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具有极高蛋白质振动能量转移截面的亚胺硫代吲哚酮供体。

Iminothioindoxyl Donors with Exceptionally High Cross Section for Protein Vibrational Energy Transfer.

机构信息

Institute of Biophysics, Goethe University Frankfurt, Max-von-Laue-Straße 1, 60438, Frankfurt (Main), Germany.

Institute for Organic Chemistry and Chemical Biology, Goethe University Frankfurt, Max-von-Laue-Straße 7, 60438, Frankfurt (Main), Germany.

出版信息

Angew Chem Int Ed Engl. 2024 Feb 26;63(9):e202317047. doi: 10.1002/anie.202317047. Epub 2024 Jan 22.

Abstract

Various protein functions are related to vibrational energy transfer (VET) as an important mechanism. The underlying transfer pathways can be experimentally followed by ultrafast Vis-pump/IR-probe spectroscopy with a donor-sensor pair of non-canonical amino acids (ncAAs) incorporated in a protein. However, so far only one donor ncAA, azulenylalanine (AzAla), exists, which suffers from a comparably low Vis extinction coefficient. Here, we introduce two novel donor ncAAs based on an iminothioindoxyl (ITI) chromophore. The dimethylamino-ITI (DMA-ITI) and julolidine-ITI (J-ITI) moieties overcome the limitation of AzAla with a 50 times higher Vis extinction coefficient. While ITI moieties are known for ultrafast photoswitching, DMA-ITI and J-ITI exclusively form a hot ground state on the sub-ps timescale instead, which is essential for their usage as vibrational energy donor. In VET measurements of donor-sensor dipeptides we investigate the performance of the new donors. We observe 20 times larger signals compared to the established AzAla donor, which opens unprecedented possibilities for the study of VET in proteins.

摘要

各种蛋白质功能都与振动能量转移 (VET) 有关,这是一种重要的机制。通过超快可见光泵浦/红外探测光谱,可以用非典型氨基酸 (ncAA) 对蛋白质中的供体-传感器对进行实验追踪,这种方法可以揭示潜在的转移途径。然而,到目前为止,只有一种供体 ncAA,即薁基丙氨酸 (AzAla),存在,但其可见吸收系数相对较低。在这里,我们引入了两种基于亚氨基硫代吲哚 (ITI) 发色团的新型供体 ncAA。二甲氨基-ITI (DMA-ITI) 和六氢吖啶-ITI (J-ITI) 部分克服了 AzAla 的局限性,其可见吸收系数高 50 倍。虽然 ITI 部分以超快光开关而闻名,但 DMA-ITI 和 J-ITI 仅在亚皮秒时间尺度上形成一个热基态,这对于它们作为振动能量供体的应用是至关重要的。在对供体-传感器二肽的 VET 测量中,我们研究了新供体的性能。与已建立的 AzAla 供体相比,我们观察到 20 倍更大的信号,这为蛋白质中 VET 的研究开辟了前所未有的可能性。

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