A multi-enzyme-mimicking bioceramic material for enhanced cell functions
用于增强细胞功能的多酶模拟生物陶瓷材料
基本信息
- 批准号:2223702
- 负责人:
- 金额:$ 37.67万
- 依托单位:
- 依托单位国家:美国
- 项目类别:Standard Grant
- 财政年份:2022
- 资助国家:美国
- 起止时间:2022-07-01 至 2025-06-30
- 项目状态:未结题
- 来源:
- 关键词:
项目摘要
Part 1: Non-technical Summary When the body processes food and reacts to environmental and other pressures, cells in the body produce free radicals. If the body cannot process and remove free radicals efficiently, oxidative stress can form and become harmful to cells and body function, which has been linked to osteoporosis, osteoarthritis, stroke, cancer, and other inflammatory diseases. To maintain and boost overall health, neutralizing free radicals in the body is crucial. Antioxidants are thought to have the function to prevent or slow damage to cells by neutralizing free radicals. Green vegetables, fruits, herbs contain many antioxidants, for examples, vitamins, polyphenols, and also various biological enzymes. However, these natural antioxidants produced from vegetables, fruits or plants have many limitations, such as complicated preparation procedures, unstable reactivity, and environmental sensitivity. Therefore, new artificial antioxidants or enzymes are being studied, for example, synthetic manganese dioxide particles. Manganese is a trace element in the body, and also an essential element for bone health. The objective of this project is to study whether or not manganese dioxide particles have similar cell-protective functions to those natural enzymes. In this project, manganese dioxide particles are mixed with ceramic particles to form a sponge-like block using a mold, and bone cells are used to test the cell-protective function of the sponge-like blocks. The project is also to test if the cell-protective function of the manganese dioxide particles can be kept when their structures change from solid into hollow. The instructional objective of this project is to broaden participation in science, technology, engineering and mathematics (STEM) by recruiting middle-high school students and undergraduate students, including those from underrepresented groups, to participate in the research tasks of this effort, and thereby enhance the STEM pipeline. Part 2: Technical Summary Inorganic nanoparticles doping into bioceramics for enhanced biomedical function have been widely reported. However, doping manganese dioxide nanoparticles, a mimetic nanozyme, into a calcium phosphate (CaP) ceramic to develop a new biomaterial has not been studied yet. Whether or not the doping of manganese dioxide into CaP bioceramics can still retain the unique enzyme-mimicking function of manganese dioxide while simultaneously enhancing the properties of the CaP biomaterial remains unknown. Therefore, the primary objective of this project is to investigate whether the doping of manganese dioxide nanoparticles can endow the new cell protective and proliferative functions of a traditional CaP biomaterial while retaining the multi-enzyme-mimicking activities of manganese dioxide nanoparticles. To this end, manganese dioxide nanoparticles with shell/core hollow structures are prepared and doped into a CaP porous scaffold. The in vitro enzyme-mimetic catalytic activities of the composite porous scaffolds and related mechanisms are investigated. The cell protection function of the new biomaterial is characterized by culturing human bone marrow-derived mesenchymal stem cells on the porous manganese dioxide-doped CaP scaffold. This project fills the gap of the knowledge of whether the doping of manganese dioxide in a ceramic biomaterial scaffold can endow new enzyme-mimicking activities and cell protection/proliferation function for the traditional CaP biomaterial. This research provides a new platform for the PI to attract and mentor diverse high school students from Florida Atlantic University High School and undergraduate students from Florida Atlantic University, a Hispanic Serving Institution, in project-based summer activities for the next-generation of biomaterial scientists. Educational and outreach plans including teaching courses, conferences, publications, are designed to broaden public awareness of the fundamental knowledge about the cell protective function of nanoparticles-doped ceramic biomaterials.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
Part 1: Non-technical Summary When the body processes food and reacts to environmental and other pressures, cells in the body produce free radicals. If the body cannot process and remove free radicals efficiently, oxidative stress can form and become harmful to cells and body function, which has been linked to osteoporosis, osteoarthritis, stroke, cancer, and other inflammatory diseases. To maintain and boost overall health, neutralizing free radicals in the body is crucial. Antioxidants are thought to have the function to prevent or slow damage to cells by neutralizing free radicals. Green vegetables, fruits, herbs contain many antioxidants, for examples, vitamins, polyphenols, and also various biological enzymes. However, these natural antioxidants produced from vegetables, fruits or plants have many limitations, such