The Experts below are selected from a list of 249 Experts worldwide ranked by ideXlab platform
Yonggang Yan - One of the best experts on this subject based on the ideXlab platform.
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developing a biodegradable tricalcium silicate Glucono delta lactone calcium sulfate dihydrate composite cement with high preliminary mechanical property for bone filling
Materials Science and Engineering: C, 2020Co-Authors: Zhengwen Ding, Hong Chen, Qiyi Zhang, Yonggang YanAbstract:Abstract Bone cements with the feature of easily shaping could ideally match the defect site and prevent the ingrowth of fibrous tissue. In this manuscript, a biodegradable tricalcium silicate (C3S)/Glucono-Delta-Lactone (GDL)/calcium sulfate dihydrate (CSD) organic-inorganic composite cement was fabricated with shorter setting time (less than 15 min) and high preliminary mechanical property (5.27 MPa in the first hour). Many methods were applied to study the physicochemical and biological properties of the cement in vitro. The weight loss in PBS can reach 58% after 12 weeks soaking indicating the better biodegradability. The excellent bioactivity in vitro was emerging after the cement was soaked in the simulated body fluid. The cell experiments showed that suitable concentration of the extract liquid of cement was conducive to the proliferation, differentiation and extracellular matrix calcification of the mouse bone marrow stromal cells. Briefly, the C3S/GDL/CSD composite cement would have the bright capacity for bone filling.
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Developing a biodegradable tricalcium silicate/Glucono-Delta-Lactone/calcium sulfate dihydrate composite cement with high preliminary mechanical property for bone filling
Materials Science and Engineering: C, 1Co-Authors: Zhengwen Ding, Hong Chen, Qiyi Zhang, Yonggang YanAbstract:Abstract Bone cements with the feature of easily shaping could ideally match the defect site and prevent the ingrowth of fibrous tissue. In this manuscript, a biodegradable tricalcium silicate (C3S)/Glucono-Delta-Lactone (GDL)/calcium sulfate dihydrate (CSD) organic-inorganic composite cement was fabricated with shorter setting time (less than 15 min) and high preliminary mechanical property (5.27 MPa in the first hour). Many methods were applied to study the physicochemical and biological properties of the cement in vitro. The weight loss in PBS can reach 58% after 12 weeks soaking indicating the better biodegradability. The excellent bioactivity in vitro was emerging after the cement was soaked in the simulated body fluid. The cell experiments showed that suitable concentration of the extract liquid of cement was conducive to the proliferation, differentiation and extracellular matrix calcification of the mouse bone marrow stromal cells. Briefly, the C3S/GDL/CSD composite cement would have the bright capacity for bone filling.
Zhengwen Ding - One of the best experts on this subject based on the ideXlab platform.
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developing a biodegradable tricalcium silicate Glucono delta lactone calcium sulfate dihydrate composite cement with high preliminary mechanical property for bone filling
Materials Science and Engineering: C, 2020Co-Authors: Zhengwen Ding, Hong Chen, Qiyi Zhang, Yonggang YanAbstract:Abstract Bone cements with the feature of easily shaping could ideally match the defect site and prevent the ingrowth of fibrous tissue. In this manuscript, a biodegradable tricalcium silicate (C3S)/Glucono-Delta-Lactone (GDL)/calcium sulfate dihydrate (CSD) organic-inorganic composite cement was fabricated with shorter setting time (less than 15 min) and high preliminary mechanical property (5.27 MPa in the first hour). Many methods were applied to study the physicochemical and biological properties of the cement in vitro. The weight loss in PBS can reach 58% after 12 weeks soaking indicating the better biodegradability. The excellent bioactivity in vitro was emerging after the cement was soaked in the simulated body fluid. The cell experiments showed that suitable concentration of the extract liquid of cement was conducive to the proliferation, differentiation and extracellular matrix calcification of the mouse bone marrow stromal cells. Briefly, the C3S/GDL/CSD composite cement would have the bright capacity for bone filling.
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Developing a biodegradable tricalcium silicate/Glucono-Delta-Lactone/calcium sulfate dihydrate composite cement with high preliminary mechanical property for bone filling
Materials Science and Engineering: C, 1Co-Authors: Zhengwen Ding, Hong Chen, Qiyi Zhang, Yonggang YanAbstract:Abstract Bone cements with the feature of easily shaping could ideally match the defect site and prevent the ingrowth of fibrous tissue. In this manuscript, a biodegradable tricalcium silicate (C3S)/Glucono-Delta-Lactone (GDL)/calcium sulfate dihydrate (CSD) organic-inorganic composite cement was fabricated with shorter setting time (less than 15 min) and high preliminary mechanical property (5.27 MPa in the first hour). Many methods were applied to study the physicochemical and biological properties of the cement in vitro. The weight loss in PBS can reach 58% after 12 weeks soaking indicating the better biodegradability. The excellent bioactivity in vitro was emerging after the cement was soaked in the simulated body fluid. The cell experiments showed that suitable concentration of the extract liquid of cement was conducive to the proliferation, differentiation and extracellular matrix calcification of the mouse bone marrow stromal cells. Briefly, the C3S/GDL/CSD composite cement would have the bright capacity for bone filling.
Hong Chen - One of the best experts on this subject based on the ideXlab platform.
