中国激光, 2023, 50 (9): 0907102, 网络出版: 2023-04-24  

具有荧光开关特性的喹啉衍生物用于高效选择性标记细胞脂滴 下载: 573次

Quinoline Derivatives with Fluorescent Switching Properties for Efficient Selective Labeling of Cellular Lipid Droplets
作者单位
吉林大学电子科学与工程学院集成光电子学国家重点实验室,吉林 长春 130012
引用该论文

赵力, 周日, 刘冠男, 彭桂衫, 王晨光, 贾晓腾, 卢革宇. 具有荧光开关特性的喹啉衍生物用于高效选择性标记细胞脂滴[J]. 中国激光, 2023, 50(9): 0907102.

Li Zhao, Ri Zhou, Guannan Liu, Guishan Peng, Chenguang Wang, Xiaoteng Jia, Geyu Lu. Quinoline Derivatives with Fluorescent Switching Properties for Efficient Selective Labeling of Cellular Lipid Droplets[J]. Chinese Journal of Lasers, 2023, 50(9): 0907102.

参考文献

[1] Olzmann J A, Carvalho P. Dynamics and functions of lipid droplets[J]. Nature Reviews Molecular Cell Biology, 2019, 20(3): 137-155.

[2] Thiam A R, Beller M. The why, when and how of lipid droplet diversity[J]. Journal of Cell Science, 2017: 315-324.

[3] Thiam A R, Farese Jr R V, Walther T C. The biophysics and cell biology of lipid droplets[J]. Nature Reviews Molecular Cell Biology, 2013, 14(12): 775-786.

[4] Walther T C, Farese R V. Lipid droplets and cellular lipid metabolism[J]. Annual Review of Biochemistry, 2012, 81: 687-714.

[5] Farese R V,, Walther T C. Lipid droplets finally get a little R-E-S-P-E-C-T[J]. Cell, 2009, 139(5): 855-860.

[6] Roitenberg N, Cohen E. Lipid assemblies at the crossroads of aging, proteostasis, and neurodegeneration[J]. Trends in Cell Biology, 2019, 29(12): 954-963.

[7] Krahmer N, Farese R V,, Walther T C. Balancing the fat: lipid droplets and human disease[J]. EMBO Molecular Medicine, 2013, 5(7): 973-983.

[8] Liu Q P, Luo Q, Halim A, et al. Targeting lipid metabolism of cancer cells: a promising therapeutic strategy for cancer[J]. Cancer Letters, 2017, 401: 39-45.

[9] 李晨梦, 邵鹏飞, 吴柄萱, 等. 用于成像性能测试的荧光发光模拟系统[J]. 中国激光, 2022, 29(24): 2407204.

    Li C M, Shao P F, Wu B X, et al. Fluorescence luminescence simulation system for imaging performance testing[J]. Chinese Journal of Lasers, 2022, 29(24): 2407204.

[10] 周陈娟, 潘文良, 陈同生. 青蒿琥酯诱导活性氧依赖性的细胞凋亡[J]. 中国激光, 2011, 38(2): 0204003.

    Zhou C J, Pan W L, Chen T S. Artesunate induces reactive oxygen species-mediated apoptosis[J]. Chinese Journal of Lasers, 2011, 38(2): 0204003.

[11] 邓大伟, 刘飞, 曹洁, 等. 两种近红外荧光探针的合成及肿瘤靶向研究[J]. 中国激光, 2010, 37(11): 2735-2742.

    Deng D W, Liu F, Cao J, et al. Synthesis and tumor targeting research of two near-infrared fluorescence probes[J]. Chinese Journal of Lasers, 2010, 37(11): 2735-2742.

[12] Collot M, Fam T K, Ashokkumar P, et al. Ultrabright and fluorogenic probes for multicolor imaging and tracking of lipid droplets in cells and tissues[J]. Journal of the American Chemical Society, 2018, 140(16): 5401-5411.

[13] Guo L F, Tian M G, Zhang Z Y, et al. Simultaneous two-color visualization of lipid droplets and endoplasmic reticulum and their interplay by single fluorescent probes in lambda mode[J]. Journal of the American Chemical Society, 2021, 143(8): 3169-3179.

[14] Shi L, Li K, Li L L, et al. Novel easily available purine-based AIEgens with colour tunability and applications in lipid droplet imaging[J]. Chemical Science, 2018, 9(48): 8969-8974.

[15] Zhou R, Cui Y Y, Dai J N, et al. A red‐emissive fluorescent probe with a compact single‐benzene‐based skeleton for cell imaging of lipid droplets[J]. Advanced Optical Materials, 2020, 8(13): 1902123.

[16] Fam T, Klymchenko A, Collot M. Recent advances in fluorescent probes for lipid droplets[J]. Materials, 2018, 11(9): 1768.

[17] Collot M, Bou S, Fam T K, et al. Probing polarity and heterogeneity of lipid droplets in live cells using a push-pull fluorophore[J]. Analytical Chemistry, 2019, 91(3): 1928-1935.

[18] Ashoka A, Ashokkumar P, Kovtun Y P, et al. Solvatochromic near-infrared probe for polarity mapping of biomembranes and lipid droplets in cells under stress[J]. The Journal of Physical Chemistry Letters, 2019, 10(10): 2414-2421.

[19] Peng G S, Dai J N, Zhou R, et al. Highly efficient red/NIR-emissive fluorescent probe with polarity-sensitive character for visualizing cellular lipid droplets and determining their polarity[J]. Analytical Chemistry, 2022, 94(35): 12095-12102.

[20] Zhou R, Wang C G, Liang X S, et al. Stimulated emission depletion (STED) super-resolution imaging with an advanced organic fluorescent probe: visualizing the cellular lipid droplets at the unprecedented nanoscale resolution[J]. ACS Materials Letters, 2021, 3(5): 516-524.

[21] Liu G N, Peng G S, Dai J N, et al. STED nanoscopy imaging of cellular lipid droplets employing a superior organic fluorescent probe[J]. Analytical Chemistry, 2021, 93(44): 14784-14791.

[22] Liu G N, Dai J N, Zhou R, et al. A distyrylbenzene-based fluorescent probe with high photostability and large Stokes shift for STED nanoscopy imaging of cellular lipid droplets[J]. Sensors and Actuators B: Chemical, 2022, 353: 131000.

[23] Taki M, Kajiwara K, Yamaguchi E, et al. Fused thiophene-S, S-dioxide-based super-photostable fluorescent marker for lipid droplets[J]. ACS Materials Letters, 2021, 3(1): 42-49.

赵力, 周日, 刘冠男, 彭桂衫, 王晨光, 贾晓腾, 卢革宇. 具有荧光开关特性的喹啉衍生物用于高效选择性标记细胞脂滴[J]. 中国激光, 2023, 50(9): 0907102. Li Zhao, Ri Zhou, Guannan Liu, Guishan Peng, Chenguang Wang, Xiaoteng Jia, Geyu Lu. Quinoline Derivatives with Fluorescent Switching Properties for Efficient Selective Labeling of Cellular Lipid Droplets[J]. Chinese Journal of Lasers, 2023, 50(9): 0907102.

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