Issue
Korean Chemical Engineering Research,
Vol.57, No.4, 445-454, 2019
LDH 나노입자 기반의 바이오 이미징 소재
Layered Double Hydroxide Nanoparticles for Bio-Imaging Applications
Layered double hydroxides (LDHs) 나노입자는 특유의 층상형 결정구조에서 기인된 물리화학적 물성 및 생체친화성을 바탕으로 나노-바이오 분야에서 주목을 받고 있다. 바이오 이미징은 질병의 진단과 치료(테라노스틱스, theranostics=therapy+diagnosis)에 다양하게 활용될 수 있는 핵심적인 분야로 차세대 맞춤의학으로의 새로운 패러다임 실현을 위해서 보다 정확하고 빠른 진단기술이 절실히 요구되고 있다. 이를 실현하기 위한 대안으로 나노기술이 접목된 고감도 분자영상 관련 연구들이 활발히 진행되고 있다. 본 총설에서는 LDH 나노입자를 기반으로 하는 바이오 이미징 시스템의 개발동향에 관하여 소개하고 바이오 이미징에 적합한 나노소재의 구조 및 합성 방법에 대하여 설명하였다. 또한 임상 의학에서 현재 많이 사용되고 있는 형광을 이용한 광학영상, 자기공명영상(MRI), 핵의학영상(PET), 컴퓨터 단층 촬영(CT) 등 다양한 분야에서 어떻게 LDH 나노입자를 이용하여 나노 프로브 개발을 할 수 있는지 연구사례를 기술하면서 나노기술과 첨단영상기술이 융합된 획기적인 고감도 나노 바이오 이미징 시스템 개발 및 그 잠재력에 대하여 전망해 보았다.
Layered double hydroxides (LDHs) nanoparticles have emerged as novel nanomaterials for bio-imaging applications due to its unique layered structure, physicochemical properties, and good biocompatibility. Bio-imaging is one of the most important fields for medical applications in clinical diagnostics and therapeutics of various diseases. Enhanced diagnostic techniques are needed to realize new paradigm for next-generation personalized medicine through nanoscale materials. When nanotechnology is introduced into bio-imaging system, nanoparticle probes can endow imaging techniques with enhanced ability to obtain information about biological system at the molecular level. In this review, we summarize structural features of LDH nanoparticles with current issues of bio-imaging system. LDH nanoparticle probes are also discussed through in vitro as well as in vivo studies in various bio-imaging techniques including fluorescence imaging, magnetic resonance imaging (MRI), positron emission tomography (PET), and computed X-ray tomography (CT), which will have the potential in the development of the advanced nanoparticles with high sensitivity and selectivity.
[References]
  1. Qian X, Peng XH, Ansari DO, Yin-Goen Q, Chen GZ, Shin DM, Yang L, Young AN, Wang MD, Nie S, Nat. Biotechnol., 26, 83, 2007
  2. Michalet X, Pinaud FF, Bentoilla LA, Tsay JM, Doose S, Li JJ, Sundaresan G, Wu AM, Gambhir SS, Weiss S, Science, 307, 5838, 2005
  3. Cao YW, Jin R, Mirkin CA, Science, 297, 1536, 2002
  4. Weissleder R, Science, 312, 1168, 2006
  5. Ahrens ET, Bulte JWM, Nat. Rev. Immunol., 13, 755, 2013
  6. Yang J, Lee CH, Ko HJ, Suh JS, Yoon HG, Lee K, Huh YM, Haam S, Angew. Chem.-Int. Edit., 46, 8836, 2007
  7. Lee DH, Koo H, Sun IC, Ryu JH, Kim K, Kwon IC, Chem. Soc. Rev., 41, 2656, 2012
  8. Cheon J, Lee JH, Accounts Chem. Res., 41, 1630, 2008
  9. Choi JS, Park JC, Nah H, Woo S, Oh J, Kim KM, Cheon GJ, Chang YC, Yoo JY, Cheon J, Angew. Chem.-Int. Edit., 47, 6259, 2008
  10. Yang J, Lim EM, Lee HJ, Park J, Lee SC, Lee K, Yoon HG, Suh JS, Huh YM, Haam S, Biomaterials, 29, 2548, 2008
  11. Shin TH, Choi Y, Kim S, Cheon J, Chem. Soc. Rev., 44, 4501, 2015
  12. Ashton JR, West JL, Badea CT, Front. Pharmacol., 6, 256, 2015
  13. Yoon YS, Lee BI, Lee KS, Im GH, Byeon SH, Lee JH, Lee IS, Adv. Funct. Mater., 19(21), 3375, 2009
  14. Park DH, Choi G, Choy JH, Photofunctional Layered Materials, 166, 137, 2015
  15. Huang G, Zhang KL, Chen S, Li SH, Wang LL, Wang LP, Liu R, Gao J, Yang HH, J. Mater. Chem. B, 5, 3629, 2017
  16. Shi S, Fliss BC, Gu Z, Zhu Y, Hong H, Valdovinos HF, et al., Sci. Rep., 5, 16930, 2015
  17. Wei PR, Cheng SH, Liao WN, Kao KC, Weng CF, Lee, CH, J. Mater. Chem., 22, 5503, 2012
  18. Wang X, Li JG, Zhu Q, Li X, Sun X, Sakka Y, J. Alloy. Compd., 603, 28, 2014
  19. Cha BG, Kim J, “Functional Mesoporous Silica Nanoparticles for Bio-imaging Applications,” WIREs Nanomed Nanobiotechnol., e1515(2018).
