1.Guanxinning Tablet Improves Early Heart Failure in Rats by Regulating Intestinal Microflora
Yan ZHANG ; Yu HUANG ; Quanxin MA ; Songtao XU ; Liye SHEN ; Yanyun XU ; Minli CHEN ; Yili RONG
Chinese Journal of Modern Applied Pharmacy 2024;41(8):1056-1065
OBJECTIVE
To investigate the effect of Guanxinning tablets(GXN) on early heart failure model rats, and to explore the protective mechanism of GXN on heart failure rats from the perspective of intestinal flora.
METHODS
Six rats who underwent sham operation were set as sham operation group. Took 80 SD rats to undergo aortic arch stenosis and established a heart failure rat model. The surviving rats were divided into 4 groups, namely the model control group, the positive control group(captopril tablets 12.5 mg·kg–1), high-dose and low-dose of GXN group(600, 1 200 mg·kg–1). The 4 groups were administered continuously for 8 weeks. Cardiac ultrasonography was performed every 4 week. Serum NT-proBNP, hs-CRP, IL-6, TNF-α, SOD and MDA levels were measured. The effects of GXN on the structure and function of intestinal flora were observed based on the high-throughput sequencing technology and bioinformatics analysis of 16S gut microbiome.
RESULTS
Compared to the model control group, after giving different doses of GXN, the survival rate of rats increased, and the thickness of the ventricular wall decreased to varying degrees. The weight of the heart and coefficient of the heart were all reduced. GXN could also reduce the level of inflammatory factors, inhibit the level increase of NT-proBNP in rats, and increase the activity of serum SOD. In addition, GXN intervention could significantly improve the intestinal flora diversity of rats with heart failure, the possible target genera of GXN were Akkermansia genera, Phascolarctobacterium genera and Oxalobacter genera. The effect of GXN on intestinal function in rats with heart failure might be concentrated in non-homologous end-joining, influenza A, carotenoid synthesis, indole alkaloids biosynthesis, betalain biosynthesis, renin-angiotensin system and other biological pathways.
CONCLUSION
The protective effect of GXN on early heart failure rats may be related to the regulation of intestinal flora pathway.
2.Application value of high-resolution MRI enhanced examination in TNM staging of preoperative rectal tumor
Jiahang JIANG ; Zhifeng LIN ; Songtao HUANG
China Medical Equipment 2024;21(9):60-64
Objective:To explore the application value of preoperative high-resolution magnetic resonance imaging(MRI)enhanced examination in the preoperative diagnosis of tumor node metastases(TNM)staging of rectal tumor.Methods:A total of 80 patients with rectal tumor admitted to Guang'an People's Hospital from June 2021 to September 2022 were selected.All patients underwent high-resolution MRI enhanced examinations before surgery and they were confirmed by postoperative pathological examination.The consistency of MRI T staging,N staging and postoperatively pathological staging results was analyzed.Results:The postoperative pathological staging results showed that 14 cases were at T1 stage,and 29 cases were at T2 stage,and 25 cases were at T3 stage,and 12 cases were at T4 stage,and 28 cases were at N0 stage,and 33 cases were at N1 stage and 19 were at N2 stage in the 80 patients.The diagnostic accuracies of T staging and N staging of high-resolution MRI routine and enhanced examinations were respectively 86.25%(69/80)and 90.00%(72/80)(Kappa=0.806,0.847,P<0.05).The consistency rate between preoperative high-resolution MRI detection and postoperative pathology for metastatic lymph nodes of 80 patients was 88.75%(71/80).The analysis found that metastatic lymph nodes mostly concentrated in the diameter range of 0.8-1.0 cm,accounting for 66.41%.With the increasing of N staging and T staging,the volume transfer constant(Ktrans)of the region of interest(ROI)of tumor increased successively.The Ktrans value of metastatic lymph nodes was significantly higher than that of non-metastatic lymph nodes,and the difference was statistically significant(t=14.890,P<0.05).Conclusion:Preoperative high-resolution MRI routine and enhanced examination has highly consistency with postoperative pathological TN staging of rectal tumor.The improvement of high-resolution MRI enhanced examination is helpful to assess the progression of patients'tumors and to determine treatment plans for them.
