DESIGNED DNA CRYSTALS
设计的 DNA 晶体
基本信息
- 批准号:8170586
- 负责人:
- 金额:$ 1.05万
- 依托单位:
- 依托单位国家:美国
- 项目类别:
- 财政年份:2010
- 资助国家:美国
- 起止时间:2010-07-01 至 2011-06-30
- 项目状态:已结题
- 来源:
- 关键词:BindingBiologicalColorComplexComputer Retrieval of Information on Scientific Projects DatabaseCrystallizationDNAData CollectionDyesFundingGoalsGrantInstitutionLengthLinkMemoryMolecularNatureOpticsPeptidesProteinsPublishingReportingResearchResearch PersonnelResolutionResourcesRoentgen RaysSourceStructureSystemTimeUnited States National Institutes of HealthVertebral columnbasedesignmacromoleculenanoparticlepeptidomimeticsprogramsscaffoldsynthetic construct
项目摘要
This subproject is one of many research subprojects utilizing the
resources provided by a Center grant funded by NIH/NCRR. The subproject and
investigator (PI) may have received primary funding from another NIH source,
and thus could be represented in other CRISP entries. The institution listed is
for the Center, which is not necessarily the institution for the investigator.
Our research program is designed to utilize new types of macromolecular building blocks based on branched DNA, as the basis of specifically designed crystalline arrangements 3D structural motifs. The ultimate goals are to provide macromolecular scaffoldings, capable of binding, orienting and juxtaposing a variety of molecules, from biological macromolecules to organic conductors and optical memory components. We proposed and succeeded in determining structures of such a designed 3D system, the tensegrity triangle. This structure is a robust motif with three-fold rotational backbone symmetry, consisting of three helices that are directed in linearly independent directions, i.e., their helix axes do not all share the same plane. The helices are connected pair-wise by three Holliday-like crossover points, so as to produce an alternating over-and-under motif. Recently, we reported [Zheng et al. Nature 461, 74-77 (2009)] the X-ray crystal structure to 4 ¿ of a tensegrity triangle containing a single molecular species, comprised of three helical domains, each containing two double helical turns. Each triangle is centered on a vertex of a rhombohedron, creating a large cavity. Our more recent efforts have been directed in several different directions, all based on the structure of the published two-turn triangle. (A) We have been successful in increasing the numbers of helical turns in the triangle from 2 to 3 and 4 and in determining their crystal structures. While the refined structures all have the structural parameters predicted from their designs, the resolutions of the crystals obtained decrease with the increase in the number of helical turns. We are exploring the effect of changing the length of sticky ends that link the triangles, and also the impact of using natural DNA, rather than synthetic DNA, on the resolution of the crystals. (B) We are attempting to incorporate guest molecules into the internal cavities of the crystal structures; the cavities of the three structures with different length edges (2, 3 and 4 turns) are ~100 nm3, ~375 nm3 and ~1000 nm3. The guest species range from proteins, peptides, and peptidomimetics to dyes, metallic nanoparticles and segments of DNA. Isomorphous crystals have been obtained of such complexes both by co-crystallization and soaking. A report describing the crystal structure of a DNA crystal containing two distinct triangles programmed to crystallize according to the design is ready for submission. In addition, we have also demonstrated that the colors of the crystals can be controlled by the covalent attachment of dye molecules to the different molecules. As a rule our crystals are weakly diffracting, display a high degree of mosaicity and frequently appear in space group P1. Consequently the crystals require long exposure times, small oscillation angles and optimally data collection over 360 degrees.
该子项目是利用该技术的众多研究子项目之一
资源由 NIH/NCRR 资助的中心拨款提供。
研究者 (PI) 可能已从 NIH 的另一个来源获得主要资金,
因此可以出现在其他 CRISP 条目中 列出的机构是。
对于中心来说,它不一定是研究者的机构。
我们的研究计划旨在利用基于分支 DNA 的新型大分子构件,作为专门设计的晶体排列 3D 结构图案的基础,最终目标是提供能够结合、定向和并置各种分子的大分子支架。 ,从生物大分子到有机导体和光学记忆组件,我们提出并成功确定了这种设计的 3D 系统的结构,即张拉整体三角形。主干对称性,由三个线性独立方向的螺旋组成,即它们的螺旋轴并不都共享同一平面,螺旋通过三个霍利迪式交叉点成对连接,从而产生交替的交叉点。最近,我们报道了 [Zheng et al. Nature 461, 74-77 (2009)] 的 X 射线晶体结构。包含单个分子物种的张拉整体三角形,由三个螺旋域组成,每个螺旋域包含两个双螺旋圈,每个三角形都以菱面体的顶点为中心,形成一个大空腔。 ,所有这些都是基于已发表的两匝三角形的结构(A),我们已经成功地将三角形中的螺旋匝数从 2 增加到 3 和 4,并确定了它们的晶体结构。这根据他们的设计预测的结构参数,获得的晶体的分辨率随着螺旋圈数的增加而降低,我们正在探索改变连接三角形的粘性末端长度的效果,以及使用天然DNA的影响, (B) 我们试图将客体分子纳入晶体结构的内部空腔中,而不是合成 DNA;具有不同长度边缘(2、3 和 4 圈)的三个结构的空腔是〜100 nm3,约 375 nm3 和约 1000 nm3 的客体种类范围从蛋白质、肽和肽模拟物到染料、金属纳米粒子和 DNA 片段,均通过共结晶和浸泡获得了同晶晶体。包含两个不同三角形的 DNA 晶体结构已准备好提交,该三角形根据设计进行编程结晶。此外,我们还证明了晶体的颜色可以改变。通过染料分子与不同分子的共价连接来控制通常我们的晶体具有弱衍射,表现出高度的镶嵌性并经常出现在空间群 P1 中,检查晶体需要长曝光时间、小振荡角度和最佳状态。 360度全方位数据采集。
项目成果
期刊论文数量(0)
专著数量(0)
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{{ truncateString('JENS J BIRKTOFT', 18)}}的其他基金
DESIGN OF SELF-ASSEMBLED 3D DNA CRYSTALS USING 6HB
使用 6HB 设计自组装 3D DNA 晶体
- 批准号:
7957272 - 财政年份:2009
- 资助金额:
$ 1.05万 - 项目类别:
DNA DESIGNER CRYSTALS -- 3D TRIANGLE, DODECAMER, 16MER
DNA 设计师水晶 -- 3D 三角形、十二角、16MER
- 批准号:
7957298 - 财政年份:2009
- 资助金额:
$ 1.05万 - 项目类别:
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