Chemical Industry and Engineering Progress ›› 2024, Vol. 43 ›› Issue (4): 2001-2016.DOI: 10.16085/j.issn.1000-6613.2023-0626
• Biochemical and pharmaceutical engineering • Previous Articles
XUE Yunjiao1(), ZHANG Xuan1, LIU Yang1, CHEN Yuhuan1, FANG Jing2(), YANG Fang1()
Received:
2023-04-18
Revised:
2023-07-28
Online:
2024-05-13
Published:
2024-04-15
Contact:
FANG Jing, YANG Fang
薛云娇1(), 张璇1, 刘洋1, 陈玉焕1, 房静2(), 杨芳1()
通讯作者:
房静,杨芳
作者简介:
薛云娇(1998—),女,硕士研究生,研究方向为可再生能源的开发和利用及药物载体。E-mail:xueyunjiao995202@163.com。
基金资助:
CLC Number:
XUE Yunjiao, ZHANG Xuan, LIU Yang, CHEN Yuhuan, FANG Jing, YANG Fang. Pseudo-protein biomaterials: Classification, synthesis and application[J]. Chemical Industry and Engineering Progress, 2024, 43(4): 2001-2016.
薛云娇, 张璇, 刘洋, 陈玉焕, 房静, 杨芳. 伪蛋白生物材料的分类、合成及其应用[J]. 化工进展, 2024, 43(4): 2001-2016.
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URL: https://hgjz.cip.com.cn/EN/10.16085/j.issn.1000-6613.2023-0626
种类 | 组成 | 性质 |
---|---|---|
AA-PEA | 氨基酸、 脂肪族二醇、 脂肪族二酸 | AA-PEA含有酯键和酰胺键,聚酰胺具有良好的力学、热和加工性能,聚酯具有可生物降解性和生物相容性[ |
AA-PEEA | 氨基酸、 聚乙二醇、 脂肪族二酸 | AA-PEEA含有酯键、酰胺键、醚键,醚键增加了聚合物链的柔韧性。PEEA比PEA在性能上具有更多优越性,如PEEA的亲水性、可生化性和溶解度均强于PEA[ |
AA-PEU | 氨基酸、脂肪族二醇、 三光气或氨基酸、二醇、HDI 和 1,4丁二胺(BDA) | AA-PEU含有酯键和尿素键,尿素键具有很多分子间氢键,为聚合物提供了优异的热稳定性、耐化学性[ |
种类 | 组成 | 性质 |
---|---|---|
AA-PEA | 氨基酸、 脂肪族二醇、 脂肪族二酸 | AA-PEA含有酯键和酰胺键,聚酰胺具有良好的力学、热和加工性能,聚酯具有可生物降解性和生物相容性[ |
AA-PEEA | 氨基酸、 聚乙二醇、 脂肪族二酸 | AA-PEEA含有酯键、酰胺键、醚键,醚键增加了聚合物链的柔韧性。PEEA比PEA在性能上具有更多优越性,如PEEA的亲水性、可生化性和溶解度均强于PEA[ |
AA-PEU | 氨基酸、脂肪族二醇、 三光气或氨基酸、二醇、HDI 和 1,4丁二胺(BDA) | AA-PEU含有酯键和尿素键,尿素键具有很多分子间氢键,为聚合物提供了优异的热稳定性、耐化学性[ |
种类 | 组成 | 性质 |
---|---|---|
AA-UPEA | 氨基酸、 脂肪族二醇、 不饱和脂肪族二酸 | AA-UPEA和AA-UPEEA的不饱和碳碳双键均由不饱和的二酸或二元羧酸酰氯提供,碳碳双键增加了伪蛋白的疏水性[ |
AA-UPEEA | 氨基酸、 聚乙二醇、 不饱和脂肪族二酸 | |