3.Biomechanical Study of Atlanto-occipital Instability in Type II Basilar Invagination: A Finite Element Analysis
Junhua YE ; Qinguo HUANG ; Qiang ZHOU ; Hong LI ; Lin PENG ; Songtao QI ; Yuntao LU
Neurospine 2024;21(3):1014-1028
Objective:
Recent studies indicate that 3 morphological types of atlanto-occipital joint (AOJ) exist in the craniovertebral junction and are associated with type II basilar invagination (BI) and atlanto-occipital instability. However, the actual biomechanical effects remain unclear. This study aims to investigate biomechanical differences among AOJ types I, II, and III, and provide further evidence of atlanto-occipital instability in type II BI.
Methods:
Models of bilateral AOJ containing various AOJ types were created, including I-I, I-II, II-II, II-III, and III-III models, with increasing AOJ dysplasia across models. Then, 1.5 Nm torque simulated cervical motions. The range of motion (ROM), ligament and joint stress, and basion-dental interval (BDI) were analyzed.
Results:
The C0–1 ROM and accompanying rotational ROM increased progressively from model I-I to model III-III, with the ROM of model III-III showing increases between 27.3% and 123.8% indicating ultra-mobility and instability. In contrast, the C1–2 ROM changes were minimal. Meanwhile, the stress distribution pattern was disrupted; in particular, the C1 superior facet stress was concentrated centrally and decreased substantially across the models. The stress on the C0–1 capsule ligament decreased during cervical flexion and increased during bending and rotating loading. In addition, BDI gradually decreased across the models. Further analysis revealed that the dens showed an increase of 110.1% superiorly and 11.4% posteriorly, indicating an increased risk of spinal cord impingement.
Conclusion
Progressive AOJ incongruity critically disrupts supportive tissue loading, enabling incremental atlanto-occipital instability. AOJ dysplasia plays a key biomechanical role in the pathogenesis of type II BI.
4.Effect of aortic smooth muscle BK channels on mediating chronic intermittent hypoxia-induced vascular dysfunction
Ping ZHANG ; Pengtao ZOU ; Xiao HUANG ; Xianghui ZENG ; Songtao LIU ; Yuanyuan LIU ; Liang SHAO
The Korean Journal of Physiology and Pharmacology 2024;28(5):469-478
Chronic intermittent hypoxia (CIH) can lead to vascular dysfunction and increase the risk of cardiovascular diseases, cerebrovascular diseases, and arterial diseases. Nevertheless, mechanisms underlying CIH-induced vascular dysfunction remain unclear. Herein, this study analyzed the role of aortic smooth muscle calciumactivated potassium (BK) channels in CIH-induced vascular dysfunction. CIH models were established in rats and rat aortic smooth muscle cells (RASMCs). Hemodynamic parameters such as mean blood pressure (MBP), diastolic blood pressure (DBP), and systolic blood pressure (SBP) were measured in rats, along with an assessment of vascular tone. NO and ET-1 levels were detected in rat serum, and the levels of ET-1, NO, eNOS, p-eNOS, oxidative stress markers (ROS and MDA), and inflammatory factors (IL-6 and TNF-α) were tested in aortic tissues. The Ca2+ concentration in RASMCs was investigated. The activity of BK channels (BKα and BKβ) was evaluated in aortic tissues and RASMCs. SBP, DBP, and MBP were elevated in CIH-treated rats, along with endothelial dysfunction, cellular edema and partial detachment of endothelial cells. BK channel activity was decreased in CIH-treated rats and RASMCs. BK channel activation increased eNOS, p-eNOS, and NO levels while lowering ET-1, ROS, MDA, IL-6, and TNF-α levels in CIH-treated rats. Ca2+ concentration increased in RASMCs following CIH modeling, which was reversed by BK channel activation. BK channel inhibitor (Iberiotoxin) exacerbated CIH-induced vascular disorders and endothelial dysfunction. BK channel activation promoted vasorelaxation while suppressing vascular endothelial dysfunction, inflammation, and oxidative stress, thereby indirectly improving CIH-induced vascular dysfunction.
