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Synthetic strategies for controlling inter- and intramolecular interactions: Applications in single-molecule fluorescence imaging, bioluminescence imaging, and palladium catalysis.

机译:控制分子间和分子间相互作用的合成策略:在单分子荧光成像,生物发光成像和钯催化中的应用。

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摘要

The field of synthetic organic chemistry has reached such maturity that, with sufficient effort and resources, the synthesis of virtually any small molecule which exhibits reasonable stability at room temperature can be realized. While representing a monumental achievement for the field, the ability to exert precise control over molecular structure is just a means to an end, and it is frequently the responsibility of the synthetic chemist to determine which molecules should actually be synthesized. For better or worse, there exists no competitive free market in academia for new molecules, and as a result, the decision of which compounds should be synthesized is seldom driven by the forces of supply and demand; rather, it is guided by the synthetic chemist's interest in an anticipated structure-function relationship or in the properties of a previously unstudied class of molecules. As a consequence, there exists a pervasive need for chemists with synthetic expertise in fields (e.g., molecular imaging) and subdisciplines of chemistry (e.g., physical chemistry) in which the identification of promising synthetic targets dramatically outpaces the synthetic output in that field or subdiscipline, and ample opportunities are available for synthetic chemists who choose to pursue such cross-disciplinary research. This thesis describes synthetic efforts that leverage these opportunities to realize applications in biological imaging and in palladium catalysis.;In Part I, the synthesis and characterization of three novel luminophores and their imaging applications are discussed. The first is a molecular beacon that utilizes a fluorophorefluorophore pair which exhibits H-dimer quenching in the closed conformation. This probe offers several advantages over conventional fluorophore-quencher molecular beacons in the detection of oligonucleotides, both in bulk and at the single-molecule level. Secondly, a fluorescent, Cy3-Cy5 covalent heterodimer is reported, which on account of the proximity of the Cy3 and Cy5 fluorophores, behaves as an optical photoswitch in the presence of a thiol reagent. This unique property was employed to achieve sub-diffraction-limited imaging of the stalks of Caulobacter crescentus cells with 30-nm resolution using STORM (stochastic optical reconstruction microscopy). Lastly, the synthesis of the first selenium analogue of firefly luciferin is described, and this analogue is shown to be a competent substrate for firefly luciferase (fLuc). Remarkably, it exhibits red-shifted bioluminescence emission relative to the native sulfur analogue. The in vivo performance of the selenium and sulfur analogues in imaging are compared by tail-vein injection into nude mice bearing subcutaneous tumor xenografts of a human breast cancer cell line that was stably transduced to express fLuc.;Part II of this thesis begins by addressing design considerations in the development of palladium catalysts that effect oxidative transformations under mild conditions (i.e., 1 atm air, room temperature) using molecular oxygen as the terminal oxidant. A newly synthesized cationic palladium complex, [(2,9-dimethylphenanthroline)Pd(OAc)]2[OTf]2, is shown to catalyze aerobic alcohol oxidation under such conditions with an unprecedented initial turnover frequency, but the presence of partially reduced oxygen species results in competitive ligand oxidation with concomitant decrease in catalyst activity. To remedy this, oxidatively resistant ligands, which are essential for the development of next-generation, high-turnover-frequency palladium catalysts that utilize oxygen as a terminal oxidant, have been prepared and effectively employed. In addition, the first general palladium-catalyzed route to the carbonylation of diols is reported. In this system, carbon monoxide (1 atm) serves the carbonyl source, (2,9-dimethylphenanthroline)Pd(OAc) 2 acts as the catalyst, and N-chlorosuccinimide and iodosobenzene are the oxidants for 1,2- and 1,3-diols, respectively.;This thesis illustrates the power of synthetic organic chemistry to exert precise control over the structure of molecules, thereby enabling applications in single-molecule fluorescence imaging, bioluminescence imaging, and palladium catalysis.
机译:合成有机化学领域已经达到成熟,以足够的努力和资源,可以实现几乎任何在室温下表现出合理稳定性的小分子的合成。在此领域取得了不菲的成就,对分子结构进行精确控制的能力只是达到目的的一种手段,合成化学家通常有责任确定应实际合成哪些分子。无论好坏,学术界都没有针对新分子的竞争性自由市场,结果,供不应求的因素很少决定合成哪种化合物。相反,它是由合成化学家对预期的结构-功能关系或先前尚未研究的一类分子的性质的关注所指导的。结果,普遍需要在领域(例如分子成像)和化学子学科(例如物理化学)领域具有合成专业知识的化学家,其中有前途的合成靶标的鉴定大大超过该领域或子学科的合成产量,对于选择进行此类跨学科研究的合成化学家来说,这是一个充裕的机会。本文描述了利用这些机会实现在生物成像和钯催化中的应用的合成方法。第一部分讨论了三种新型发光体的合成,表征及其成像应用。第一种是分子信标,其利用在封闭构象中表现出H-二聚体猝灭的荧光团-荧光团。该探针在批量和单分子水平检测寡核苷酸方面均比常规荧光猝灭剂分子信标具有多个优势。其次,报道了荧光的Cy3-Cy5共价异二聚体,由于Cy3和Cy5荧光团的接近性,在硫醇试剂存在下,其表现为光学光开关。利用这一独特特性,使用STORM(随机光学重建显微镜)以30 nm的分辨率实现了新月形棒状杆菌细胞茎的亚衍射极限成像。最后,描述了萤火虫萤光素的第一个硒类似物的合成,并且该类似物被证明是萤火虫萤光素酶(fLuc)的有效底物。显着地,相对于天然硫类似物,其表现出红移的生物发光发射。比较了硒和硫类似物在成像中的体内性能,方法是将尾静脉注射入携带有人类乳腺癌细胞系的皮下肿瘤异种移植物的裸鼠中,该人乳腺癌细胞系已稳定转导以表达fLuc。本论文的第二部分从解决设计钯催化剂时要考虑的设计考虑因素,这些催化剂使用分子氧作为末端氧化剂,可在温和条件下(即1 atm空气,室温)实现氧化转化。一种新合成的阳离子钯配合物,[(2,9-二甲基菲咯啉)Pd(OAc)] 2 [OTf] 2,在这种条件下以空前的初始转换频率催化需氧醇氧化,但存在部分还原的氧物种导致竞争性配体氧化,同时催化剂活性降低。为了解决这个问题,已经制备并有效地使用了抗氧化配体,该配体对于开发利用氧作为末端氧化剂的下一代高周转频率的钯催化剂至关重要。另外,报道了第一种通用的钯催化的二醇羰基化途径。在该系统中,一氧化碳(1 atm)用作羰基源,(2,9-二甲基菲咯啉)Pd(OAc)2充当催化剂,N-氯代琥珀酰亚胺和碘代苯是1,2-和1,3的氧化剂本论文阐述了合成有机化学对分子结构进行精确控制的能力,从而使其可用于单分子荧光成像,生物发光成像和钯催化。

著录项

  • 作者

    Conley, Nicholas R.;

  • 作者单位

    Stanford University.;

  • 授予单位 Stanford University.;
  • 学科 Chemistry Organic.;Chemistry Physical.;Physics Optics.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 234 p.
  • 总页数 234
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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