1.Intravascular biocompatibility of poly (3-hydroxybutyrate- co-3-hydroxyhexanoate)
Song WU ; Yinglong LIU ; Yue TANG ; Qiang WANG ; Feng WAN ; Xianghua QU ; Guoqiang CHEN
Chinese Journal of Tissue Engineering Research 2011;15(38):7066-7070
BACKGROUND: The degradable poly (3-hydroxybutyrate-co-3-hydroxyhexanoate) (PHBHHx) has superior mechanical property and biocompatibility.OBJECTIVE: To elucidate the intravascular biocompatibility of PHBHHx in vivo.METHODS: We developed hybrid materials based on decellularized xenogenic vascular scaffolds that were coated with PHBHHx and implanted it into the abdominal aorta of New Zealand rabbits. The decellularized xenogenic pulmonary artery patch without PHBHHx coating served as the control. The implanted patches were determined for the histology, immunofluorescence staining, scanning electron microscopy and calcium contents at 1, 4 and 12 weeks after the surgery.RESULTS AND CONCLUSION: Hybrid patches exhibited smooth lumen surface without thrombus, the intimal hyperplasia was mild and recellularization was complete; immunofluorescence staining showed that the endothelial cells in the neointima were positive for CD31, with continuous single-layer arrangement, interstitial cells were positive for smooth muscle actin; the calcium content in hybrid patches was obviously lower than that in uncoated patches. PHBHHx shows a remarkable intravascular biocompatibility in vivo and is believed as an ideal candidate for lumen coating of cardiovascular tissue engineering.
2.Biological characteristics of Ebola virus:research advances
Yi ZHANG ; Yinglong QU ; Zhendong GUO ; Siyan ZHAO ; Yingying FU ; Hongyan ZHAO ; Zhongyi WANG ; Zongzheng ZHAO ; Linna LIU ; Jun QIAN
Military Medical Sciences 2015;(5):386-389
Ebola virus disease , which can cause ebola hemorrhagic fever , is a potent zoonotic infectious virus disease . In 2014 , Ebola virus spread across West Africa and it has become a new major threat to global public health .This article summarizes the structural features of Ebola virus , transmission characteristics , interactions ,animal models .
3.Advances in biological spectroscopy detection of pathogenic microorganisms
Zhendong GUO ; Siyan ZHAO ; Yi ZHANG ; Yingying FU ; Hongyan ZHAO ; Yinglong QU ; Zhongyi WANG ; Zongzheng ZHAO ; Jun QIAN ; Linna LIU
Military Medical Sciences 2015;(4):311-315
Detection of pathogenic microorganisms has been a hot research field of microbiology.Conventional detection methods,such as isolation and culture, PCR technology, ELISA and genomic sequencing,are all time-consuming and com-plex.Because of the advantages of quick-testing, accuracy, safety and efficiency, spectroscopy has become a new non-inva-sive testing technology and has witnessed rapid development in pathogen detection and disease diagnosis.This article intro-duces three types of common spectroscopy technologies ( laser excitation fluorescence spectroscopy, infrared spectroscopy and Raman spectroscopy) , and also explains how they work in the detection of pathogenic microorganisms.
4.Intravascular biocompatibility of decellularized xenogenic vascular scaffolds/PHBHHx hybrid material for cardiovascular tissue engineering.
Song WU ; Yinglong LIU ; Bin CUI ; Yue TANG ; Qiang WANG ; Xianghua QU ; Guoqiang CHEN
Chinese Journal of Biotechnology 2008;24(4):610-616
Poly (3-hydroxybutyrate-co-3-hydroxyhexanoate, PHBHHx) has superior mechanical and biocompatibility that may enable it to meet cardiovascular tissue engineering applications. We developed hybrid materials based on decellularized xenogenic vascular scaffolds that were coated with PHBHHx to investigate the intravascular biocompatibility. The hybrid patches were implanted in the rabbit abdominal aorta (hybrid patch, n = 12). Only decellularized xenogenic vascular scaffolds were implanted without coating as control (uncoated patch, n = 12). The patches were explanted and examined histologically, and biochemically at 1, 4 and 12 weeks after the surgery. The hybrid patches maintained original shapes, covered by confluent layer of cells and had less calcification than uncoated control. The results indicated that PHBHHx coating reduced calcification, promoted the repopulation of hybrid patch with recipients cells. In conclusion, PHBHHx showed remarkable intravascular biocompatibility and would benefit endothelization which would be a useful candidate for lumen of cardiovascular tissue engineering.
3-Hydroxybutyric Acid
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chemistry
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Animals
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Aorta, Abdominal
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surgery
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Caproates
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chemistry
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Cell Adhesion
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Coated Materials, Biocompatible
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chemistry
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pharmacology
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Goats
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Humans
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Implants, Experimental
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Pulmonary Artery
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cytology
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drug effects
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Rabbits
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Surface Properties
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Tissue Engineering
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Tissue Scaffolds