5.Biomechanical Study of Atlanto-occipital Instability in Type II Basilar Invagination: A Finite Element Analysis
Junhua YE ; Qinguo HUANG ; Qiang ZHOU ; Hong LI ; Lin PENG ; Songtao QI ; Yuntao LU
Neurospine 2024;21(3):1014-1028
Objective:
Recent studies indicate that 3 morphological types of atlanto-occipital joint (AOJ) exist in the craniovertebral junction and are associated with type II basilar invagination (BI) and atlanto-occipital instability. However, the actual biomechanical effects remain unclear. This study aims to investigate biomechanical differences among AOJ types I, II, and III, and provide further evidence of atlanto-occipital instability in type II BI.
Methods:
Models of bilateral AOJ containing various AOJ types were created, including I-I, I-II, II-II, II-III, and III-III models, with increasing AOJ dysplasia across models. Then, 1.5 Nm torque simulated cervical motions. The range of motion (ROM), ligament and joint stress, and basion-dental interval (BDI) were analyzed.
Results:
The C0–1 ROM and accompanying rotational ROM increased progressively from model I-I to model III-III, with the ROM of model III-III showing increases between 27.3% and 123.8% indicating ultra-mobility and instability. In contrast, the C1–2 ROM changes were minimal. Meanwhile, the stress distribution pattern was disrupted; in particular, the C1 superior facet stress was concentrated centrally and decreased substantially across the models. The stress on the C0–1 capsule ligament decreased during cervical flexion and increased during bending and rotating loading. In addition, BDI gradually decreased across the models. Further analysis revealed that the dens showed an increase of 110.1% superiorly and 11.4% posteriorly, indicating an increased risk of spinal cord impingement.
Conclusion
Progressive AOJ incongruity critically disrupts supportive tissue loading, enabling incremental atlanto-occipital instability. AOJ dysplasia plays a key biomechanical role in the pathogenesis of type II BI.
6.Effect of aortic smooth muscle BK channels on mediating chronic intermittent hypoxia-induced vascular dysfunction
Ping ZHANG ; Pengtao ZOU ; Xiao HUANG ; Xianghui ZENG ; Songtao LIU ; Yuanyuan LIU ; Liang SHAO
The Korean Journal of Physiology and Pharmacology 2024;28(5):469-478
Chronic intermittent hypoxia (CIH) can lead to vascular dysfunction and increase the risk of cardiovascular diseases, cerebrovascular diseases, and arterial diseases. Nevertheless, mechanisms underlying CIH-induced vascular dysfunction remain unclear. Herein, this study analyzed the role of aortic smooth muscle calciumactivated potassium (BK) channels in CIH-induced vascular dysfunction. CIH models were established in rats and rat aortic smooth muscle cells (RASMCs). Hemodynamic parameters such as mean blood pressure (MBP), diastolic blood pressure (DBP), and systolic blood pressure (SBP) were measured in rats, along with an assessment of vascular tone. NO and ET-1 levels were detected in rat serum, and the levels of ET-1, NO, eNOS, p-eNOS, oxidative stress markers (ROS and MDA), and inflammatory factors (IL-6 and TNF-α) were tested in aortic tissues. The Ca2+ concentration in RASMCs was investigated. The activity of BK channels (BKα and BKβ) was evaluated in aortic tissues and RASMCs. SBP, DBP, and MBP were elevated in CIH-treated rats, along with endothelial dysfunction, cellular edema and partial detachment of endothelial cells. BK channel activity was decreased in CIH-treated rats and RASMCs. BK channel activation increased eNOS, p-eNOS, and NO levels while lowering ET-1, ROS, MDA, IL-6, and TNF-α levels in CIH-treated rats. Ca2+ concentration increased in RASMCs following CIH modeling, which was reversed by BK channel activation. BK channel inhibitor (Iberiotoxin) exacerbated CIH-induced vascular disorders and endothelial dysfunction. BK channel activation promoted vasorelaxation while suppressing vascular endothelial dysfunction, inflammation, and oxidative stress, thereby indirectly improving CIH-induced vascular dysfunction.