AA-PEUU | 氨基酸、 脂肪族二醇、 HDI、GAE | AA-PEUU含有酯键、尿素键和聚氨酯(PU)键,PU具有多样性的结构和性能,被认为是生物医学领域最有前途的材料之一[ |
种类 | 组成 | 性质 |
---|---|---|
AA-UPEA | 氨基酸、 脂肪族二醇、 不饱和脂肪族二酸 | AA-UPEA和AA-UPEEA的不饱和碳碳双键均由不饱和的二酸或二元羧酸酰氯提供,碳碳双键增加了伪蛋白的疏水性[ |
AA-UPEEA | 氨基酸、 聚乙二醇、 不饱和脂肪族二酸 | |
AA-PEUU | 氨基酸、 脂肪族二醇、 HDI、GAE | AA-PEUU含有酯键、尿素键和聚氨酯(PU)键,PU具有多样性的结构和性能,被认为是生物医学领域最有前途的材料之一[ |
伪蛋白类型 | 合成方法 |
---|---|
非功能性伪蛋白 | |
AA-PEA | MP、IP、SP |
AA-PEEA | SP |
AA-PEU | IP、SP |
功能性伪蛋白 | |
AA-UPEA\\UPEEA AA-PEUU | IP、SP |
SP | |
含有反应性侧链的伪蛋白 | SP、ROP |
伪蛋白类型 | 合成方法 |
---|---|
非功能性伪蛋白 | |
AA-PEA | MP、IP、SP |
AA-PEEA | SP |
AA-PEU | IP、SP |
功能性伪蛋白 | |
AA-UPEA\\UPEEA AA-PEUU | IP、SP |
SP | |
含有反应性侧链的伪蛋白 | SP、ROP |
类型 | 聚合物 | 应用 | 参考文献 | 类型 | 聚合物 | 功能化 | 应用 | 参考文献 |
---|---|---|---|---|---|---|---|---|
非功能性伪蛋白 | Phe-PEA、Met-PEA | 组织工程支架 | [ | 功能性伪蛋白 | Arg-UPEA | 通过碳碳双键与普朗尼克丙烯酸(Pluronic-DA)前体光交联 | 水凝胶 | [ |
Phe-PEA | 纳米颗粒 | [ | Arg-Leu-PEUU | 自组装 | 纳米颗粒 | [ | ||
Phe-PEA | 微球 | [ | Arg-Leu PEUU | 马来酸官能化、引入交联烯烃与聚乙二醇二甲基丙烯酸酯原位交联 | 组织工程支架 | [ | ||
Arg-PEA | 基因载体 | [ | PEA-Ser-OH | 侧羟基丙烯化及光凝胶化 | 水凝胶 | [ | ||
Phe-PEU | 软组织修复材料 | [ | PEA-Asp-COOH | 偶联转化生长因子(TGF-b1) | 组织工程 | [ | ||
Val-Phe-PEU | 软组织修复材料 | [ | Lys-Arg-Phe-PEA | 自组装 | 两亲性胶束 | [ |
类型 | 聚合物 | 应用 | 参考文献 | 类型 | 聚合物 | 功能化 | 应用 | 参考文献 |
---|---|---|---|---|---|---|---|---|
非功能性伪蛋白 | Phe-PEA、Met-PEA | 组织工程支架 | [ | 功能性伪蛋白 | Arg-UPEA | 通过碳碳双键与普朗尼克丙烯酸(Pluronic-DA)前体光交联 | 水凝胶 | [ |
Phe-PEA | 纳米颗粒 | [ | Arg-Leu-PEUU | 自组装 | 纳米颗粒 | [ | ||
Phe-PEA | 微球 | [ | Arg-Leu PEUU | 马来酸官能化、引入交联烯烃与聚乙二醇二甲基丙烯酸酯原位交联 | 组织工程支架 | [ | ||
Arg-PEA | 基因载体 | [ | PEA-Ser-OH | 侧羟基丙烯化及光凝胶化 | 水凝胶 | [ | ||
Phe-PEU | 软组织修复材料 | [ | PEA-Asp-COOH | 偶联转化生长因子(TGF-b1) | 组织工程 | [ | ||
Val-Phe-PEU | 软组织修复材料 | [ | Lys-Arg-Phe-PEA | 自组装 | 两亲性胶束 | [ |
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