Tolbert Garrett B, Jayawardana Samith B, Lee Yuri, Sun Junqi, Qu Fengrui, Whitt Logan M, Shafaat Hannah S, Wijeratne Gayan B
Department of Chemistry and Biochemistry, University of Alabama, Tuscaloosa, AL 35487, United States.
Department of Chemistry and Biochemistry, University of California, Los Angeles, Los Angeles, CA, 90095, United States.
Chemistry. 2024 Dec 5;30(68):e202402310. doi: 10.1002/chem.202402310. Epub 2024 Nov 12.
Heme enzymes play a central role in a medley of reactivities within a wide variety of crucial biological systems. Their active sites are highly decorated with pivotal evolutionarily optimized non-covalent interactions that precisely choreograph their biological functionalities with specific regio-, stereo-, and chemo-selectivities. Gaining a clear comprehension of how such weak interactions within the active sites control reactivity offers powerful information to be implemented into the design of future therapeutic agents that target these heme enzymes. To shed light on such critical details pertaining to tryptophan dioxygenating heme enzymes, this study investigates the indole dioxygenation reactivities of Lewis acid-activated heme superoxo model systems, wherein an unprecedented kinetic behavior is revealed. In that, the activated heme superoxo adduct is observed to undergo indole dioxygenation with the intermediacy of a non-covalently organized precursor complex, which forms prior to the rate-limiting step of the overall reaction landscape. Spectroscopic and theoretical characterization of this precursor complex draws close parallels to the ternary complex of heme dioxygenases, which has been postulated to be of crucial importance for successful 2,3-dioxygenative cleavage of indole moieties.
血红素酶在各种关键生物系统中的一系列反应中起着核心作用。它们的活性位点高度装饰着关键的经过进化优化的非共价相互作用,这些相互作用以特定的区域、立体和化学选择性精确编排其生物功能。清楚地了解活性位点内的这种弱相互作用如何控制反应性,为在设计靶向这些血红素酶的未来治疗药物时提供了有力的信息。为了阐明与色氨酸双加氧血红素酶相关的此类关键细节,本研究调查了路易斯酸活化的血红素超氧模型系统的吲哚双加氧反应性,其中揭示了前所未有的动力学行为。具体而言,观察到活化的血红素超氧加合物在非共价组织的前体复合物的介导下进行吲哚双加氧反应,该前体复合物在整个反应过程的限速步骤之前形成。对该前体复合物的光谱和理论表征与血红素双加氧酶的三元复合物有密切的相似之处,据推测该三元复合物对于吲哚部分的成功2,3-双加氧裂解至关重要。