SELF-ASSEMBLY AND FUNCTION OF ARTERIAL WALL PROTEIN : MATERIALS DEVELOPMENT MIMICKING PRIMEVAL CELL AND BIOELASTIC TISSUE FUNCTIONS
SELF-ASSEMBLY AND FUNCTION OF ARTERIAL WALL PROTEIN : MATERIALS DEVELOPMENT MIMICKING PRIMEVAL CELL AND BIOELASTIC TISSUE FUNCTIONS
批准号:
14540537
负责人:
KAIBARA Kozue
金额:
$2.37万
依托单位国家:
日本
项目类别:
Grant-in-Aid for Scientific Research (C)
财政年份:
2002
资助国家:
日本
项目状态:
已结题
起止时间:
2002 至 2004
中文摘要
(1)弹性蛋白-水体系的温度依赖凝聚:弹性蛋白前体原弹性蛋白的生物自组装过程可以通过弹性蛋白-水体系的温度依赖凝聚来模拟。通过显微观察图像分析和激光光散射测量,研究了弹性体蛋白质在液-液分离过程中的临界自组装特征。(2)金属阳离子对温度依赖性凝聚的影响:金属氯化物溶液中,弹性体蛋白质的温度依赖性凝聚是一种临界自组装方式,具有时间进程快、凝聚液滴尺寸分布广的特点。多肽链上的两种金属阳离子结合部位,即侧链氨基酸残基的羧氧和主链c-…上的肽羰基氧过渡金属对关键过程的影响:球状和细长的凝聚体形成。过渡金属的加入提高了弹性体蛋白质微凝聚体液滴在高温下的稳定性。Cu^<;2+>;和La^<;3+>;离子对微凝聚液滴有显著的稳定作用,并完全抑制了宏观凝聚层的分离。弹性蛋白作为一种原始蛋白质的特征:原始细胞模型和细胞功能材料弹性蛋白具有蛋白质的原始性质,如循环系统形成的早期系统发育和简单氨基酸组成中80%以上与非极性丙氨酸、甘氨酸、缬氨酸和脯氨酸残基共享。有一份报告描述了生物前细胞组织和类似弹性蛋白的大分子系统的生物前分子进化之间的联系。(5)弹性蛋白的自组装和功能:生物功能材料开发一种名为弹性蛋白的弹性蛋白完全负责哺乳动物组织中复杂的生物弹性,如动脉壁、韧带、肺和皮肤。弹性形成的一个关键步骤是原弹性蛋白在细胞外空间的生物自组装过程,以便在酶促交联反应之前建立一些规则的构象。通过研究弹性蛋白-水体系在依赖温度凝聚过程中建立的分子自组装特征,可以研究弹性蛋白的机制和功能及其结构基础。较少
英文摘要
(1)Temperature-Dependent Coacervation of Elastomeric Protein-Water System : Characteristic Critical Process Biological self-assembly process of tropoelastin, precursor of elastomeric protein, can be mimicked by the temperature-dependent coacervation of an elastomeric protein-water system. Critical characteristics of the self-assembly of elastomeric protein during the liquid-liquid phase separation were investigated by the image analysis of microscopic observation and laser light scattering measurements.(2)Metal Cation Effects on the Temperature-Dependent Coacervation : Selective Binding Sites and Self-Assembly Process In metal chloride solution, the temperature-dependent coacervation of elastomeric protein was characterized as a critical self-assembly manner with a fast time progress and abroad size distribution of microcoacervate droplets. Two types of metal cation binding sites on polypeptide chains, carboxy oxygen of side amino acid residues and peptide carbonyl oxygen of backbone c … More hains, affect the self-assembly and conformational regulation of elastomeric protein.(2)Transition Metal Effects on the Critical Process : Spherical and Elongated Coacervate Formation The stability of microcoacervate droplets of elastomeric protein at high temperature are improved by the addition of transition metals. Microcoacervate droplets are specifically and significantly stabilized by Cu^<2+> and La^<3+> ions, and the separation of macrocoacervate layer is totally suppressed by these ions. In some cases, elongated coacervates are observed with major sperical coacervate droplets by phase contrast microscopy.(3)Elastomeric Protein Characteristics as a Primitive Protein : Primeval Cell Model and Cellular Functionality Materials The elastomeric protein has the primitive nature of protein, such as the early phylogenic appearance in the formation of circulatory system and the simple amino acid compositions shared more than 80% with nonpolar alanine, glycine, valine, and proline residues. There is a report describing a link between the prebiotic cellular organization and the prebiological molecular evolution of an elastin-like macromolecular system.