1.Application advances of fractional flow reserve in endovascular treatment of lower-extremity arterial disease.
Lei ZHANG ; Jian QIU ; Dingxiao LIU ; Pengcheng GUO ; Dexiang XIA ; Chang SHU ; Xin LI
Journal of Central South University(Medical Sciences) 2025;50(7):1255-1262
Fractional flow reserve (FFR), an established modality for functionally assessing coronary artery disease, is increasingly applied to diagnose and manage lower extremity arterial disease. By incorporating functional parameters, FFR enhances revascularization precision by quantifying the hemodynamic impact of stenotic lesions, thereby overcoming limitations of conventional imaging. Key clinical applications in lower extremity disease include functional assessment in moderate intermittent claudication, post-vascular preparation strategy optimization, and predicting revascularization outcomes and complications. Advances in pressure wire and microcatheter systems, alongside non-invasive imaging-derived FFR techniques, are improving its feasibility and applicability. However, widespread adoption is challenged by the complex anatomy of the lower extremity arterial system, frequent severe calcification and diffuse disease, and a current lack of standardized FFR cutoff values. Promoting the standardized use of FFR is crucial for shifting the clinical management paradigm from anatomy-based repair toward functional reconstruction.
Humans
;
Lower Extremity/blood supply*
;
Peripheral Arterial Disease/diagnosis*
;
Fractional Flow Reserve, Myocardial
;
Endovascular Procedures/methods*
;
Intermittent Claudication/physiopathology*
2.COVID-19 and acute limb ischemia: latest hypotheses of pathophysiology and molecular mechanisms.
Chengjun YAO ; Yanzhao DONG ; Haiying ZHOU ; Xiaodi ZOU ; Ahmad ALHASKAWI ; Sohaib Hasan Abdullah EZZI ; Zewei WANG ; Jingtian LAI ; Vishnu Goutham KOTA ; Mohamed Hasan Abdulla Hasan ABDULLA ; Zhenfeng LIU ; Sahar Ahmed ABDALBARY ; Olga ALENIKOVA ; Hui LU
Journal of Zhejiang University. Science. B 2025;26(4):333-352
Coronavirus disease 2019 (COVID-19) is a multi-system disease that can lead to various severe complications. Acute limb ischemia (ALI) has been increasingly recognized as a COVID-19-associated complication that often predicts a poor prognosis. However, the pathophysiology and molecular mechanisms underlying COVID-19-associated ALI remain poorly understood. Hypercoagulability and thrombosis are considered important mechanisms, but we also emphasize the roles of vasospasm, hypoxia, and acidosis in the pathogenesis of the disease. The angiotensin-converting enzyme 2 (ACE2) pathway, inflammation, and platelet activation may be important molecular mechanisms underlying these pathological changes induced by COVID-19. Furthermore, we discuss the hypotheses of risk factors for COVID-19-associated ALI from genetic, age, and gender perspectives based on our analysis of molecular mechanisms. Additionally, we summarize therapeutic approaches such as use of the interleukin-6 (IL-6) blocker tocilizumab, calcium channel blockers, and angiotensin-converting enzyme inhibitors, providing insights for the future treatment of coronavirus-associated limb ischemic diseases.
Humans
;
COVID-19/physiopathology*
;
Ischemia/etiology*
;
SARS-CoV-2
;
Extremities/blood supply*
;
Risk Factors
;
Interleukin-6/antagonists & inhibitors*
;
Acute Disease
;
Angiotensin-Converting Enzyme 2
3.Single-cell transcriptome analysis reveals abnormal angiogenesis and placentation by loss of imprinted glutaminyl-peptide cyclotransferase.
Jing GUO ; Jihong ZHENG ; Ruixia LI ; Jindong YAO ; He ZHANG ; Xu WANG ; Chao ZHANG
Journal of Zhejiang University. Science. B 2025;26(6):589-608
Imprinted genes play a key role in regulating mammalian placental and embryonic development. Here, we generated glutaminyl-peptide cyclotransferase-knockout (Qpct-/-) mice utilizing the clustered regularly interspaced short palindromic repeats (CRISPR)/CRISPR-associated protein 9 (Cas9) platform and identified Qpct as a novel anti-angiogenic factor in regulating mouse placentation. Compared with Qpct+/+ mice, placentae and embryos (Qpct-/+ and Qpct-/-) showed significant overgrowth at embryonic Day 12.5 (E12.5), E15.5, and E18.5. Using single-cell transcriptome analysis of 32 309 cells from Qpct+/+ and Qpct-/- mouse placentae, we identified 13 cell clusters via single-nucleus RNA sequencing (snRNA-seq) (8880 Qpct+/+ and 13 577 Qpct-/- cells) and 20 cell clusters via single-cell RNA sequencing (scRNA-seq) (6567 Qpct+/+ and 3285 Qpct-/- cells). Furthermore, we observed a global up-regulation of pro-angiogenic genes in the Qpct-/- background. Immunohistochemistry assays revealed a notable increase in the number of blood vessels in the decidual and labyrinthine layers of E15.5 Qpct-/+ and Qpct-/- mice. Moreover, the elevation of multiple pairs of ligand-receptor interactions was observed in decidual cells, endothelial cells, and macrophages, promoting angiogenesis and inflammatory response. Our findings indicate that loss of maternal Qpct leads to altered phenotypic characteristics of placentae and embryos and promotes angiogenesis in murine placentae.
