1.HPLC-ELSD for determining the content of three platycodins in Radix platycodoi
Jing YE ; Meitian XIAO ; Xuchong TANG ; Yayan HUANG
Journal of Xi'an Jiaotong University(Medical Sciences) 2004;0(05):-
Objective To establish a quantitative method to determine the content of platycodin D,D3 and E in Radix platycodi.Methods High performance liquid chromatagraphy-evaprorative light scattering dector(HPLC-ELSD) method was adopted.Platycodin D,D3 and E were separated by C18(5 ?m,4.6 mm?150 mm) with acetonitrile-water as mobile phase in a gradient program;flow rate was 1.0 mL/min,the temperature of drift tube was set at 113 ℃,and the gas flow(N2) was set at 3.0 L/min.Results The linear ranges of platycodin D,D3 and E were 13.78-275.6 ?g/mL(r=0.999 5),8.40-168.0 ?g/mL(r=0.999 7) and 12.02-240.4 ?g/mL(r=0.999 6),respectively.The average recoveries(n=5) were 98.3%,99.4% and 101.3%,respectively.Conclusion The method is convenient,accurate and reliable,and can be used for the determination of platycodin D,D3 and E in Radix platycodoi.
2.Quantitative proteomics revealed extensive microenvironmental changes after stem cell transplantation in ischemic stroke.
Yao CHEN ; Fahuan SONG ; Mengjiao TU ; Shuang WU ; Xiao HE ; Hao LIU ; Caiyun XU ; Kai ZHANG ; Yuankai ZHU ; Rui ZHOU ; Chentao JIN ; Ping WANG ; Hong ZHANG ; Mei TIAN
Frontiers of Medicine 2022;16(3):429-441
The local microenvironment is essential to stem cell-based therapy for ischemic stroke, and spatiotemporal changes of the microenvironment in the pathological process provide vital clues for understanding the therapeutic mechanisms. However, relevant studies on microenvironmental changes were mainly confined in the acute phase of stroke, and long-term changes remain unclear. This study aimed to investigate the microenvironmental changes in the subacute and chronic phases of ischemic stroke after stem cell transplantation. Herein, induced pluripotent stem cells (iPSCs) and neural stem cells (NSCs) were transplanted into the ischemic brain established by middle cerebral artery occlusion surgery. Positron emission tomography imaging and neurological tests were applied to evaluate the metabolic and neurofunctional alterations of rats transplanted with stem cells. Quantitative proteomics was employed to investigate the protein expression profiles in iPSCs-transplanted brain in the subacute and chronic phases of stroke. Compared with NSCs-transplanted rats, significantly increased glucose metabolism and neurofunctional scores were observed in iPSCs-transplanted rats. Subsequent proteomic data of iPSCs-transplanted rats identified a total of 39 differentially expressed proteins in the subacute and chronic phases, which are involved in various ischemic stroke-related biological processes, including neuronal survival, axonal remodeling, antioxidative stress, and mitochondrial function restoration. Taken together, our study indicated that iPSCs have a positive therapeutic effect in ischemic stroke and emphasized the wide-ranging microenvironmental changes in the subacute and chronic phases.
Animals
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Cell Differentiation
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Disease Models, Animal
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Ischemic Stroke
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Proteomics
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Rats
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Stem Cell Transplantation/methods*
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Stroke/therapy*
3.PET imaging on neurofunctional changes after optogenetic stimulation in a rat model of panic disorder.
Xiao HE ; Chentao JIN ; Mindi MA ; Rui ZHOU ; Shuang WU ; Haoying HUANG ; Yuting LI ; Qiaozhen CHEN ; Mingrong ZHANG ; Hong ZHANG ; Mei TIAN
Frontiers of Medicine 2019;13(5):602-609
Panic disorder (PD) is an acute paroxysmal anxiety disorder with poorly understood pathophysiology. The dorsal periaqueductal gray (dPAG) is involved in the genesis of PD. However, the downstream neurofunctional changes of the dPAG during panic attacks have yet to be evaluated in vivo. In this study, optogenetic stimulation to the dPAG was performed to induce panic-like behaviors, and in vivo positron emission tomography (PET) imaging with F-flurodeoxyglucose (F-FDG) was conducted to evaluate neurofunctional changes before and after the optogenetic stimulation. Compared with the baseline, post-optogenetic stimulation PET imaging demonstrated that the glucose metabolism significantly increased (P < 0.001) in dPAG, the cuneiform nucleus, the cerebellar lobule, the cingulate cortex, the alveus of the hippocampus, the primary visual cortex, the septohypothalamic nucleus, and the retrosplenial granular cortex but significantly decreased (P < 0.001) in the basal ganglia, the frontal cortex, the forceps minor corpus callosum, the primary somatosensory cortex, the primary motor cortex, the secondary visual cortex, and the dorsal lateral geniculate nucleus. Taken together, these data indicated that in vivo PET imaging can successfully detect downstream neurofunctional changes involved in the panic attacks after optogenetic stimulation to the dPAG.
4.Resveratrol promotes the survival and neuronal differentiation of hypoxia-conditioned neuronal progenitor cells in rats with cerebral ischemia.
Yao YAO ; Rui ZHOU ; Rui BAI ; Jing WANG ; Mengjiao TU ; Jingjing SHI ; Xiao HE ; Jinyun ZHOU ; Liu FENG ; Yuanxue GAO ; Fahuan SONG ; Feng LAN ; Xingguo LIU ; Mei TIAN ; Hong ZHANG
Frontiers of Medicine 2021;15(3):472-485
Hypoxia conditioning could increase the survival of transplanted neuronal progenitor cells (NPCs) in rats with cerebral ischemia but could also hinder neuronal differentiation partly by suppressing mitochondrial metabolism. In this work, the mitochondrial metabolism of hypoxia-conditioned NPCs (hcNPCs) was upregulated via the additional administration of resveratrol, an herbal compound, to resolve the limitation of hypoxia conditioning on neuronal differentiation. Resveratrol was first applied during the in vitro neuronal differentiation of hcNPCs and concurrently promoted the differentiation, synaptogenesis, and functional development of neurons derived from hcNPCs and restored the mitochondrial metabolism. Furthermore, this herbal compound was used as an adjuvant during hcNPC transplantation in a photothrombotic stroke rat model. Resveratrol promoted neuronal differentiation and increased the long-term survival of transplanted hcNPCs. 18-fluorine fluorodeoxyglucose positron emission tomography and rotarod test showed that resveratrol and hcNPC transplantation synergistically improved the neurological and metabolic recovery of stroke rats. In conclusion, resveratrol promoted the neuronal differentiation and therapeutic efficiency of hcNPCs in stroke rats via restoring mitochondrial metabolism. This work suggested a novel approach to promote the clinical translation of NPC transplantation therapy.
Animals
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Brain Ischemia/drug therapy*
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Cell Differentiation
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Hypoxia
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Neurons
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Rats
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Resveratrol/pharmacology*