			Systole
		                        			
		                        		
		                        	
7.Effect of NF-κB on proliferation of rat pulmonary artery smooth muscle cells inhibited by simvastatin.
Zhong-Qiang LIU ; Xiao-Qin WANG ; Han-Min LIU
Chinese Journal of Contemporary Pediatrics 2015;17(2):185-189
OBJECTIVETo explore the effects of NF-κB on proliferation of rat pulmonary artery smooth muscle cells (PASMC) inhibited by simvastatin.
METHODSPASMC isolated from rats and cultured in vitro were randomly divided into four groups (n=6 each): control, platelet-derived growth factor (PDGF) treatment, PDGF+simvastatin treatment, and PDGF+simvastatin+parthenolide (NF-κB inhibitor) treatment. MTT colorimetric assay and flow cytometry were performed to detect cell proliferation and cell cycle distribution. Immunohistochemistry was performed to detect the expression of NF-κB protein. Real-Time PCR was performed to detect NF-κB mRNA expression.
RESULTSCompared with the control group, MTT values of PASMC at all time points, cell proportion at the S phase and G2+M phase, NF-κB protein and mRNA expression increased significantly in the PDGF group (P<0.05). With the intervention of simvastatin, the levels of above indexes decreased compared with the PDGF group (P<0.05). With the intervention of simvastatin and parthenolide, the levels of above indexes decreased more obviously, but were not significantly different from those in the simvastatin intervention group.
CONCLUSIONSSimvastatin can inhibit proliferation of PASMC and cell cycle process. NF-κB may play an important role in the inhibitory effect of simvastatin on the proliferation of PASMC.
Animals ; Cell Proliferation ; drug effects ; Hydroxymethylglutaryl-CoA Reductase Inhibitors ; pharmacology ; Male ; Muscle, Smooth, Vascular ; cytology ; Myocytes, Smooth Muscle ; physiology ; NF-kappa B ; analysis ; genetics ; physiology ; Pulmonary Artery ; cytology ; RNA, Messenger ; analysis ; Rats ; Rats, Sprague-Dawley ; Simvastatin ; pharmacology
8.Differential effect of calcium-activated potassium and chloride channels on rat basilar artery vasomotion.
Li LI ; Rui WANG ; Ke-tao MA ; Xin-zhi LI ; Chuan-lin ZHANG ; Wei-dong LIU ; Lei ZHAO ; Jun-qiang SI
Journal of Huazhong University of Science and Technology (Medical Sciences) 2014;34(4):482-490
		                        		
		                        			
		                        			Spontaneous, rhythmical contractions, or vasomotion, can be recorded from cerebral vessels under both normal physiological and pathophysiological conditions. We investigated the cellular mechanisms underlying vasomotion in the cerebral basilar artery (BA) of Wistar rats. Pressure myograph video microscopy was used to study the changes in cerebral artery vessel diameter. The main results of this study were as follows: (1) The diameters of BA and middle cerebral artery (MCA) were 314.5±15.7 μm (n=15) and 233.3±10.1 μm (n=12) at 10 mmHg working pressure (P<0.05), respectively. Pressure-induced vasomotion occurred in BA (22/28, 78.6%), but not in MCA (4/31, 12.9%) from 0 to 70 mmHg working pressure. As is typical for vasomotion, the contractile phase of the response was more rapid than the relaxation phase; (2) The frequency of vasomotion response and the diameter were gradually increased in BA from 0 to 70 mmHg working pressure. The amplitude of the rhythmic contractions was relatively constant once stable conditions were achieved. The frequency of contractions was variable and the highest value was 16.7±4.7 (n=13) per 10 min at 60 mmHg working pressure; (3) The pressure-induced vasomotion of the isolated BA was attenuated by nifedipine, NFA, 18β-GA, TEA or in Ca(2+)-free medium. Nifedipine, NFA, 18β-GA or Ca(2+)-free medium not only dampened vasomotion, but also kept BA in relaxation state. In contrasts, TEA kept BA in contraction state. These results suggest that the pressure-induced vasomotion of the isolated BA results from an interaction between Ca(2+)-activated Cl(-) channels (CaCCs) currents and K(Ca) currents. We hypothesize that vasomotion of BA depends on the depolarizing of the vascular smooth muscle cells (VSMCs) to activate CaCCs. Depolarization in turn activates voltage-dependent Ca(2+) channels, synchronizing contractions of adjacent cells through influx of extracellular calcium and the flow of calcium through gap junctions. Subsequent calcium-induced calcium release from ryanodine-sensitive stores activates K(Ca) channels and hyperpolarizes VSMCs, which provides a negative feedback loop for regenerating the contractile cycle.
		                        		
