Shear-induced color transition of PDA (polydiacetylene) liposome in polymeric solutions

  • Lee, Sung-Sik (School of Chemical and Biological Engineering, Seoul National University) ;
  • Chae, Eun-Hyuk (Department of Chemical and Biological Engineering, Korea University) ;
  • Ahn, Dong-June (Department of Chemical and Biological Engineering, Korea University) ;
  • Ahn, Kyung-Hyun (School of Chemical and Biological Engineering, Seoul National University) ;
  • Yeo, Jong-Kee (LG Chemical Limited)
  • 발행 : 2007.03.31

초록

The polydiacethylene (PDA) is known to change its color by mechanical shear. The shear-induced color transition has been reported with elastomer or film type of PDA. In this paper, we newly investigated the transition with liposome type of PDAs in polymeric solutions. The liposomes were dispersed in Poly(vinyl alcohol) 2% + Sodium borate 1%, Poly(vinyl alcohol) 15% and Hyaluronic acid 1% (PVA/B, PVA, HA). The shear stress was continuously imposed to each solution by stress control type rheometer with coni-cylinder fixture. The degree of color transition was quantified with the characteristic absorbance peak at 540 nm (blue) and 640 nm (red). As a result, PDA liposome in PVA/B solution changed the color from blue to red upon increasing the magnitude of shear (from 0 to 100 Pa) and the duration of shear-imposed time (from 0 to 5400 sec). Meanwhile, PDA liposome in HA or PVA solution did not noticeably change the color, even though the low shear viscosities of the solutions were kept almost constant. This color transition of PDA liposome is expected to measure the magnitude of shear, and to distinguish different responses of polymeric solutions to the applied shear.

키워드

참고문헌

  1. Ahn, D. J., E.-H. Chae, G.. S. Lee, H.-Y. Shim, T.-E. Chang, K.- D. Ahn and J.-M. Kim, 2003, Colorimetric reversibility of polydiacetylene supramolecules having enhanced hydrogenbonding under thermal and pH stimuli, J. Am Chem. Soc. 125, 8976-8977 https://doi.org/10.1021/ja0299001
  2. Carpick, R.W., D.Y. Sasaki and A.R. Burns, 2000, First observation of mechanochromism at the nanometer scale, Langmuir 16, 1270-1278 https://doi.org/10.1021/la990706a
  3. Charych, D.H., J.O. Nagy, W. Spevak and M.D. Bednarski, 1993, Direct Colorimetric Detection of a Receptor-Ligand Interaction by a Polymerized Bilayer Assembly, Science 261, 585-588 https://doi.org/10.1126/science.8342021
  4. Cheng, Q. and R.C. Stevens, 1997, Coupling of an induced fit enzyme to polydiacetylene thin films: Colorimetric detection of glucose, Adv. Mater 9, 481-483 https://doi.org/10.1002/adma.19970090605
  5. Cheng, Q. and R.C. Stevens, 1998, Charge-induced chromatic transition of amino acid-derivatized polydiacetylene liposomes, Langmuir 14, 1974-1976 https://doi.org/10.1021/la980185b
  6. Jelinek, R., 2000, Colorimetric sensors for drug discovery and biomedical diagnostics, Drug. Develop. Res. 50, 497-501 https://doi.org/10.1002/1098-2299(200007/08)50:3/4<497::AID-DDR33>3.0.CO;2-U
  7. Kew, S.J. and E.A.H. Hall, 2006, pH response of carboxy-terminated colorimetric polydiacetylene vesicles, Anal. Chem. 78, 2231-2238 https://doi.org/10.1021/ac0517794
  8. Lio, A., A. Reichert, D.J. Ahn, J.O. Nagy, M. Salmeron and D.H. Charych, 1997, Molecular imaging of thermochromic carbohydrate- modified polydiacetylene thin films, Langmuir 13, 6524-6532 https://doi.org/10.1021/la970406y
  9. Maerker, J.M. and S.W. Sinton, 1986, Rheology Resulting from Shear-Induced Structure in Associating Polymer-Solutions, J. Rheol. 30, 77-99 https://doi.org/10.1122/1.549898
  10. Nallicheri, R.A. and M.F. Rubner, 1991, Investigations of the Mechanochromic Behavior of Poly(Urethane Diacetylene) Segmented Copolymers, Macromolecules 24, 517-525 https://doi.org/10.1021/ma00002a027
  11. Osaki, K., T. Inoue and K.H. Ahn, 1994, Shear and Normal Stresses of a Poly(Vinyl Alcohol) Sodium Borate Aqueous- Solution at the Start of Shear-Flow, J. Non-Newton Fluid 54, 109-120 https://doi.org/10.1016/0377-0257(94)80017-0
  12. Reichert, A., J.O. Nagy, W. Spevak and D. Charych, 1995, Polydiacetylene Liposomes Functionalized with Sialic-Acid Bind and Colorimetrically Detect Influenza-Virus, J. Am Chem. Soc. 117, 829-830 https://doi.org/10.1021/ja00107a032
  13. Rubner, M.F., 1986, Novel Optical-Properties of Polyurethane Diacetylene Segmented Copolymers, Macromolecules 19, 2129-2138 https://doi.org/10.1021/ma00162a005
  14. Su, Y.L., J.R. Li and L. Jiang, 2004, Effect of amphiphilic molecules upon chromatic transitions of polydiacetylene vesicles in aqueous solutions, Colloid Surface B 39, 113-118 https://doi.org/10.1016/j.colsurfb.2003.12.005
  15. Tomioka, Y., N. Tanaka and S. Imazeki, 1989, Surface-Pressure- Induced Reversible Color-Change of a Polydiacetylene Monolayer at a Gas Water Interface, J. Chem. Phys. 91, 5694-5700 https://doi.org/10.1063/1.457523
  16. Yuan, Z.Z., C.W. Lee and S.H. Lee, 2006, Reversible thermochromism in self-layered hydrogen-bonded polydiacetylene assembly, Polymer 47, 2970-2975 https://doi.org/10.1016/j.polymer.2006.01.040