화학공학소재연구정보센터
Polymer(Korea), Vol.45, No.6, 872-880, November, 2021
미세다공성 Zn(II)-MOF의 아세틸렌 선택 흡착과 LL-37을 이용한 간암에 대한 항암효과 연구
Microporous Zn(II)-MOF for Selective C2H2 Adsorption and Anti-cancer Activity on Liver Cancer Combined with LL-37
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By employment of a semi-rigid carboxylic acid ligand 5,5' -((5-carboxy-1,3-phenylene)bis(azanediyl))diiso- phthalic acid (H5L) with the -NH- joints, a new porous metal-organic framework (MOF) based on Zn(II) ions as nodes has been generated in success, and its chemical formula is {[Zn3(μ3-OH)(L)(H2O)3]·3DEF·H2O}n (1). Owing to its Lewis basic -NH- joints and the π-electron-rich benzene rings on the skeleton, the activated complex 1 offers a favourable pore environment for binding C2H2 in preference to CO2 and CH4. The inhibitory activity of compound on the liver cancer viability was determined through exploiting the Cell Counting Kit-8 kit. Afterwards, the invasion and migration ability for the liver cancer cells was measured after indicated treatment. Multiple binding interactions are identified by performing the molecular docking simulation, indicating the stabilization effect of the Zn complex towards the target protein, and therefore, the proposed drug molecule exhibits good anticancer activities.
  1. Gravitz L, Nature, 516(7529), S1 (2014)
  2. Marengo A, Rosso C, Bugianesi E, Annu. Rev. Med., 67, 103 (2016)
  3. Anwanwan D, Singh SK, Singh S, Saikam V, Singh R, Biochim. Biophys. Acta Rev. Cancer, 1873, 188314 (2020)
  4. Zeng H, Xie M, Huang Y, Zhao Y, Xie X, Bai J, Wan M, Krishna R, Lu W, Li D, Angew. Chem.-Int. Edit., 58, 8515 (2019)
  5. Li YT, Zhang JW, Lv HJ, Hu MC, Li SN, Jiang YC, Zhai QG, Inorg. Chem., 59(14), 10368 (2020)
  6. Fan W, Wang X, Liu X, Xu B, Zhang X, Wang W, Wang X, Wang Y, Dai F, Yuan D, Sun D, ACS Sustain. Chem. Eng., 7, 2134 (2019)
  7. Feng X, Li RF, Wang LY, Ng SW, Qin GZ, Ma LF, CrystEngComm, 17, 7878 (2015)
  8. Feng X, Feng YQ, Liu L, Wang LY, Song HL, Ng SW, Dalton Trans., 42, 7741 (2013)
  9. Fan L, Zhao D, Li B, Chen X, Wang F, Deng Y, Niu Y, Zhang X, CrystEngComm, 23, 1218 (2021)
  10. Hu ML, Abbasi-Azad M, Habibi B, Rouhani F, Moghanni-Bavil-Olyaei H, Liu KG, Morsali A, ChemPlusChem, 85, 2397 (2020)
  11. Hu ML, Razavi SA, Piroozzadeh M, Morsali A, Inorg. Chem. Front., 7, 1598 (2020)
  12. Hu ML, Mohammad YM, Morsali A, Coord. Chem. Rev., 387, 415 (2019)
  13. Zhang J, Zhao J, Sun Y, Xin M, Zhang D, Bian R, Environ. Sci. Pollut. R., 28, 34902 (2021)
  14. Xu H, Du H, Kang L, Cheng Q, Feng D, Xia S, J. Renew. Mater., 9, 2129 (2021)
  15. Duan C, Yu Y, Li J, Li L, Huang B, Chen D, Xi H, Sci. China Mater., 64, 1305 (2021)
  16. Wang D, Liu B, Yao S, Wang T, Li G, Huo Q, Liu YA, Chem. Commun., 51, 15287 (2015)
  17. Lee JH, Lee HJ, Lim SY, Kim BG, Choi JW, J. Am. Chem. Soc., 137(22), 7210 (2015)
  18. Beheshti A, Bahrani-Pour M, Kolahi M, Shakerzadeh E, Motamedi H, Mayer P, Appl. Organomet. Chem., 35, e6173 (2021)
  19. Mukherjee S, Ganguly S, Manna K, Mondal S, Mahapatra S, Das D, Inorg. Chem., 57(7), 4050 (2018)
  20. Suto K, Yamazaki Y, Morita T, Mizuno H, J. Biol. Chem., 280, 2126 (2005)