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通过硼官能化合成和研究构象受限的无连接臂α-氨基酸-BODIPY

Syntheses and Investigations of Conformationally Restricted, Linker-Free α-Amino Acid-BODIPYs via Boron Functionalization.

机构信息

Department of Chemistry, Louisiana State University, Baton Rouge, Louisiana 70803, United States.

Department of Chemistry and Fermentation Sciences, Appalachian State University, Boone, North Carolina 28607, United States.

出版信息

J Org Chem. 2021 Dec 17;86(24):18030-18041. doi: 10.1021/acs.joc.1c02328. Epub 2021 Nov 22.

Abstract

A series of α-amino acid-BODIPY derivatives were synthesized using commercially available -Boc-l-amino acids, via boron functionalization under mild conditions. The mono-linear, mono-spiro, and di-amino acid-BODIPY derivatives were obtained using an excess of basic (histidine, lysine, and arginine), acidic (aspartic acid), polar (tyrosine, serine), and nonpolar (methionine) amino acid residues, in yields that ranged from 37 to 66%. The conformationally restricted mono-spiro- and di-amino acid-BODIPYs display strong absorptions in the visible spectral region with high molar extinction coefficients and significantly enhanced fluorescence quantum yields compared with the parent BF-BODIPY. Cellular uptake and cytotoxicity studies using the human HEp2 cell line show that both the presence of an ,-bidentate spiro-ring and basic amino acids (His and Arg) increase cytotoxicity and enhance cellular uptake. Among the series of BODIPYs tested, the spiro-Arg- and spiro-His-BODIPYs were found to be the most cytotoxic (IC ∼ 22 μM), while the spiro-His-BODIPY was the most efficiently internalized, localizing preferentially in the cell lysosomes, ER, and mitochondria.

摘要

一系列的α-氨基酸-BODIPY 衍生物通过温和条件下的硼官能化作用,使用市售的 Boc-l-氨基酸合成。通过使用过量的碱性(组氨酸、赖氨酸和精氨酸)、酸性(天冬氨酸)、极性(酪氨酸、丝氨酸)和非极性(蛋氨酸)氨基酸残基,得到了单线性、单螺环和二氨基酸-BODIPY 衍生物,产率范围为 37%至 66%。构象受限的单螺环和二氨基酸-BODIPY 与母体 BF-BODIPY 相比,在可见光谱区域具有较强的吸收,摩尔消光系数较高,荧光量子产率显著提高。使用人 HEp2 细胞系进行的细胞摄取和细胞毒性研究表明, -双齿螺环的存在和碱性氨基酸(His 和 Arg)都增加了细胞毒性并增强了细胞摄取。在所测试的 BODIPY 系列中,螺环-Arg-和螺环-His-BODIPY 被发现具有最高的细胞毒性(IC ∼ 22 μM),而螺环-His-BODIPY 则是最有效地内化的,优先定位于溶酶体、内质网和线粒体。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ffa2/8689652/e09019b494f8/jo1c02328_0006.jpg

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