		                        		
		                        		
		                        			Animals
		                        			;
		                        		
		                        			Basilar Artery
		                        			;
		                        		
		                        			cytology
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			physiology
		                        			;
		                        		
		                        			Chloride Channels
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Female
		                        			;
		                        		
		                        			Male
		                        			;
		                        		
		                        			Membrane Potentials
		                        			;
		                        		
		                        			physiology
		                        			;
		                        		
		                        			Muscle, Smooth, Vascular
		                        			;
		                        		
		                        			cytology
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Myocytes, Smooth Muscle
		                        			;
		                        		
		                        			cytology
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Potassium Channels, Calcium-Activated
		                        			;
		                        		
		                        			metabolism
		                        			;
		                        		
		                        			Rats
		                        			;
		                        		
		                        			Rats, Wistar
		                        			;
		                        		
		                        			Vasoconstriction
		                        			;
		                        		
		                        			physiology
		                        			;
		                        		
		                        			Vasodilation
		                        			;
		                        		
		                        			physiology
		                        			
		                        		
		                        	
9.Comparison of membrane current of vascular smooth muscle cells in brain artery of spontaneously hypertensive rats and Wistar rats.
Lei ZHAO ; Yuan-Yuan SHANG ; Jun-Qiang SI ; Xin-Zhi LI ; Li LI ; Zhong-Shuang ZHANG ; Ke-Tao MA
Chinese Journal of Applied Physiology 2013;29(1):25-28
OBJECTIVETo investigate the difference in membrane current of vascular smooth muscle cells (VSMCs) in brain artery (BA) of spontaneously hypertensive rats (SHR) and Wistar rats.
METHODSWe compared the properties of spontaneous transient outward K+ currents (STOCs), the density and composition of current of VSMCs in BA of SHR and Wistar rats by whole-cell patch clamp technique.
RESULTS(1) When the command voltage was 0, + 20, + 40 and + 60 mV respectively, the current densities of VSMCs in BA of SHR and Wistar rats were significant different (P < 0.01). (2) The whole-cell current of VSMCs was partly inhibited by 1 mmol/L4-AP (voltage-gated K+ channel blocker) or 1 mmol/L TEA (big conductance Ca(2+)-activated K+ channel blocker) respectively. (3) The frequency and amplitude of STOCs in SHR were faster and bigger than those in Wistar rats. 1 mmol/L TEA almostly inhibited the STOCs, but not by 4-AP.
CONCLUSIONThese results suggest that the current densities of VSMCs in BA of SHR and Wistar rats are significant different, the outward current of VSMCs in BA of SHR and Wistar rats are composed by Kv and BK(Ca). SHR express more STOCs mediated by BK(Ca), than Wistar rats.
Animals ; Cerebral Arteries ; cytology ; physiology ; Membrane Potentials ; physiology ; Muscle, Smooth, Vascular ; cytology ; physiology ; Myocytes, Smooth Muscle ; physiology ; Patch-Clamp Techniques ; Potassium Channels, Calcium-Activated ; physiology ; Potassium Channels, Voltage-Gated ; physiology ; Rats ; Rats, Inbred SHR ; Rats, Wistar
10.Up-regulation of Fas ligand expression by sirtuin 1 in both flow-restricted vessels and serum-stimulated vascular smooth muscle cells.
Li LI ; Peng GAO ; Hou-zao CHEN ; Zhu-qin ZHANG ; Ting-ting XU ; Yu-yan JIA ; Hui-na ZHANG ; Guan-hua DU ; De-pei LIU
Chinese Medical Sciences Journal 2013;28(2):65-71
OBJECTIVETo study the role of sirtuin 1 (SIRT1) in Fas ligand (FasL) expression regulation during vascular lesion formation and to elucidate the potential mechanisms.
METHODSSIRT1 and FasL protein levels were detected by Western blotting in either mouse arteries extract or the whole rat aortic vascular smooth muscle cell (VSMC) lysate. Smooth muscle cell (SMC)-specific human SIRT1 transgenic (Tg) C57BL/6 mice and their littermate wild-type (WT) controls underwent complete carotid artery ligation (ligation groups) or the ligation-excluded operation (sham groups). The carotid arteries were collected 1 day after operation. Reverse transcription-polymerase chain reaction was performed to detect the mRNA levels of SIRT1 and FasL. Luciferase reporter assays were performed to detect the effect of WT-SIRT1, a dominant-negative form of SIRT1 (SIRT1H363Y), and GATA-6 on the promoter activity of FasL. Flow cytometry assay was applied to measure the hypodiploid DNA content of VSMC so as to monitor cellular apoptosis.
RESULTSSIRT1 was expressed in both rat aortic VSMCs and mouse arteries. Forced SIRT1 expression increased FasL expression both in injured mouse carotid arteries 1 day after ligation (P<0.001) and VSMCs treated with serum (P<0.05 at the transcriptional level, P<0.001 at the protein level). No notable apoptosis was observed. Furthermore, transcription factor GATA-6 increased the promoter activity of FasL (P<0.001). The induction of FasL promoter activity by GATA-6 was enhanced by WT-SIRT1 (P<0.001), while SIRT1H363Y significantly relieved the enhancing effect of WT-SIRT1 on GATA-6 (P<0.001).
CONCLUSIONSOverexpression of SIRT1 up-regulates FasL expression in both flow-restricted mouse carotid arteries and serum-stimulated VSMCs. The transcription factor GATA-6 participates in the transcriptional regulation of FasL expression by SIRT1.
Animals ; Apoptosis ; Carotid Arteries ; physiology ; Fas Ligand Protein ; genetics ; GATA6 Transcription Factor ; physiology ; Male ; Muscle, Smooth, Vascular ; cytology ; metabolism ; Myocytes, Smooth Muscle ; metabolism ; RNA, Messenger ; analysis ; Rats ; Rats, Sprague-Dawley ; Sirtuin 1 ; physiology ; Up-Regulation
            
Result Analysis
Print
Save
E-mail