Animals
;
Female
;
Pregnancy
;
Mice
;
Placentation/genetics*
;
Single-Cell Analysis
;
Gene Expression Profiling
;
Mice, Knockout
;
Transcriptome
;
Placenta/blood supply*
;
Neovascularization, Pathologic/genetics*
;
Genomic Imprinting
;
Single-Cell Gene Expression Analysis
;
Angiogenesis
4.Pig meniscus single-cell sequencing reveals highly active red zone chondrocyte populations involved in stemness maintenance and vascularization development.
Monika MANKOWSKA ; Monika STEFANSKA ; Anna Maria MLECZKO ; Katarzyna SARAD ; Witold KOT ; Lukasz KRYCH ; Julia Anna SEMBA ; Eric Lars-Helge LINDBERG ; Jakub Dalibor RYBKA
Journal of Zhejiang University. Science. B 2025;26(7):675-693
Meniscus injuries are widespread and the available treatments do not offer enough healing potential. Here, we provide critical support for using pigs as a biological model for meniscal degeneration and the development of cutting-edge therapies in orthopedics. We present a single-cell transcriptome atlas of the meniscus, consisting of cell clusters corresponding to four major cell types: chondrocytes, endothelial cells, smooth muscle cells, and immune cells. Five distinct chondrocyte subclusters (CH0‒CH4) were annotated, of which only one was widespread in both the red and white zones, indicating a major difference in the cellular makeup of the zones. Subclusters distinct to the white zone appear responsible for cartilage-specific matrix deposition and protection against adverse microenvironmental factors, while those in the red zone exhibit characteristics of mesenchymal stem cells and are more likely to proliferate and migrate. Additionally, they induce remodeling actions in other chondrocyte subclusters and promote the proliferation and maturation of endothelial cells, inducing healing and vascularization processes. Considering that they have substantial remodeling capabilities, these subclusters should be of great interest for tissue engineering studies. We also show that the cellular makeup of the pig meniscus is comparable to that of humans, which supports the use of pigs as a model in orthopedic therapy development.
Animals
;
Swine
;
Chondrocytes/physiology*
;
Single-Cell Analysis
;
Meniscus/blood supply*
;
Endothelial Cells/cytology*
;
Transcriptome
;
Mesenchymal Stem Cells/cytology*
;
Neovascularization, Physiologic
;
Cell Proliferation
5.The clinical outcomes of using superficial circumflex iliac artery perforator flap and radial forearm free flap for reconstructing oral and maxillofacial soft tissue defects.
Changquan WANG ; Tianbin HUANG ; Shanbin GUAN ; Guangru HUANG ; Xiaoyuan CHENG ; Liushan LU
Journal of Clinical Otorhinolaryngology Head and Neck Surgery 2025;39(6):534-541
Objective:To compare the clinical outcomes of reconstruction of oral and maxillofacial soft tissue defects using superficial circumflex iliac artery perforator flap (SCIA PF) and radial forearm free flap (RFF). Methods:A retrospective analysis was conducted on 90 patients with head, neck, and maxillofacial tumors who were treated in our department from June 2019 to January 2024. Patients were divided into two groups based on the surgical method used: the SCIA group(n=45), who underwent reconstruction with SCIA PF, and the RFF group(n=45), who received RFF reconstruction. Six months postoperatively, clinical efficacy was evaluated by comparing flap swelling, flap survival rate, and patient satisfaction. Oral function was assessed using standardized scoring systems before surgery, at 1 week, 3 months, and 6 months post-surgery. Hemorheological parameters, including high-shear viscosity(shear rate 200/s), low-shear viscosity(shear rate 30/s), plasma viscosity, erythrocyte aggregation index, and erythrocyte sedimentation rate(ESR), were also measured at each time point. Results:Compared with the RFF group, the SCIA group showed significantly larger flap size, longer flap harvesting and reconstruction times, earlier nasogastric tube removal and oral intake initiation, higher scores in all aspects of oral function, reduced flap edema and faster resolution, higher flap survival rates, and greater overall satisfaction (all P<0.05). During the follow-up period (preoperative, 1 week, 3 months, and 6 months post-surgery), hemorheological indices including high-and low-shear viscosity, plasma viscosity, erythrocyte aggregation index, and ESR progressively decreased in the SCIA group (P<0.05). In the RFF group, these parameters improved significantly by 6 months postoperatively compared with preoperatively and 1-week postoperatively, with a notable decrease in erythrocyte aggregation index at 6 months (P<0.05). Conclusion:Compared with RFF, SCIA PF provides larger flaps, better functional recovery, higher patient satisfaction, improved flap survival, fewer complications, and more favorable hemorheological profiles following reconstructive surgery for oral and maxillofacial defects.
