2024年第51卷第11期目录

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封面故事:该文研究了在水热条件下,利用H2O2和W18O49相互作用产生的羟基自由基(·OH) 将氧 化石墨烯自上而下切割成3~5 nm蓝光石墨烯量子点(GQDs)。三重态碳烯自由基的Zigzag型位点和 缺陷态导致GQDs表现出激发波长的依赖性,其最佳激发和发射波长分别为330 nm和400 nm。 GQDs表面丰富的含氧官能团和亲水性使其具有良好的水溶性,提升了它的生物兼容性。RT-qPCR 结果显示,GQDs影响巨噬细胞内炎症因子TNF-α和IL-1β的表达,对RAW264.7细胞凋亡产生影响。 激光共聚焦结果显示蓝光石墨烯量子点具有一定的体外细胞成像能力,为今后掺杂型石墨烯量子 点的荧光性能调变和巨噬细胞生物成像提供理论与实验依据。作为零维碳基材料中的超级明星, GQDs独特的光学特性、高分散性、生物兼容性将有助于推动GQDs在活细胞成像、肿瘤免疫标记 和治疗方面发挥积极的作用。
(刘琦,许海燕,苏雨轩,周开红,李常艳. 石墨烯量子点与体外巨噬细胞生物相容性的研究, 本期第 2971~2982 页)

Cover Story:Objective GQDs has become a superstar among zero-dimensional carbon-based materials. As one of the most abundant and important biological elements, its unique optical properties, high dispersion and biocompatibility have attracted extensive attention from scientists. This paper aims to investigate the effect of GQDs on cell viability, apoptosis and inflammatory factor expression in RAW264.7 macrophages and evaluate cell imaging capability of GQDs in vitro, which could provide theoretical basis for the safe application of GQDs in biomedical field.Methods Graphene oxide was prepared by modified Hummer’s method. H2O2 and W18O49 interacted with each other under hydrothermal conditions to produce hydroxyl radicals, which can cut graphene oxide into GQDs using a top-down approach. The microstructure of GQDs was analyzed in detail by X-ray powder diffraction, X-ray photoelectron spectroscopy, transmission electron microscopy, atomic force microscopy, scanning electron microscopy and Fourier infrared transform. The biocompatibility of GQDs on macrophage was evaluated by CCK-8 and dead/alive staining. Flow cytometry results showed the apoptosis of RAW264.7 macrophages induced by GQDs. mRNA expression of inflammatory factors was evaluated by RT-qPCR. Cell imaging is exhibited by laser scanning confocal.Results Hydroxyl radicals are produced by H2O2 and W18O49 under hydrothermal conditions, which contribute to cut graphene oxide into 3-5 nm GQDs in one step. The quantum yield of this method is 43%. Fluorescence lifetime of these blue GQDs is 1.67 ns. The Zigzag-type site and defect state of the triplet carbene radical lead to the excitation wavelength dependence of GQDs, and the optimal excitation and emission wavelengths are 330 nm and 400 nm, respectively. The boundary effect and amphiphilicity of quantum dots make GQDs possess abundant functional groups, vacancy defects and high dispersion, which results in GQDs exhibits good water solubility. RAW264.7 macrophages are incubated with different concentration in DEME medium for 24 h, 48 h and 72 h to evaluate cell. The survival rate of RAW264.7 cells is significantly dependent on the concentration and time of GQDs. CCK-8 and dead/alive staining show that GQDs have high biocompatibility. The effect of 200 mg/L GQDs on apoptosis of RAW264.7 cells is revealed by the scatter plot of bivariate flow cytometry. Under the stimulation of LPS+INF-γ, the expression of TNF-α was increased in RAW264.7 cells, which co-acted with other cytokines to participate in the immune response of RAW264.7 cells in vitro, and mediated the production of IL-1β inflammatory factor in RAW264.7 cells, thereby inducing apoptosis of RAW264.7 cells. The results of RT-qPCR showed that GQDs can inhibit the growth of RAW264.7 cells in vitro, and stimulate them to increase TNF-α expression in RAW264.7 cells, which make cell membrane rupture and produce IL-1β inflammatory factors to induce cell apoptosis. The high biocompatibility of GQDs is attributed to the rich oxygen-containing functional groups (―COOH, ―OH, and CO) on the surface of GQDs, which makes its surface negatively charged and easy to be swallowed into the cell interior when interacting with the cell membrane with low affinity. Transmission electron microscopy (TEM) observed that the GQDs were swallowed into the cells. Furthermore, laser confocal results displayed that blue GQDs has certain ability of cell imaging in vitro.Conclusion The water solubility, low toxicity, fluorescence properties and the induction effect of inflammatory factors of GQDs provide broad prospects for their application in the field of immunotherapy and cell imaging in the future.

