Zhang Baoli, Li Chengze, Yu Mengjie, Xie Yuanyuan, Lv Yunbo, Wang Zhen-Gang
State Key Laboratory of Organic-Inorganic Composites, Key Lab of Biomedical Materials of Natural Macromolecules (Ministry of Education), Beijing Laboratory of Biomedical Materials, College of Materials Science and Engineering, Beijing University of Chemical Technology, Beijing 100029, China.
Nano Lett. 2025 Aug 20;25(33):12603-12610. doi: 10.1021/acs.nanolett.5c02910. Epub 2025 Aug 5.
The selective oxygenation of organic compounds via Baeyer-Villiger (B-V) oxidation is crucial for producing value-added chemicals. Although biomimetic catalysts inspired by Baeyer-Villiger monooxygenase (BVMO) and employing a flavin cofactor have shown promise, their effectiveness has been limited by the difficulty in replicating enzymatic active sites, particularly for producing versatile lactones with low ring strain (e.g., valerolactone derivatives). In this work, we design amphiphilic alkylated arginine surfactants that self-assemble into a guanidinium-terminated micellar scaffold, incorporating both arginine and a hydrophobic pocket to mimic the microenvironment of the BVMO active site. This scaffold positions flavin mononucleotide (FMN) and manganese porphyrin centers to enable electron transfer and cooperative catalysis, inspired in part by natural reductases, such as cytochrome P450. In the presence of O as the sole oxidant, this system efficiently oxidizes NADH, transferring electrons first to FMN and then to manganese porphyrin to generate high-valent Mn-oxo intermediates. These intermediates selectivity oxidize various sulfides to corresponding sulfoxides (yield and selectivity as high as 85% and over 98%) and convert cyclopentanone derivatives into the corresponding lactones (yield and selectivity as high as 46% and 100%) of industrial relevance. This strategy integrates supramolecular design with enzyme mimicry, offering a sustainable and highly selective platform for industrial oxidation reactions.
通过拜耳-维利格(B-V)氧化对有机化合物进行选择性氧化对于生产高附加值化学品至关重要。尽管受拜耳-维利格单加氧酶(BVMO)启发并使用黄素辅因子的仿生催化剂已显示出前景,但其有效性受到复制酶活性位点困难的限制,特别是对于生产具有低环张力的通用内酯(例如戊内酯衍生物)。在这项工作中,我们设计了两亲性烷基化精氨酸表面活性剂,它们自组装成胍基封端的胶束支架,结合了精氨酸和疏水口袋以模拟BVMO活性位点的微环境。这个支架定位黄素单核苷酸(FMN)和锰卟啉中心以实现电子转移和协同催化,部分灵感来自于天然还原酶,如细胞色素P450。在以O作为唯一氧化剂的情况下,该系统有效地氧化NADH,首先将电子转移到FMN,然后转移到锰卟啉以生成高价Mn-氧中间体。这些中间体将各种硫化物选择性氧化成相应的亚砜(产率和选择性高达85%和超过98%),并将环戊酮衍生物转化为具有工业相关性的相应内酯(产率和选择性高达46%和100%)。这种策略将超分子设计与酶模拟相结合,为工业氧化反应提供了一个可持续且高度选择性的平台。