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developing a biodegradable tricalcium silicate Glucono delta lactone calcium sulfate dihydrate composite cement with high preliminary mechanical property for bone filling
Materials Science and Engineering: C, 2020Co-Authors: Zhengwen Ding, Hong Chen, Qiyi Zhang, Yonggang YanAbstract:Abstract Bone cements with the feature of easily shaping could ideally match the defect site and prevent the ingrowth of fibrous tissue. In this manuscript, a biodegradable tricalcium silicate (C3S)/Glucono-Delta-Lactone (GDL)/calcium sulfate dihydrate (CSD) organic-inorganic composite cement was fabricated with shorter setting time (less than 15 min) and high preliminary mechanical property (5.27 MPa in the first hour). Many methods were applied to study the physicochemical and biological properties of the cement in vitro. The weight loss in PBS can reach 58% after 12 weeks soaking indicating the better biodegradability. The excellent bioactivity in vitro was emerging after the cement was soaked in the simulated body fluid. The cell experiments showed that suitable concentration of the extract liquid of cement was conducive to the proliferation, differentiation and extracellular matrix calcification of the mouse bone marrow stromal cells. Briefly, the C3S/GDL/CSD composite cement would have the bright capacity for bone filling.
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Developing a biodegradable tricalcium silicate/Glucono-Delta-Lactone/calcium sulfate dihydrate composite cement with high preliminary mechanical property for bone filling
Materials Science and Engineering: C, 1Co-Authors: Zhengwen Ding, Hong Chen, Qiyi Zhang, Yonggang YanAbstract:Abstract Bone cements with the feature of easily shaping could ideally match the defect site and prevent the ingrowth of fibrous tissue. In this manuscript, a biodegradable tricalcium silicate (C3S)/Glucono-Delta-Lactone (GDL)/calcium sulfate dihydrate (CSD) organic-inorganic composite cement was fabricated with shorter setting time (less than 15 min) and high preliminary mechanical property (5.27 MPa in the first hour). Many methods were applied to study the physicochemical and biological properties of the cement in vitro. The weight loss in PBS can reach 58% after 12 weeks soaking indicating the better biodegradability. The excellent bioactivity in vitro was emerging after the cement was soaked in the simulated body fluid. The cell experiments showed that suitable concentration of the extract liquid of cement was conducive to the proliferation, differentiation and extracellular matrix calcification of the mouse bone marrow stromal cells. Briefly, the C3S/GDL/CSD composite cement would have the bright capacity for bone filling.
Qiyi Zhang - One of the best experts on this subject based on the ideXlab platform.
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developing a biodegradable tricalcium silicate Glucono delta lactone calcium sulfate dihydrate composite cement with high preliminary mechanical property for bone filling
Materials Science and Engineering: C, 2020Co-Authors: Zhengwen Ding, Hong Chen, Qiyi Zhang, Yonggang YanAbstract:Abstract Bone cements with the feature of easily shaping could ideally match the defect site and prevent the ingrowth of fibrous tissue. In this manuscript, a biodegradable tricalcium silicate (C3S)/Glucono-Delta-Lactone (GDL)/calcium sulfate dihydrate (CSD) organic-inorganic composite cement was fabricated with shorter setting time (less than 15 min) and high preliminary mechanical property (5.27 MPa in the first hour). Many methods were applied to study the physicochemical and biological properties of the cement in vitro. The weight loss in PBS can reach 58% after 12 weeks soaking indicating the better biodegradability. The excellent bioactivity in vitro was emerging after the cement was soaked in the simulated body fluid. The cell experiments showed that suitable concentration of the extract liquid of cement was conducive to the proliferation, differentiation and extracellular matrix calcification of the mouse bone marrow stromal cells. Briefly, the C3S/GDL/CSD composite cement would have the bright capacity for bone filling.
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Developing a biodegradable tricalcium silicate/Glucono-Delta-Lactone/calcium sulfate dihydrate composite cement with high preliminary mechanical property for bone filling
Materials Science and Engineering: C, 1Co-Authors: Zhengwen Ding, Hong Chen, Qiyi Zhang, Yonggang YanAbstract:Abstract Bone cements with the feature of easily shaping could ideally match the defect site and prevent the ingrowth of fibrous tissue. In this manuscript, a biodegradable tricalcium silicate (C3S)/Glucono-Delta-Lactone (GDL)/calcium sulfate dihydrate (CSD) organic-inorganic composite cement was fabricated with shorter setting time (less than 15 min) and high preliminary mechanical property (5.27 MPa in the first hour). Many methods were applied to study the physicochemical and biological properties of the cement in vitro. The weight loss in PBS can reach 58% after 12 weeks soaking indicating the better biodegradability. The excellent bioactivity in vitro was emerging after the cement was soaked in the simulated body fluid. The cell experiments showed that suitable concentration of the extract liquid of cement was conducive to the proliferation, differentiation and extracellular matrix calcification of the mouse bone marrow stromal cells. Briefly, the C3S/GDL/CSD composite cement would have the bright capacity for bone filling.
J.m. De Man - One of the best experts on this subject based on the ideXlab platform.
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Yield and quality of tofu as affected by soybean and soymilk characteristics: Glucono-Delta-Lactone coagulant
Journal of Food Science, 1991Co-Authors: C. F. Shen, L. De Man, R.i. Buzzell, J.m. De ManAbstract:Nine light hilum soybean [Glycine max (L.) Merr] cultivars were used to study characteristics that affect yield and quality of tofu (soybean curd) coagulated with Glucono-Delta-Lactone (GDL). Pressed and packed (nonpressed) curds were examined. Yield of tofu was not affected by size of beans. Protein and total solids in soymilk increased when protein and moisture increased in soybeans. Yield of pressed GDL tofu increased with protein content of soybeans (or soymilk) plus decreased calcium content. Fracturability of pressed GDL tofu increased with levels of phosphorus. Hardness of packed tofu increased with protein content in soymilk. Yield of pressed GDL tofu was 20% higher than CaSO4 tofu.