综述与进展

亚铁离子荧光探针的研究进展

  • 马素芳 ,
  • 余强 ,
  • 陆利 ,
  • 李丽红 ,
  • 刘文 ,
  • 武志芳 ,
  • 李思进
展开
  • a 山西医科大学基础医学院 太原 030001
    b 山西医科大学医学影像学院 太原 030001
    c 山西医科大学第一医院核医学科 太原 030001
* Corresponding authors. E-mail: ;

收稿日期: 2020-06-02

  修回日期: 2020-07-10

  网络出版日期: 2020-08-01

基金资助

山西省青年科技研究基金(201901D211348); 山西省高等学校科技创新(2019L0409); 山西省高等学校科技创新(2019L0444); 山西医科大学博士启动基金(BS03201609)

Recent Progress in Fluorescent Probes for the Detection of Ferrous Ion

  • Sufang Ma ,
  • Qiang Yu ,
  • Li Lu ,
  • Lihong Li ,
  • Wen Liu ,
  • Zhifang Wu ,
  • Sijin Li
Expand
  • a School of Basic Medical Science, Shanxi Medical University, Taiyuan 030001
    b Medical Imaging Department, Shanxi Medical University, Taiyuan 030001
    c Department of Nuclear Medicine, First Hospital of Shanxi Medical University, Taiyuan 030001

Received date: 2020-06-02

  Revised date: 2020-07-10

  Online published: 2020-08-01

Supported by

the Youth Science Foundation of Shanxi Province(201901D211348); the Scientific and Technological Innovation Programs of Higher Education Institutions in Shanxi Province(2019L0409); the Scientific and Technological Innovation Programs of Higher Education Institutions in Shanxi Province(2019L0444); the Ph. D Startup Fund of Shanxi Medical University(BS03201609)

摘要

铁作为生命系统中最丰富的过渡金属元素, 在许多生理和病理过程中发挥着无可替代的作用. 铁平衡失调不仅会导致诸如癌症、心血管疾病、神经退行性疾病等的发生和发展, 而且还会造成细胞铁死亡. 尽管细胞中的铁有Fe 2+和Fe 3+两种形式, 但细胞还原性微环境使其主要以Fe 2+形式存在. 因此, 开发一种对Fe 2+的特异性检测技术有助于深入了解Fe 2+与人类健康和疾病的关系. 随着荧光成像技术的发展, 近年来特异性检测Fe 2+的荧光探针引起学者们的极大关注. 对近10年来报道的Fe 2+荧光探针, 根据探针的设计思路、与Fe 2+的作用机理、光学特性以及其生物应用等方面进行了总结, 并对Fe 2+荧光探针的发展前景进行了展望.

本文引用格式

马素芳 , 余强 , 陆利 , 李丽红 , 刘文 , 武志芳 , 李思进 . 亚铁离子荧光探针的研究进展[J]. 有机化学, 2021 , 41(1) : 229 -240 . DOI: 10.6023/cjoc202006003

Abstract

Irons, as the most abundant transition metal in living system, play an irreplaceable role in many physiological and pathological processes. The misregulation of Fe 2+ homeostasis not only affects the occurence and delelopment of various diseases, such as cancer, cardiovascular disease and neurodegenerative disorders, but also induces ferroptosis. Although two forms of iron (Fe 2+ and Fe 3+) exist in cells, reducing microenvironment of cells makes it exist mainly in the form of Fe 2+. Therefore, developing a sensitive approach for Fe 2+ is particularly important because it may contribute to the in-depth understanding of the relationship between Fe 2+ and human health and disease. In recent years, with the rapid development of fluorescent imaging technique, fluorescent probes for the sensitive detection of Fe 2+ have attracted great interest. Fe 2+ fluorescent probes reported in the last ten years are summarized, according to probes design, sensing mechanisms with Fe 2+, optical properties and biological application. In addition, the development prospect of Fe 2+ fluorescent probes is predicted.

