富精氨酸肽-铑纳米团簇@还原石墨烯氧化物复合体作为一种高选择性、高活性的尿酸酶类纳米酶,用于降解尿酸并抑制尿酸盐晶体。

IF 4.7 2区 化学 Q1 CHEMISTRY, INORGANIC & NUCLEAR
Inorganic Chemistry Pub Date : 2024-07-22 Epub Date: 2024-07-07 DOI:10.1021/acs.inorgchem.4c01801
Yan Liu, Ning Li, Kang Su, Jiamei Du, Rong Guo
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引用次数: 0

摘要

金属纳米酶为生物催化和生物医学提供了极具吸引力的机遇。然而,由于天然酶的催化口袋缺乏三维(3D)结构,制造同时具有高催化选择性和活性的纳米酶仍然是一个巨大的挑战。在此,我们基于单一肽,将铑纳米簇(RhNC)、还原氧化石墨烯(rGO)和原胺(PRTM,一种典型的富含精氨酸的肽)方便地集成到一个复合体中。值得注意的是,PRTM-RhNC@rGO 复合材料在催化降解尿酸方面表现出卓越的选择性、活性和稳定性。PRTM-RhNC@rGO 复合材料催化尿酸氧化的反应速率常数约为 1.88 × 10-3 s-1 (4 μg/mL),是已报道的 RhNP(k = 5 × 10-5 s-1,20 μg/mL)的 37.6 倍。酶动力学研究表明,PRTM-RhNC@rGO 复合材料对尿酸的亲和力与天然尿酸酶相似。此外,PRTM-RhNC@rGO 纳米酶在硫物质和卤化物离子存在时仍具有类似尿酸酶的活性,显示出惊人的抗毒能力。结构-功能关系分析表明,PRTM-RhNC@rGO 复合纳米酶的底物结合位点靠近催化位点,而催化位点位于二维 rGO 和 PRTM 的密闭空间中,因此复合纳米酶具有高性能。基于突出的尿酸酶样活性和 PRTM 与尿酸的相互作用,PRTM-RhNC@rGO 复合材料能显著延缓尿酸盐结晶。本研究为基于简单多肽,模仿天然酶的口袋状结构,在催化位点附近设计具有合适结合位点的金属纳米酶提供了新的思路,有助于拓宽高性能纳米酶在生物医学领域的实际应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Arginine-Rich Peptide-Rhodium Nanocluster@Reduced Graphene Oxide Composite as a Highly Selective and Active Uricase-like Nanozyme for the Degradation of Uric Acid and Inhibition of Urate Crystal.

Arginine-Rich Peptide-Rhodium Nanocluster@Reduced Graphene Oxide Composite as a Highly Selective and Active Uricase-like Nanozyme for the Degradation of Uric Acid and Inhibition of Urate Crystal.

Metal nanozymes have offered attractive opportunities for biocatalysis and biomedicine. However, fabricating nanozymes simultaneously possessing highly catalytic selectivity and activity remains a great challenge due to the lack of three-dimensional (3D) architecture of the catalytic pocket in natural enzymes. Here, we integrate rhodium nanocluster (RhNC), reduced graphene oxide (rGO), and protamine (PRTM, a typical arginine-rich peptide) into a composite facilely based on the single peptide. Remarkably, the PRTM-RhNC@rGO composite displays outstanding selectivity, activity, and stability for the catalytic degradation of uric acid. The reaction rate constant of the uric acid oxidation catalyzed by the PRTM-RhNC@rGO composite is about 1.88 × 10-3 s-1 (4 μg/mL), which is 37.6 times higher than that of reported RhNP (k = 5 × 10-5 s-1, 20 μg/mL). Enzyme kinetic studies reveal that the PRTM-RhNC@rGO composite exhibits a similar affinity for uric acid as natural uricase. Furthermore, the uricase-like activity of PRTM-RhNC@rGO nanozymes remains in the presence of sulfur substances and halide ions, displaying incredibly well antipoisoning abilities. The analysis of the structure-function relationship indicates the PRTM-RhNC@rGO composite features the substrate binding site near the catalytic site in a confined space contributed by 2D rGO and PRTM, resulting in the high-performance of the composite nanozyme. Based on the outstanding uricase-like activity and the interaction of PRTM and uric acid, the PRTM-RhNC@rGO composite can retard the urate crystallization significantly. The present work provides new insights into the design of metal nanozymes with suitable binding sites near catalytic sites by mimicking pocket-like structures in natural enzymes based on simple peptides, conducing to broadening the practical application of high-performance nanozymes in biomedical fields.

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来源期刊
Inorganic Chemistry
Inorganic Chemistry 化学-无机化学与核化学
CiteScore
7.60
自引率
13.00%
发文量
1960
审稿时长
1.9 months
期刊介绍: Inorganic Chemistry publishes fundamental studies in all phases of inorganic chemistry. Coverage includes experimental and theoretical reports on quantitative studies of structure and thermodynamics, kinetics, mechanisms of inorganic reactions, bioinorganic chemistry, and relevant aspects of organometallic chemistry, solid-state phenomena, and chemical bonding theory. Emphasis is placed on the synthesis, structure, thermodynamics, reactivity, spectroscopy, and bonding properties of significant new and known compounds.
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