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1.
Biomacromolecules ; 2024 Aug 20.
Artigo em Inglês | MEDLINE | ID: mdl-39163639

RESUMO

Chemical reaction systems that can occur via multiple pathways in a controllable fashion are highly attractive for advanced materials applications and biological research. In this report, we introduce a bioorthogonal reaction manifold based on a chalcone pyrene (CPyr) moiety that can undergo either red-shifted photoreversible [2 + 2] cycloaddition or thiol-Michael addition click reaction. By coupling the CPyr to a water-soluble poly(ethylene glycol) end group, we demonstrate the efficient polymer dimerization and cleavage by blue light (λ = 450 nm) and UV light (λ = 340 nm), respectively. In the absence of light, CPyr rapidly reacts with thiols in aqueous environments, enabling fast and efficient polymer end-group functionalization. The chemical reaction manifold was further employed in polymer cross-linking for the preparation of hydrogels whose stiffness and morphology can be modulated by different photonic fields or the addition of a thiol cross-linker. The photoreversible cycloaddition and thiol-Michael addition click reaction can be used in conjunction for spatial and temporal conjugation of a streptavidin protein. Both cross-linking conditions are nontoxic to various cell lines, highlighting their potential in biomaterials applications.

2.
J Am Chem Soc ; 146(33): 23376-23386, 2024 Aug 21.
Artigo em Inglês | MEDLINE | ID: mdl-39115375

RESUMO

Photocontrolled deprotection of specific functional groups has garnered significant interest over the past two decades. Notably, the selective deprotection of distinct groups based on wavelength has emerged as a prominent focus in recent research. The achievement of this objective has primarily involved the utilization of linker-based bichromophoric systems and diverse cocktail mixtures of photoresponsive protecting groups (PRPGs), each responsive to varying wavelengths of light. Herein, we present the first wavelength-selective monochromophoric system based on a hydroxanthene moiety, enabling the wavelength-selective release of two distinct functionalities under 450 and 600 nm light, respectively. The mechanism of the wavelength-selective photodegradation was thoroughly investigated by 1H NMR, UV-vis, and fluorescence spectroscopy, suggesting a proton-coupled electron transfer mechanism in the first photorelease step and electron transfer based arylmethyl type of photorelease in the second step. The utility of the xanthene-based wavelength-selective PRPGs was demonstrated in the multistep degradation of microparticles and dual-color tuning of polymer chain architecture, thus opening an avenue to design advanced photoreactive wavelength-controlled systems for applications in soft matter materials.

3.
Chem Soc Rev ; 50(10): 5985-6012, 2021 May 21.
Artigo em Inglês | MEDLINE | ID: mdl-34027944

RESUMO

Pyrroloindolines are important and privileged polycyclic indoline motifs that are widely present in natural products and bio-significant molecules. From an organic chemistry perspective, their rigid tricyclic molecular architectures with a fully substituted carbon center at the C3a-position pose a great challenge to synthetic chemists. In a biological context, pyrroloindoline-containing alkaloids display a plethora of promising activities, making them significant in biological sciences and drug development. In the past few decades, pyrroloindoline and its analogues have emerged as appealing synthetic targets, attracting tremendous attention from the synthetic community. In this review, we summarize the state-of-the-art catalytic asymmetric synthesis of pyrroloindolines, as well as the related applications to the total synthesis of natural products.


Assuntos
Indóis/química , Pirróis/química , Alcaloides/síntese química , Alcaloides/química , Aminação , Produtos Biológicos/síntese química , Produtos Biológicos/química , Catálise , Ciclização , Reação de Cicloadição , Halogenação , Indóis/síntese química
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