Humans
;
Perforator Flap/blood supply*
;
Plastic Surgery Procedures/methods*
;
Retrospective Studies
;
Free Tissue Flaps
;
Iliac Artery/transplantation*
;
Forearm/surgery*
;
Male
;
Female
;
Soft Tissue Injuries/surgery*
;
Head and Neck Neoplasms/surgery*
;
Middle Aged
;
Treatment Outcome
;
Adult
6.The influence of microvessel density and microlymphatic vessel density on prognosis in hypopharyngeal carcinoma and the construction.
Cong XU ; Lanzhen CUI ; Xiaoxiao LIU ; Jing BAI ; Lijun ZHANG ; Yu PENG ; Xiaoming LI
Journal of Clinical Otorhinolaryngology Head and Neck Surgery 2025;39(12):1143-1149
Objective:This study aims to investigate the influence of microvessel density(MVD) and microlymphatic vessel density(MLVD) on the prognosis of patients with hypopharyngeal squamous cell carcinoma(HPSCC) and to develop a nomogram prediction model for prognosis based on pathological characteristics. Methods:A retrospective analysis was conducted on clinicopathological and follow-up data from HPSCC patients who underwent surgical treatment at our institution between June 2010 and June 2020. Immunohistochemical staining was performed on tumor tissues and adjacent normal margin tissues to evaluate MVD and MLVD. The associations among MVD, MLVD, and clinicopathological features were analyzed. Univariate and multivariate Cox regression analyses were conducted to identify independent risk factors affecting overall survival(OS). Based on these findings, a nomogram model was constructed and its predictive accuracy was assessed using C-index, receiver operating characteristic(ROC) curve, and calibration curve. Results:Both MVD and MLVD were significantly higher in HPSCC tumor tissues compared to normal tissues. Patients in the high MVD and high MLVD groups exhibited significantly lower OS rates than those in the low MVD and low MLVD groups. Multivariate Cox regression analysis revealed that N stage, recurrence, nerve invasion, lymph node capsule invasion, MVD, and MLVD were independent prognostic factors of OS. Based on these factors, a nomogram prognosis model was successfully constructed. The nomograms demonstrated superior performance in terms of C-index, area under the ROC curve, and calibration, outperforming the AJCC TNM staging system. Conclusion:Elevated MVD and MLVD levels are associated with poorer prognosis in HPSCC patients. The nomogram model based on pathological features provides valuable insights for clinical assessment and decision-making.
Humans
;
Hypopharyngeal Neoplasms/blood supply*
;
Prognosis
;
Retrospective Studies
;
Microvascular Density
;
Nomograms
;
Lymphatic Vessels/pathology*
;
Male
;
Female
;
Middle Aged
;
Carcinoma, Squamous Cell/blood supply*
;
Microvessels/pathology*
;
Lymphatic Metastasis
;
Survival Rate
7.3D visualization-based classification of left intrahepatic vessels and its application in precision hepatectomy.
Jun ZHENG ; Zhihua WANG ; Xiaojun HU ; Xiang HE ; Yingfang FAN
Journal of Southern Medical University 2025;45(5):1047-1055
OBJECTIVES:
To establish a three-dimensional (3D) visualization-based classification of the left hepatic portal vein (LHPV) and left hepatic vein (LHV) systems using 3D reconstruction technology to facilitate precise segmental/subsegmental resection of left liver lesions.
METHODS:
Thin-slice contrast-enhanced CT datasets from 244 patients were reconstructed using MI-3DV Works software. The spatial anatomy (origins, branching patterns, and spatial relationships) of the LHPV and LHV branches was analyzed to determine their 3D classifications and segmental liver divisions for guiding surgical planning for anatomical left liver resections.
