Development of Transiently Strainable Benzocycloheptenes for Catalyst-Free, Visible-Light-Mediated [3 + 2]-Cycloadditions.

IF 4 2区 化学 Q1 BIOCHEMICAL RESEARCH METHODS Bioconjugate Chemistry Pub Date : 2025-02-04 DOI:10.1021/acs.bioconjchem.4c00595
Shivangi Kharbanda, Osaid Alkhamayseh, Georgia Eastham, Jimmie D Weaver
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Abstract

Dynamic photogeneration of ephemeral and reactive species is enabling for chemical reactions, providing spatial and temporal control. A previous study from our group established the ability of 6,7-dihydro-5H-benzo[7]annulene, benzocycloheptene (BC7), to convert photochemical energy into ring strain, enabling the rapid cycloaddition of alkyl azides with the reversibly formed and transient trans-isomer, affording versatile nonaromatic triazolines. Despite the conceptual advances of the previous study, some challenges remained: the fragility of the triazoline products, the low regioselectivity for the cycloaddition, a need for an iridium-based photosensitizer and organic-based solvents, and a lack of convenient linchpin functional group handles. Herein, we communicate the development of a second generation of BC7 molecules that overcome the issues of the first generation. A method to convert fragile triazoline products to stable triazoles was developed. The alkene component was polarized with a carbonyl group, dramatically improving the regioselectivity while simultaneously red-shifting the absorbance of the cycloalkene into the visible region, which was expected to facilitate direct excitation and eliminate the need for photocatalysts. However, experiments indicated that the cycloaddition involved passage through a triplet manifold, complicating the direct excitation strategy. This was successfully overcome by attaching a bromine atom directly to the alkene moiety, which accelerated singlet-to-triplet intersystem crossing by the heavy atom effect. Further exploration identified sites of substitution that can increase the water solubility and provide a handle for the loading of chemical tools and probes.

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短暂和反应性物种的动态光生成有利于化学反应,提供空间和时间控制。我们研究小组之前的一项研究证实,6,7-二氢-5H-苯并[7]萘,即苯并环庚烯(BC7),能够将光化学能量转化为环应变,从而使烷基叠氮化物与可逆形成的瞬时反式异构体快速发生环加成反应,生成多功能的非芳香族三唑类化合物。尽管之前的研究在概念上取得了进展,但仍存在一些挑战:三唑啉产物易碎、环化反应的区域选择性低、需要铱基光敏剂和有机溶剂,以及缺乏方便的关键官能团处理。在此,我们介绍了第二代 BC7 分子的开发情况,它克服了第一代 BC7 分子存在的问题。我们开发了一种将脆弱的三唑啉产物转化为稳定的三唑的方法。烯烃成分被羰基极化,极大地提高了区域选择性,同时将环烯烃的吸光度红移到可见光区域,这有望促进直接激发并消除对光催化剂的需求。然而,实验表明,环化反应需要通过三重歧管,这使得直接激发策略变得复杂。通过在烯分子上直接连接一个溴原子,在重原子效应的作用下加速了单三重体系间的交叉,从而成功地克服了这一问题。进一步的探索确定了可提高水溶性的取代位点,并为化学工具和探针的装载提供了一个把手。
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来源期刊
Bioconjugate Chemistry
Bioconjugate Chemistry 生物-化学综合
CiteScore
9.00
自引率
2.10%
发文量
236
审稿时长
1.4 months
期刊介绍: Bioconjugate Chemistry invites original contributions on all research at the interface between man-made and biological materials. The mission of the journal is to communicate to advances in fields including therapeutic delivery, imaging, bionanotechnology, and synthetic biology. Bioconjugate Chemistry is intended to provide a forum for presentation of research relevant to all aspects of bioconjugates, including the preparation, properties and applications of biomolecular conjugates.
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