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BMAT: Self-assembly of extensin glycoproteins for designing novel plant-based biopolymers

BMAT: Self-assembly of extensin glycoproteins for designing novel plant-based biopolymers
BMAT:用于设计新型植物生物聚合物的延伸蛋白自组装
批准号:
2337227
负责人:
Michael Held
金额:
$54.59万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2024
资助国家:
美国
项目状态:
未结题
起止时间:
2024-07-01 至 2027-06-30

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中文摘要
翻译
非技术概述地球上所有的生物都是由细胞组成的。每个细胞都被一个细胞外基质包围。你可以认为细胞外基质是保护和容纳细胞内容物的外壳。在植物中,这种外壳特别坚固和坚硬,由各种生物聚合物组成。其中一种聚合物被称为延伸素。顾名思义,延伸素在控制植物生长和伸展方面起着重要作用,它通过形成聚合物分子支架或框架来实现这一点。这项工作的目的是在分子水平上了解是什么在控制支架的形成,以及我们如何利用这一知识来设计新的生物聚合物,以模仿或模仿自然延伸素的性质。面对全球气候变化,我们必须减少对化石燃料的依赖,不仅用作运输燃料,而且用作化学品/聚合物原料。这项研究的潜在工业应用很多,包括生物降解塑料的创造、分子电子学、食品增强剂、化妆品添加剂等。这项研究还将为本科生和研究生提供生物物理化学和生物化学的培训机会。将开发新的物理化学和生物化学本科课程材料,并计划为中小学适龄儿童和成人开展各种推广和科学素养项目。技术概述Extensins(Extensins,EXTS)是一种在植物细胞壁中自然存在的形成网络的富含羟脯氨酸的糖蛋白。单体EXT自组装形成不溶于水的聚合物细胞壁支架。关于分子水平上控制EXT自组装的是什么,我们知之甚少。原子力显微镜(AFM)以前曾被用来探索EXT自组装的行为。这些研究表明EXT单体自发地自组装成错综复杂的树枝状支架。此外,不同类型的EXT表现出不同的自组装行为,其中一些EXT更倾向于XY平面生长(称为分支),而另一些EXT则表现为Z平面生长(称为堆积)。这些变化归因于不同EXT在重复性、模块化和两亲性方面的差异。为了更好地理解EXT自组装的分子驱动因素,提出了三个目标。首先,将用原子力显微镜进一步表征天然EXT糖蛋白的自组装,以研究它们的动力学、孔大小以及在x、y和z平面上的相对生长。然后,将利用合成生物学来创建两亲性、模块化和重复性不同的仿生EXT,并使用AFM测试它们的自组装行为。最后,将表征合成的自组装EXT的生化和生物物理性质,并将其与单体粘合强度和聚合物柔性进行比较。阐明管理EXT自组装的分子规则有望促进合成的、基于植物的仿生生物多聚物的合理设计。这一奖项反映了NSF的法定使命,并通过使用基金会的智力优势和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Non-technical summaryAll living creatures on earth are made of cells. Each cell is enclosed by an extracellularmatrix. You can think of an extracellular matrix as a housing that protects and containsa cell’s contents. In plants, that housing is particularly strong and rigid and is composedof a wide variety of biopolymers. One such polymer is known as extensin. As its nameimplies, extensin plays an important role in controlling plant growth and extension, andit does so by forming a polymeric molecular scaffold or frame. This work aims tounderstand what governs scaffold formation at the molecular level and how we can usethis knowledge to design new biopolymers that mimic or imitate the properties ofnatural extensins. In the face of global climate change, our reliance on fossil fuels mustbe reduced, not only for use as transportation fuels, but also as chemical/polymerfeedstocks. Potential industrial applications of this research are numerous and includethe creation of biodegradable plastics, molecular electronics, food enhancement,cosmetics additives, etc. This research will also provide training opportunities forundergraduate and graduate students in biophysical chemistry and biochemistry. Newundergraduate course materials for physical chemistry and biochemistry will bedeveloped, and various outreach and scientific literacy projects for primary/secondaryschool aged children and adults are planned.Technical summaryExtensins (EXTs) are network-forming hydroxyproline-rich glycoproteins foundnaturally in plant cell walls. Monomeric EXTs self-assemble to form insoluble polymericcell wall scaffolds. Very little is known about what governs EXT self-assembly at themolecular level. Atomic force microscopy (AFM) has been previously used to explorethe behavior of EXT self-assembly. These studies showed that EXT monomersspontaneously self-assemble into intricate dendritic scaffolds. Furthermore, differentEXT types displayed different self-assembly behaviors, whereby some EXTs favoredmore xy-plane growth (termed ‘branching’), while others displayed z-plane growth(termed ‘stacking’). These changes were attributed to differences in the repetitive,modular, and amphiphilic nature exhibited by different EXTs. To better understand themolecular drivers of EXT self-assembly, three objectives are proposed. First, will befurther characterize the self-assembly of native EXT glycoproteins by AFM to studytheir kinetics, pore sizes, and relative growth in the x-, y-, and z-planes. Syntheticbiology will then be used to create biomimetic EXTs that vary in amphiphilicity,modularity, and repetitiveness and test for their self-assembly behavior using AFM.Lastly, the biochemical and biophysical properties of synthetic self-assembled EXTs willbe characterized and compared with a focus on monomer adhesion strength andpolymer flexibility. Elucidating the molecular rules that govern EXT self-assembly isexpected to facilitate the rational design of synthetic, plant-based biomimeticbiopolymers.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.
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