RESULTS:
The 3D models of the third- and fourth-order branches of the LHPV and LHV were successfully reconstructed for all the 244 patients. Two types of the LHPV system were identified, where the LHPV either had independent origins [242 cases (99.1%)] or had right anterior portal branches arising from the LHPV trunk [2 cases (0.9%)]. 3D classifications identified two types of the Segment II of the LHPV (based on branch number), 3 types of the Segment III (by spatial distribution of the branches), compact vs dispersed types of the left lateral lobe (determined by Segment II/III branches proximity), 3 types of the Segment IV (by branch number and origin), and 3 types the fourth hilar vessels (transverse branches of the left portal vein) for their supplied segments. The LHV system had two drainage types into the inferior vena cava, and the umbilical fissure veins were classified into 3 types by drainage patterns and distance to the venous roots. These classifications combined with liver segmentations allowed individualized surgical planning for segment-specific resections.
CONCLUSIONS
The 3D classification of the LHPV and LHV provides valuable clinical guidance for precise anatomical resections of left liver lesions using liver segments or subsegments as anatomical units to enhance surgical accuracy and improve the outcomes of hepatobiliary surgery.
Humans
;
Hepatectomy/methods*
;
Imaging, Three-Dimensional
;
Hepatic Veins/anatomy & histology*
;
Portal Vein/anatomy & histology*
;
Liver/surgery*
;
Liver Neoplasms/blood supply*
;
Tomography, X-Ray Computed
;
Female
8.Apelin promotes proliferation, migration, and angiogenesis in bladder cancer by activating the FGF2/FGFR1 pathway.
Wei SU ; Houhua LAI ; Xin TANG ; Qun ZHOU ; Yachun TANG ; Hao FU ; Xuancai CHEN
Journal of Southern Medical University 2025;45(6):1289-1296
OBJECTIVES:
To investigate the role of apelin in regulating proliferation, migration and angiogenesis of bladder cancer cells and the possible regulatory mechanism.
METHODS:
GEO database was used to screen the differentially expressed genes in bladder cancer tissues and cells. Bladder cancer and paired adjacent tissues were collected from 60 patients for analysis of apelin expressions in relation to clinicopathological parameters. In cultured bladder cancer J82 cells and human umbilical vein endothelial cells (HUVECs), the effects of transfection with an apelin-overexpressing plasmid or specific siRNAs targeting apelin, fibroblast growth factor 2 (FGF2) and fibroblast growth factor receptor 1 (FGFR1) on proliferation and migration of J82 cells and tube formation in HUVECs were examined using plate cloning assay, Transwell assay, and angiogenesis assay; the changes in FGF2 expression and FGFR1 phosphorylation were detected using Western blotting.
RESULTS:
The expression level of apelin was significantly higher in bladder cancer tissues than adjacent tissues, and bladder cancer cell lines (T24 and J82) also expressed higher mRNA and protein levels of apelin than SV-HUC-1 cells. Apelin expression level in bladder cancer tissues was correlated with tumor invasion, distant metastasis and advanced TNM stages. Apelin knockdown significantly suppressed proliferation and migration of J82 cells and decreased the total angiogenic length of HUVECs. In contrast, apelin overexpression significantly promoted proliferation and migration and enhanced FGFR1 phosphorylation in J82 cells, and increased the total angiogenesis length in HUVECs, but this effects were effectively mitigated by transfection of the cells with FGF2 siRNA or FGFR1 siRNA.
CONCLUSIONS
High expression of apelin promotes J82 cell proliferation and migration and HUVEC angiogenesis by promoting activation of the FGF2/FGFR1 pathway.
Humans
;
Urinary Bladder Neoplasms/blood supply*
;
Receptor, Fibroblast Growth Factor, Type 1/metabolism*
;
Cell Proliferation
;
Cell Movement
;
Fibroblast Growth Factor 2/metabolism*
;
Neovascularization, Pathologic
;
Human Umbilical Vein Endothelial Cells
;
Cell Line, Tumor
;
Signal Transduction
;
Apelin
;
Intercellular Signaling Peptides and Proteins/genetics*
;
Female
;
Male
;
Angiogenesis
9.S1PR5 activation or overexpression enhances barrier function of mouse brain microvascular endothelial cells against OGD/R injury by modulating oxidative stress.
Jingxian WANG ; Zijing REN ; Peiyang ZHOU
Journal of Southern Medical University 2025;45(7):1451-1459
OBJECTIVES:
To investigate the role of sphingosine-1-phosphate receptor 5 (S1PR5) in modulating barrier function of mouse brain microvascular endothelial cells with oxygen-glucose deprivation and reoxygenation (OGD/R).