参考文献

[1]
Theil E.C.; Goss D.J. Chem. Rev. 2009, 109, 4568.
[2]
Hentze M.W.; Muckenthaler M.U.; Galy B.; Camaschella C. Cell 2010, 142, 24.
[3]
Meynard D.; Babitt J.L.; Lin H.Y. Blood 2014, 123, 168.
[4]
Ganz T. Physiol. Rev. 2013, 93, 1721.
[5]
Wang J.; Pantopoulos K. Biochem. J. 2011, 434, 365.
[6]
Kaplan C.D.; Kaplan J. Chem. Rev. 2009, 109, 4536.
[7]
Zeng G.; Li H.; Wei Y.; Xuan W.; Zhang R.; Breden L.E.; Wang W.; Liang F.S. ACS Synth. Biol. 2017, 6, 921.
[8]
Enami S.; Sakamoto Y.; Colussi A.J. Proc. Natl. Acad. Sci. U. S. A. 2014, 111, 623.
[9]
Wang J.; Pantopoulos K. Biochem. J. 2011, 434, 365.
[10]
Kakhlon O.; Cabantchik Z.I. Free Radical Biol. Med. 2002, 33, 1037.
[11]
Liu T.; Liu W.; Zhang M.; Yu W.; Gao F.; Li C.; Wang S.B.; Feng J.; Zhang X.Z. ACS Nano 2018, 12, 12181.
[12]
Hezode C.; Dhumeaux D. Gastroenterol. Clin. Biol. 2000, 24, B82.
[13]
von Haehling, S.; Jankowska, E.A.; van Veldhuisen, D.J.; Ponikowski, P.; Anker, S.D. Nat. Rev. Cardiol. 2015, 12, 659.
[14]
Oshiro S.; Morioka M.S.; Kikuchi M. Adv. Pharmacol. Sci. 2011, 1, 378278.
[15]
Dixon S.J.; Lemberg K. M.; Lamprecht M.R.; Skouta R.; Zaitsev E.M.; Gleason C.E.; Patel D.N.; Bauer A.J.; Cantley A.M.; Yang W.S.; Morrison B.; Stockwell B.R. Cell 2012, 149, 1060.
[16]
Richardson D.R.; Lane D.J.R.; Becker E.M.; Huang M.L.-H.; Whitnall M.; Rahmanto Y.S.; Sheftel A.D.; Ponka P. Proc. Natl. Acad. Sci. U. S. A. 2010, 107, 10775.
[17]
Zhang S.X.; Niu Q.M.; Wu S.Z.; Lv H.J.; Xing G.W. Chin. J. Org. Chem. 2019, 39, 940. (in Chinese)
[17]
( 张晟曦, 牛晴雯, 吴松泽, 吕海娟, 邢国文, 有机化学, 2019, 39, 940.).
[18]
Wang S.Q.; Shen S.L.; Zhang Y.R.; Dai X.; Zhao B.X. Chin. J. Org. Chem. 2014, 34, 1717. (in Chinese)
[18]
( 王胜清, 申世立, 张延如, 戴溪, 赵宝祥, 有机化学, 2014, 34, 1717.).
[19]
Lv T.Y.Z.; Zhu K.N.; Liu B. Chin. J. Org. Chem. 2019, 39, 2786. (in Chinese)
[19]
(吕陶玉赜, 朱康宁, 刘斌, 有机化学, 2019, 39, 2786.).
[20]
Jiao C.P.; Liu Y.Y.; Lu W.J.; Zhang P.P.; Wang Y.F. Chin. J. Org. Chem. 2019, 39, 591. (in Chinese)
[20]
( 矫春鹏, 刘媛媛, 路文娟, 张平平, 王延风, 有机化学, 2019, 39, 591.).
[21]
Cheng Y.W.; Shabir G.; Li X.; Fang L.P.; Xu L.Y.; Zhang H. F.; Li E.M. Chem. Commun. 2020, 56, 1070.
[22]
Ma S.F.; Fang D.C.; Ning B.M.; Li M.F.; He L.; Gong B. Chem. Commun. 2014, 50, 6475.
[23]
Ding Y.B.; Tang Y.Y.; Zhu W.H.; Xie Y.S. Chem. Soc. Rev. 2015, 44, 1101.
[24]
Ding Y.B.; Zhu W.H.; Xie Y.S. Chem. Rev. 2017, 117, 2203.
[25]
Xie Y.S.; Wei P.C.; Li X.; Hong T.; Zhang K.; Furuta H. J. Am. Chem. Soc. 2013, 135, 19119.
[26]
Tang Y.Y.; Ding Y.B.; Li X.; Ågren H.; Li T.; Zhang W.B.; Xie Y.S. Sens. Actuators B, 2015, 206, 291.
[27]
Wei S.; Tan L.; Yin X.; Wang R.; Shan X.; Chen Q.; Li T.; Zhang X.; Jiang C.; Sun G. Analyst 2020, 145, 2357.
[28]
Mo Q.; Jia M.; Zhuang P.; Yang S.; Su W.; Zhu Y.; Shao N.; Zhao M. Anal. Methods 2019, 11, 936.
[29]
Yang S.; Jiang Z.Y.; Chen Z.Z.; Tong L.L.; Lu J.; Wang J.H. Microchim. Acta 2015, 182, 1911.
[30]
Aron A.T.; Reeves A.G.; Chang C.J. Curr. Opin. Chem. Biol. 2018, 43, 113.
[31]
Hirayama T. Acta Histochem. Cytochem. 2018, 51, 137.