7.Biomechanical Study of Atlanto-occipital Instability in Type II Basilar Invagination: A Finite Element Analysis
Junhua YE ; Qinguo HUANG ; Qiang ZHOU ; Hong LI ; Lin PENG ; Songtao QI ; Yuntao LU
Neurospine 2024;21(3):1014-1028
Objective:
Recent studies indicate that 3 morphological types of atlanto-occipital joint (AOJ) exist in the craniovertebral junction and are associated with type II basilar invagination (BI) and atlanto-occipital instability. However, the actual biomechanical effects remain unclear. This study aims to investigate biomechanical differences among AOJ types I, II, and III, and provide further evidence of atlanto-occipital instability in type II BI.
Methods:
Models of bilateral AOJ containing various AOJ types were created, including I-I, I-II, II-II, II-III, and III-III models, with increasing AOJ dysplasia across models. Then, 1.5 Nm torque simulated cervical motions. The range of motion (ROM), ligament and joint stress, and basion-dental interval (BDI) were analyzed.
Results:
The C0–1 ROM and accompanying rotational ROM increased progressively from model I-I to model III-III, with the ROM of model III-III showing increases between 27.3% and 123.8% indicating ultra-mobility and instability. In contrast, the C1–2 ROM changes were minimal. Meanwhile, the stress distribution pattern was disrupted; in particular, the C1 superior facet stress was concentrated centrally and decreased substantially across the models. The stress on the C0–1 capsule ligament decreased during cervical flexion and increased during bending and rotating loading. In addition, BDI gradually decreased across the models. Further analysis revealed that the dens showed an increase of 110.1% superiorly and 11.4% posteriorly, indicating an increased risk of spinal cord impingement.
Conclusion
Progressive AOJ incongruity critically disrupts supportive tissue loading, enabling incremental atlanto-occipital instability. AOJ dysplasia plays a key biomechanical role in the pathogenesis of type II BI.
8.Effect of aortic smooth muscle BK channels on mediating chronic intermittent hypoxia-induced vascular dysfunction
Ping ZHANG ; Pengtao ZOU ; Xiao HUANG ; Xianghui ZENG ; Songtao LIU ; Yuanyuan LIU ; Liang SHAO
The Korean Journal of Physiology and Pharmacology 2024;28(5):469-478
Chronic intermittent hypoxia (CIH) can lead to vascular dysfunction and increase the risk of cardiovascular diseases, cerebrovascular diseases, and arterial diseases. Nevertheless, mechanisms underlying CIH-induced vascular dysfunction remain unclear. Herein, this study analyzed the role of aortic smooth muscle calciumactivated potassium (BK) channels in CIH-induced vascular dysfunction. CIH models were established in rats and rat aortic smooth muscle cells (RASMCs). Hemodynamic parameters such as mean blood pressure (MBP), diastolic blood pressure (DBP), and systolic blood pressure (SBP) were measured in rats, along with an assessment of vascular tone. NO and ET-1 levels were detected in rat serum, and the levels of ET-1, NO, eNOS, p-eNOS, oxidative stress markers (ROS and MDA), and inflammatory factors (IL-6 and TNF-α) were tested in aortic tissues. The Ca2+ concentration in RASMCs was investigated. The activity of BK channels (BKα and BKβ) was evaluated in aortic tissues and RASMCs. SBP, DBP, and MBP were elevated in CIH-treated rats, along with endothelial dysfunction, cellular edema and partial detachment of endothelial cells. BK channel activity was decreased in CIH-treated rats and RASMCs. BK channel activation increased eNOS, p-eNOS, and NO levels while lowering ET-1, ROS, MDA, IL-6, and TNF-α levels in CIH-treated rats. Ca2+ concentration increased in RASMCs following CIH modeling, which was reversed by BK channel activation. BK channel inhibitor (Iberiotoxin) exacerbated CIH-induced vascular disorders and endothelial dysfunction. BK channel activation promoted vasorelaxation while suppressing vascular endothelial dysfunction, inflammation, and oxidative stress, thereby indirectly improving CIH-induced vascular dysfunction.