METHODS:
Mouse brain microvascular endothelial cells (bEnd.3) were exposed to OGD/R to induce barrier dysfunction following treatment with S1PR5-specific agonist A971432 or lentivirus-mediated transfection with a S1PR5-specific siRNA, a S1PR5-overexpressing plasmid, or their respective negative control sequences. The changes in viability and endothelial barrier permeability of the treated cells were evaluated with CCK-8 assay and FITC-dextran permeability assay; the levels of intracellular reactive oxygen species (ROS) and localization and expression levels of the proteins related with barrier function and oxidative stress were detected using immunofluorescence staining, DCFH-DA probe and Western blotting.
RESULTS:
S1PR5 activation obviously enhanced viability of bEnd.3 cells exposed to OGD/R (P<0.0001). Both activation and overexpression of S1PR5 reduced FITC-dextran leakage, while S1PR5 knockdown significantly increased FITC-dextran leakage in the exposed bEnd.3 cells. Activation and overexpression of S1PR5 both increased the cellular expressions of the barrier proteins ZO-1 and occludin, while S1PR5 knockdown produced the opposite effect. In cells exposed to OGD/R, ROS production was significantly reduced by S1PR5 activation and overexpression but increased following S1PR5 knockdown. Overexpression of S1PR5 obviously increased the expressions of the antioxidant proteins Nrf2, HO-1 and SOD2 in the exposed cells.
CONCLUSIONS
S1PR5 activation and overexpression significantly improve cell viability and reduce permeability of a mouse brain microvascular endothelial cell model of OGD/R, the mechanism of which may involve the reduction in ROS production and upregulation of the antioxidant proteins.
Animals
;
Mice
;
Oxidative Stress
;
Endothelial Cells/cytology*
;
Brain/blood supply*
;
Reactive Oxygen Species/metabolism*
;
Receptors, Lysosphingolipid/metabolism*
;
Sphingosine-1-Phosphate Receptors
;
Blood-Brain Barrier/metabolism*
;
Glucose
;
Cell Line
;
Oxygen/metabolism*
;
NF-E2-Related Factor 2/metabolism*
10.Naoluo Xintong Decoction promotes proliferation of rat brain microvascular endothelial cells after oxygen-glucose deprivation by activating the HIF-1α/VEGF signaling pathway.
Yu ZHANG ; Yinqi HU ; Peipei LI ; Xiao SHI ; Wei XU ; Jianpeng HU
Journal of Southern Medical University 2025;45(9):1980-1988
OBJECTIVES:
To investigate the effects of Naoluo Xintong Decoction (NLXTD) on proliferation of rat brain microvascular endothelial cells (BMECs) after oxygen-glucose deprivation/reoxygenation (OGD/R) injury and role of the HIF-1α/VEGF pathway in mediating its effect.
METHODS:
Using a BMEC model of OGD/R, we tested the effects of 10% NLXTD-medicated rat serum, alone or in combination with 2ME2 or 10% NAKL, on cell proliferation, migration, tube-forming ability and permeability using CCK-8 assay, Transwell chamber assay, tube formation assay and permeability assay. Cellular expressions of VEGF and Notch were detected using ELISA and laser confocal immunofluorescence analysis, and the expressions of HIF-1α, VEGFR2, Notch1, ERK and P-ERK1/2 proteins were detected with Western blotting.
RESULTS:
OGD/R injury significantly decreased viability of BMECs. NLXTD treatment of the cells with OGD/R could significantly promoted cell proliferation, migration and tube formation ability, but these effects were strongly attenuated by application of 2ME2. NLXTD treatment also significantly increased the percentages of VEGF- and Notch-positive cells in the cell models and obviously enhanced the expression levels of HIF-1α, VEGFR2, Notch1 and P-ERK1/2.
CONCLUSIONS
NLXTD promotes proliferation, migration, and tube formation of rat BMECs after OGD/R injury possibly by activating the HIF-1α/VEGF signaling pathway.
Animals
;
Hypoxia-Inducible Factor 1, alpha Subunit/metabolism*
;
Drugs, Chinese Herbal/pharmacology*
;
Vascular Endothelial Growth Factor A/metabolism*
;
Endothelial Cells/metabolism*
;
Rats
;
Cell Proliferation/drug effects*
;
Signal Transduction/drug effects*
;
Glucose
;
Brain/blood supply*
;
Cells, Cultured
;
Rats, Sprague-Dawley
;
Vascular Endothelial Growth Factor Receptor-2/metabolism*
;
Oxygen/metabolism*
;
Cell Hypoxia

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