  20. Medintz IL, Uyeda HT, Goldman ER, Mattoussi H, Nat. Mater., 4(6), 435, 2005
  21. Laurent S, Forge D, Port M, Roch A, Robic C, Elst LV, Muller RN, Chem. Rev., 108(6), 2064, 2008
  22. Na HB, Song IC, Hyeon T, Adv. Mater., 21(21), 2133, 2009
  23. Choi JS, Jun YW, Yeon SI, Kim HC, Shin JS, Cheon J, J. Am. Chem. Soc., 128(50), 15982, 2006
  24. Huang HC, Barua S, Sharma G, Dey SK, Rege K, J. Control. Release, 155, 344, 2011
  25. Oh JM, Hwang SH, Choy JH, Solid State Ion., 151(1-4), 285, 2002
  26. Chung HE, Park DH, Choy JH, Choi SJ, Appl. Clay. Sci., 65-66, 24, 2012
  27. Peng L, Mei X, He J, Xu J, Zhang W, Liang R, Wei M, Evans DG, Duan X, Adv. Mater., 30, 170738, 2018
  28. Choy JH, Kwak SY, Jeong YJ, Park JS, Angew. Chem.-Int. Edit., 39, 4041, 2000
  29. Choy JH, Kwak SY, Park JS, Jeong YJ, J. Mater. Chem., 11, 1671, 2001
  30. Oh JM, Choi SJ, Kim ST, Choy JH, Bioconjugate Chem., 17, 1411, 2006
  31. Oh JM, Choi SJ, Lee GE, Kim JE, Choy JH, Chem. Asian. J., 4, 67, 2009
  32. Wei PR, Kuthati Y, Kankala RK, Lee CH, Int. J. Mol. Sci., 16(9), 20943, 2015
  33. Park DH, Cho J, Kwon OJ, Yun CO, Choy JH, Angew. Chem.-Int. Edit., 55, 4582, 2016
  34. Li B, Gu Z, Kurniawan N, Chen W, Xu ZP, Adv. Mater., 29, 170037, 2017
  35. Wang L, Xing H, Zhang S, Ren Q, Pan L, Zhang K, Bu W, Zheng X, Zhou L, Peng W, Hua Y, Shi J, Biomaterials, 34, 3390, 2013
  36. Guan S, Liang R, Li C, Wei M, Talanta, 165, 297, 2017
  37. Arratia-Quijada J, Jimenez CS, Gurinov A, Centeno PA, Andrade CI, Arizaga CGG, Mater. Sci. Eng. B-Solid State Mater. Adv. Technol., 203, 7, 2016
  38. Kim SY, Oh JM, Lee JS, Kim TJ, Choy JH, J. Nanosci. Nanotechnol., 8, 5181, 2008
  39. Mei X, Wang W, Yan L, Hu T, Liang R, Yan D, Wei M, Evans D, Duan X, Biomaterials, 165, 14, 2018
  40. Zuo H, Chen W, Li B, Xu K, Cooper H, Gu Z, Xu ZP, Chem. Eur. J., 23, 14299, 2017
  41. Li B, Tang J, Chen W, Hao G, Kurniawan N, Gu Z, Xu ZP, Biomaterials, 177, 40, 2018
  42. Kim TH, Lee WJ, Lee JY, Paek SM, Oh JM, Dalton Trans., 43, 10430, 2014
  43. Xu ZP, Kurniawan ND, Bartlett PF, Lu GQ, Chem. Eur. J., 13, 2824, 2007
  44. Choy JH, Kwak SY, Park JS, Jeong YJ, Portier J, J. Am. Chem. Soc., 121(6), 1399, 1999
  45. Choy JH, Choi SJ, Oh JM, Park T, Appl. Clay Sci., 36, 122, 2007
  46. Oh JM, Park DH, Choi SJ, Choy JH, Recent Pat. Nanotech., 6, 200, 2012
  47. Mishra G, Dash B, Pandey S, Appl. Clay Sci., 153, 172, 2018
  48. Oh JM, Choi SJ, Lee GE, Han SH, Choy JH, Adv. Funct. Mater., 19(10), 1617, 2009
  49. Kurreck J, Angew. Chem.-Int. Edit., 48, 1378, 2009
  50. Caravan P, Ellison JJ, McMurry TJ, Lauffer RB, Chem. Rev., 99(9), 2293, 1999