(5)Self-Assembly and Function of Elastomeric Protein : Biofunctionality Materials Development An elastomeric protein called elastin is fully responsible for sophisticated biological elasticity in mammalian tissues such as the arterial wall, ligament, lung, and skin. A key step to elastogenesis is a biological self-assembly process of tropoelastin in extracellular space to establish some regular configulatlons before enzymatic cross-linking reaction. The mechanism and function of elastomeric proteins and their structural foundations can be examined by investigating the characteristics of molecular self-assembly established during the temperature-dependent coacervation of an elastomeric protein-water system. Less
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Adsorption of Dietary Phosphate in Gut with Anion Exchange Resin
阴离子交换树脂吸附肠道中膳食磷酸盐
DOI:
--
发表时间:
2003
期刊:
J Ion Exchange 14 supplement
影响因子:
--
作者:
[Inoue H, Kagoshima M]
通讯作者:
Kagoshima M
Characterization of Proteinic Coacervate Formation : From Primeval Cell Model to Biofunctionality Materials
蛋白质凝聚层形成的表征:从原始细胞模型到生物功能材料
DOI:
--
发表时间:
2002
期刊:
Handbook of Polyelectrolytes and Their Applications (Editors : S.Tripathy, J.Kumar, and H.S.Nalwa) (American Scientific Publishers) Volume 3
影响因子:
--
作者:
[K.Kaibara, K.Okamoto, K.Miyakawa]
通讯作者:
K.Miyakawa
K.Kaibara, T.Ogawa, H.Kawasaki, M.Suzuki, H.Maeda: "Hydrogen Ion Titration of Oleic Acid in Aqueous Media : Further Examinations on Sodium and Potassium Oleate Systems"Colloid Polym.Sci.. 281-3. 220-228 (2003)
K.Kaibara、T.Okawa、H.Kawasaki、M.Suzuki、H.Maeda:“水介质中油酸的氢离子滴定:对油酸钠和油酸钾系统的进一步检查”Colloid Polym.Sci. 281-3。
DOI:
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发表时间:
期刊:
影响因子:
--
作者:
[]
通讯作者:
井上 浩義, 甲斐原 梢: "中学生を対象とした科学技術体験活動「放射線を知っていますか」"Isotope News. 32-34 (2002)
井上博吉、海原浩江:“初中生科技体验活动:‘你了解放射线吗?’”同位素新闻. 32-34 (2002)
DOI:
--
发表时间:
期刊:
影响因子:
--
作者:
[]
通讯作者:
DOI:
10.1016/j.cccn.2003.12.001
发表时间:
2004-03-01
期刊:
CLINICA CHIMICA ACTA
影响因子:
5
作者:
[Inoue, H, Sakai, M, Kaibara, K]
通讯作者:
Kaibara, K
共 17 条
Self-Assembly of Bioelastic Matrix: Structure and Function under Shear Stress
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批准号:11640584
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项目类别:Grant-in-Aid for Scientific Research (C)
-
资助金额:$2.3万
-
财政年份:1999
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负责人:KAIBARA Kozue
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依托单位:
Self-Assembly of Protein and Liquid-Liquid Phase Separation under Shear Stress : Investigations by Phase Contrast Rheoscope
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批准号:07640774
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项目类别:Grant-in-Aid for Scientific Research (C)
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资助金额:$1.47万
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财政年份:1995
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负责人:KAIBARA Kozue
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依托单位:
Molecular Assembly of Protein with Liquid-Liquid Phase Separation : Structure, Mechanism, and Function of Elastic Fiber Protein Aggregates
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批准号:02804031
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项目类别:Grant-in-Aid for General Scientific Research (C)
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资助金额:$1.22万
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财政年份:1990
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负责人:KAIBARA Kozue
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依托单位:
海外基金