as complicated preparation procedures, unstable reactivity, and environmental sensitivity. Therefore, new artificial antioxidants or enzymes are being studied, for example, synthetic manganese dioxide particles. Manganese is a trace element in the body, and also an essential element for bone health. The objective of this project is to study whether or not manganese dioxide particles have similar cell-protective functions to those natural enzymes. In this project, manganese dioxide particles are mixed with ceramic particles to form a sponge-like block using a mold, and bone cells are used to test the cell-protective function of the sponge-like blocks. The project is also to test if the cell-protective function of the manganese dioxide particles can be kept when their structures change from solid into hollow. The instructional objective of this project is to broaden participation in science, technology, engineering and mathematics (STEM) by recruiting middle-high school students and undergraduate students, including those from underrepresented groups, to participate in the research tasks of this effort, and thereby enhance the STEM pipeline. Part 2: Technical Summary Inorganic nanoparticles doping into bioceramics for enhanced biomedical function have been widely reported. However, doping manganese dioxide nanoparticles, a mimetic nanozyme, into a calcium phosphate (CaP) ceramic to develop a new biomaterial has not been studied yet. Whether or not the doping of manganese dioxide into CaP bioceramics can still retain the unique enzyme-mimicking function of manganese dioxide while simultaneously enhancing the properties of the CaP biomaterial remains unknown. Therefore, the primary objective of this project is to investigate whether the doping of manganese dioxide nanoparticles can endow the new cell protective and proliferative functions of a traditional CaP biomaterial while retaining the multi-enzyme-mimicking activities of manganese dioxide nanoparticles. To this end, manganese dioxide nanoparticles with shell/core hollow structures are prepared and doped into a CaP porous scaffold. The in vitro enzyme-mimetic catalytic activities of the composite porous scaffolds and related mechanisms are investigated. The cell protection function of the new biomaterial is characterized by culturing human bone marrow-derived mesenchymal stem cells on the porous manganese dioxide-doped CaP scaffold. This project fills the gap of the knowledge of whether the doping of manganese dioxide in a ceramic biomaterial scaffold can endow new enzyme-mimicking activities and cell protection/proliferation function for the traditional CaP biomaterial. This research provides a new platform for the PI to attract and mentor diverse high school students from Florida Atlantic University High School and undergraduate students from Florida Atlantic University, a Hispanic Serving Institution, in project-based summer activities for the next-generation of biomaterial scientists. Educational and outreach plans including teaching courses, conferences, publications, are designed to broaden public awareness of the fundamental knowledge about the cell protective function of nanoparticles-doped ceramic biomaterials.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
项目成果
期刊论文数量(0)
专著数量(0)
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会议论文数量(0)
专利数量(0)
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Yunqing Kang其他文献
Synthesis and characterization of multiphase bioactive glass-ceramics in the CaO–MgO–SiO_2 system with B_2O_3 additive
B_2O_3添加剂CaO-MgO-SiO_2体系多相生物活性微晶玻璃的合成与表征
- DOI:
- 发表时间:
2008 - 期刊:
- 影响因子:0
- 作者:
Xianchun Chen;Yan Wei;Zhongbing Huang;Yunqing Kang;G. Yin - 通讯作者:
G. Yin
Fabrication of hydrophilic paclitaxel-loaded PLA-PEG-PLA microparticles via SEDS process
通过 SEDS 工艺制备亲水性紫杉醇负载 PLA-PEG-PLA 微粒
- DOI:
10.1007/s11706-009-0017-0 - 发表时间:
2009 - 期刊:
- 影响因子:0
- 作者:
Ping Ouyang;Yunqing Kang;G. Yin;Zhongbing Huang;Yadong Yao;Xiaoming Liao - 通讯作者:
Xiaoming Liao
Sunlight-driven and gram-scale vanillin production emvia/em Mn-defected γ-MnOsub2/sub catalyst in aqueous environment
在水环境中通过太阳光驱动且以克级规模生产香草醛,采用锰缺陷γ-MnO₂催化剂
- DOI:
10.1039/d3sc05654f - 发表时间:
2024-04-03 - 期刊:
- 影响因子:7.400
- 作者:
Qingping Ke;Yurong Zhang;Chao Wan;Jun Tang;Shenglai Li;Xu Guo;Minsu Han;Takashi Hamada;Sameh M. Osman;Yunqing Kang;Yusuke Yamauchi - 通讯作者:
Yusuke Yamauchi
Particle size optimization of metal–organic frameworks for superior capacitive deionization in oxygenated saline water
金属有机骨架的粒度优化用于含氧盐水中的优异电容去离子
- DOI:
10.1039/d2cc06460j - 发表时间:
2023-01-01 - 期刊:
- 影响因子:4.200
- 作者:
Zhiyuan Xing;Xiaoxu Xuan;Haiyan Hu;Mohua Li;Huimin Gao;Azhar Alowasheeir;Dong Jiang;Liyang Zhu;Zhengtong Li;Yunqing Kang;Jing Zhang;Xibin Yi;Yusuke Yamauchi;Xingtao Xu - 通讯作者:
Xingtao Xu
Swelling Ratio and Mechanical Properties of SBR/organoclay Nanocomposites according to the Mixing Temperature; using 3-Aminopropyltriethoxysilane as a Modifier and the Latex Method for Manufacturing
SBR/有机粘土纳米复合材料的溶胀比和机械性能随混合温度的变化;
- DOI:
- 发表时间:
2010 - 期刊:
- 影响因子:0
- 作者:
Wook;D. Park;Yunqing Kang;K. Ha;Wonho Kim - 通讯作者:
Wonho Kim
Yunqing Kang的其他文献
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