9.Biomechanical Study of Atlanto-occipital Instability in Type II Basilar Invagination: A Finite Element Analysis
Junhua YE ; Qinguo HUANG ; Qiang ZHOU ; Hong LI ; Lin PENG ; Songtao QI ; Yuntao LU
Neurospine 2024;21(3):1014-1028
Objective:
Recent studies indicate that 3 morphological types of atlanto-occipital joint (AOJ) exist in the craniovertebral junction and are associated with type II basilar invagination (BI) and atlanto-occipital instability. However, the actual biomechanical effects remain unclear. This study aims to investigate biomechanical differences among AOJ types I, II, and III, and provide further evidence of atlanto-occipital instability in type II BI.
Methods:
Models of bilateral AOJ containing various AOJ types were created, including I-I, I-II, II-II, II-III, and III-III models, with increasing AOJ dysplasia across models. Then, 1.5 Nm torque simulated cervical motions. The range of motion (ROM), ligament and joint stress, and basion-dental interval (BDI) were analyzed.
Results:
The C0–1 ROM and accompanying rotational ROM increased progressively from model I-I to model III-III, with the ROM of model III-III showing increases between 27.3% and 123.8% indicating ultra-mobility and instability. In contrast, the C1–2 ROM changes were minimal. Meanwhile, the stress distribution pattern was disrupted; in particular, the C1 superior facet stress was concentrated centrally and decreased substantially across the models. The stress on the C0–1 capsule ligament decreased during cervical flexion and increased during bending and rotating loading. In addition, BDI gradually decreased across the models. Further analysis revealed that the dens showed an increase of 110.1% superiorly and 11.4% posteriorly, indicating an increased risk of spinal cord impingement.
Conclusion
Progressive AOJ incongruity critically disrupts supportive tissue loading, enabling incremental atlanto-occipital instability. AOJ dysplasia plays a key biomechanical role in the pathogenesis of type II BI.
10.Effect of aortic smooth muscle BK channels on mediating chronic intermittent hypoxia-induced vascular dysfunction
Ping ZHANG ; Pengtao ZOU ; Xiao HUANG ; Xianghui ZENG ; Songtao LIU ; Yuanyuan LIU ; Liang SHAO
The Korean Journal of Physiology and Pharmacology 2024;28(5):469-478
Chronic intermittent hypoxia (CIH) can lead to vascular dysfunction and increase the risk of cardiovascular diseases, cerebrovascular diseases, and arterial diseases. Nevertheless, mechanisms underlying CIH-induced vascular dysfunction remain unclear. Herein, this study analyzed the role of aortic smooth muscle calciumactivated potassium (BK) channels in CIH-induced vascular dysfunction. CIH models were established in rats and rat aortic smooth muscle cells (RASMCs). Hemodynamic parameters such as mean blood pressure (MBP), diastolic blood pressure (DBP), and systolic blood pressure (SBP) were measured in rats, along with an assessment of vascular tone. NO and ET-1 levels were detected in rat serum, and the levels of ET-1, NO, eNOS, p-eNOS, oxidative stress markers (ROS and MDA), and inflammatory factors (IL-6 and TNF-α) were tested in aortic tissues. The Ca2+ concentration in RASMCs was investigated. The activity of BK channels (BKα and BKβ) was evaluated in aortic tissues and RASMCs. SBP, DBP, and MBP were elevated in CIH-treated rats, along with endothelial dysfunction, cellular edema and partial detachment of endothelial cells. BK channel activity was decreased in CIH-treated rats and RASMCs. BK channel activation increased eNOS, p-eNOS, and NO levels while lowering ET-1, ROS, MDA, IL-6, and TNF-α levels in CIH-treated rats. Ca2+ concentration increased in RASMCs following CIH modeling, which was reversed by BK channel activation. BK channel inhibitor (Iberiotoxin) exacerbated CIH-induced vascular disorders and endothelial dysfunction. BK channel activation promoted vasorelaxation while suppressing vascular endothelial dysfunction, inflammation, and oxidative stress, thereby indirectly improving CIH-induced vascular dysfunction.


Result Analysis
Print
Save
E-mail