[32]
Hirayama T. Free Radical Biol. Med. 2019, 133, 38.
[33]
Hirayama T.; Okuda K.; Nagasawa H. Chem. Sci. 2013, 4, 1250.
[34]
Mukaide T.; Hattori Y.; Misawa N.; Funahashi S.; Jiang L.; Hirayama T.; Nagasawa H.; Toyokuni S. Free Radical Res. 2014, 48, 990.
[35]
Niwa M.; Hirayama T.; Okuda K.; Nagasawa H. Org. Biomol. Chem. 2014, 12, 6590.
[36]
Hirayama T.; Tsuboi H.; Niwa M.; Miki A.; Kadota S.; Ikeshita Y.; Okuda K.; Nagasawa H. Chem. Sci. 2017, 8, 4858.
[37]
Niwa M.; Hirayama T.; Oomoto I.; Wang D.O.; Nagasawa H. ACS Chem. Biol. 2018, 13, 1853.
[38]
Hirayama T.; Kadota S.; Niwa M.; Nagasawa H. Metallomics 2018, 10, 794.
[39]
Yang X.P.; Wang Y.S.; Liu R.; Zhang Y.R.; Tang J.; Yang E.B.; Zhang D.; Zhao Y.F.; Ye Y. Sens. Actuators B, 2019, 288, 217.
[40]
Dong B.; Song W.; Lu Y.; Tian M.; Kong X.; Mehmood A.H., Lin W. Sens. Actuators B, 2019, 305, 127470.
[41]
Zheng J.; Feng S.; Gong S.; Xia Q.; Feng G. Sens. Actuators B, 2020, 309, 127796.
[42]
Lee Y.H.; Verwilst P.; Kim H.S.; Ju J.; Kim J. S.; Kim K. Chem. Commun. 2019, 55, 12136.
[43]
Gao G.Q.; Wang X.; Wang Z.M.; Jin X.C.; Ou L.; Zhou J.J.; Xie P.H. Talanta 2020, 215, 120908.
[44]
Maiti S.; Aydin Z.; Zhang Y.; Guo M.L. Dalton Trans. 2015, 44, 8942.
[45]
Zhang X.; Chen Y.N.; Cai X.Y.; Liu C.Y.; Jia P.; Li Z.L.; Zhu H.C.; Yu Y.M.; Wang K.; Li X.W.; Sheng W.L.; Zhu B.C. Dyes Pigm. 2020, 174, 108065.
[46]
Au-Yeung H.Y.; Chan J.; Chantarojsiri T.; Chang C.J. J. Am. Chem. Soc. 2013, 135, 15165.
[47]
Wu L.J.; Ding Q.; Wang X.; Li P.; Fan N.N.; Zhou Y.Q.; Tong L.L.; Zhang W.; Zhang W.; Tang B. Anal. Chem. 2020, 92, 1245.
[48]
Aron A.T.; Heffern M.C.; Lonergan Z.R.; Vander Wal M.N.; Blank B.R.; Spangler B.; Zhang Y.F.; Park H.M.; Stahl A.; Renslo A.R.; Skaar E.P.; Chang C.J. Proc. Natl. Acad. Sci. U. S. A. 2017, 114, 12669.
[49]
He X.; Zhang G.B.; Chi Z.X.; Dai P.F.; Huang J.Y.; Yang J.X. Chem. Pap. 2017, 71, 2209.
[50]
Xuan W.M.; Pan R.; Wei Y.Y.; Cao Y.T.; Li H.Q.; Liang F.S.; Liu K.J.; Wang W. Bioconjugate Chem. 2016, 27, 302.
[51]
Long L.L.; Wang N.; Han Y.Y.; Huang M.Y.; Yuan X.Q.; Cao S.Y.; Gong A. H.; Wang K. Analyst 2018, 143, 2555.
[52]
Hou G.G.; Wang C.H.; Sun J.F.; Yang M.Z.; Lin D.; Li H.J. Biochem. Biophys. Res. Commun. 2013, 439, 459.
[53]
Qu Z.J.; Li P.; Zhang X. X.; Han K.L. J. Mater. Chem. B. 2016, 4, 887.
[54]
Santhoshkumar S.; Velmurugan K.; Prabhu J.; Radhakrishnan G.; Nandhakumar R. Inorg. Chim. Acta. 2016, 439, 1.
[55]
Praveen L.; Reddy M.L.P.; Varma R.L. Tetrahedron Lett. 2010, 51, 6626.
[56]
Li P.; Xiao H.B.; Tang B. Chin. J. Chem. 2012, 30, 1992.
[57]
Spangler B.; Morgan C.W.; Fontaine S.D.; Vander Wal M.N.; Chang C.J.; Wells J.A.; Renslo A.R. Nat. Chem. Biol. 2016, 12, 680.
[58]
Aron A.T.; Loehr M.O.; Bogena J.; Chang C.J. J. Am. Chem. Soc. 2016, 138, 14338.
[59]
Li P.; Fang L.B.; Zhou H.; Zhang W.; Wang X.; Li N.; Zhong H.B.; Tang B. Chem. -Eur. J. 2011, 17, 10520.
[60]
Liu Z.C.; Wang S.N.; Li W.Y.; Tian Y. Anal. Chem. 2018, 90, 2816.
文章导航

/