综述与专论

GPCR二聚体结构及功能李传宝,黎晨卉,薛礼  [摘要][PDF][HTML]

诱导同源蛋白质二聚化的方法郭俊霞,刘森  [摘要][PDF][HTML]

发动蛋白及其蛋白超家族的功能杨紫雁,蒋昭泓,周倩仪,陈志明  [摘要][PDF][HTML]

闭合蛋白功能的调控机制及影响其表达的因素张世佳,郑娟霞,王琤韦华  [摘要][PDF][HTML]

异柠檬酸脱氢酶1 R132H突变型胶质细胞瘤及其维持端粒的代偿机制闫思翔,李逸凡,李瑶,李奕璇,李香秀,仝津恺,贾舒婷,旦菊花  [摘要][PDF][HTML]

群体感应信号分子对免疫系统的影响马文敏,陈轩岐,马红霞,张文慧,孔令聪,周昱伽,胡元元,贾宇  [摘要][PDF][HTML]

细胞周期蛋白依赖性激酶5的病理学功能及与运动的关系靳丹,黄睿奇,姚婷婷,衣雪洁,高海宁  [摘要][PDF][HTML]

运动调控铁死亡改善帕金森病的潜在机制卢冬磊,张文玉,谭思洁,杨风英  [摘要][PDF][HTML]

α7烟碱型乙酰胆碱受体在阿尔茨海默病中的作用丁道波,牟文君,李鑫,陈欢,侯宏卫,胡清源  [摘要][PDF][HTML]

基于纳米酶的脊髓损伤治疗陈世群,王一丽,陈作红,王浩,张晓东  [摘要][PDF][HTML]

粪菌移植治疗中枢神经系统疾病的基础与临床研究李泓儒,雷彩虹,刘淑文,杨媛,陈海霞,张润,崔银洁,李忠正  [摘要][PDF][HTML]

骨肌串扰防治骨肌共减症的作用及机制赵常红,王菲菲,连红强,王烨颖  [摘要][PDF][HTML]

功能化脂质体及其在植物源天然产物递送中的应用王程蕴,兰欣悦,顾家璇,高欣茹,朱龙佼,李军,方冰,许文涛,田洪涛  [摘要][PDF][HTML]

放射性核素内污染促排剂的机制和现状寇冰燕,郭玉凤,党旭红,刘晓明  [摘要][PDF][HTML]

研究报告

石墨烯量子点与体外巨噬细胞生物相容性的研究刘琦,许海燕,苏雨轩,周开红,李常艳  [摘要][PDF][HTML]

p38促分裂原活化的蛋白激酶信号调控铁死亡参与运动改善2型糖尿病小鼠非酒精性脂肪性肝病张宝文,李颖,高原,盛科研,王志,寇现娟  [摘要][PDF][HTML]

重症哮喘的代谢及细胞特征研究江晨蓉,陈智鸿,刘宏德  [摘要][PDF][HTML]

利用邻位标记-质谱联用技术发掘冠状病毒HCoV-229E互作宿主因子琚睿霞,汪浩勇,刘海楠,刘萱,曹诚  [摘要][PDF][HTML]

技术与方法

基于双竞争挂锁探针改进RNA SNP检测特异性的方法张琴琴,李金泽,张威,李传宇,张芷齐,姚佳,杜鸿,周连群,郭振  [摘要][PDF][HTML]

基于电子顺磁共振技术的谷胱甘肽检测方法王志文,邝健,刘傲锟,魏若彤,于璐,田长麟  [摘要][PDF][HTML]

科教融合

基于综合能力培养的“结构生物学”教学改革李颖杰,郭婷婷,王明钰,武大雷,高翔,王禄山  [摘要][PDF][HTML]

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