Chem. J. Chinese Universities ›› 2015, Vol. 36 ›› Issue (4): 646.doi: 10.7503/cjcu20140891
• Analytical Chemistry • Previous Articles Next Articles
HUANG Chibao1,2,*(
), LIANG Xing1, ZENG Qihua1, CHEN Huashi1, ZENG Boping1, YI Daosheng2, CHEN Xiaoyuan2
Received:2014-10-08
Online:2015-04-10
Published:2015-03-27
Contact:
HUANG Chibao
E-mail:huangchibao@163.com
Supported by:CLC Number:
TrendMD:
HUANG Chibao, LIANG Xing, ZENG Qihua, CHEN Huashi, ZENG Boping, YI Daosheng, CHEN Xiaoyuan. Dicyanostilbene-derived Two-photon Fluorescence Probe for Free Zinc Ions in Live Cells and Living Tissues†[J]. Chem. J. Chinese Universities, 2015, 36(4): 646.
| Compd. | Ref. | HRMS(calcd.), m/z | Compd. | Ref. | HRMS(calcd.), m/z |
|---|---|---|---|---|---|
| 2 | [ | 263.9207(263.9200) | 5 | [ | 292.0977(292.0977) |
| 3 | [ | 313.8803(313.8801) | 6 | [ | 245.0374(245.0352) |
| 4 | [ | 233.9747(233.9742) | 7 | [ | 383.0952(383.0952) |
Table 1 High resolution mass spectrum[HRMS(EI)] data of compounds 2—7
| Compd. | Ref. | HRMS(calcd.), m/z | Compd. | Ref. | HRMS(calcd.), m/z |
|---|---|---|---|---|---|
| 2 | [ | 263.9207(263.9200) | 5 | [ | 292.0977(292.0977) |
| 3 | [ | 313.8803(313.8801) | 6 | [ | 245.0374(245.0352) |
| 4 | [ | 233.9747(233.9742) | 7 | [ | 383.0952(383.0952) |
Fig.1 Relative fluorescence intensities of 1 μmol/L DZn in the presence of 20 mmol/L of some metal ions(empty bars) followed by addition of 1 μmol/L of Zn2+(filled bars) a. Zn2+; b. K+; c. Ca2+; d. Mg2+; e. Ba2+; f. Fe2+; g. Fe3+; h. Pb2+; i. Co2+; j. Ni2+; k. Cr3+; l. Cd2+; m. Mn2+; n. Cu2+; o. Ag+; p. Na+; q. Hg2+.
| Compd. | ηc | ηδmax | ||||
|---|---|---|---|---|---|---|
| DZn | 403 | 610 | 0.02 | 810 | 400 | 8 |
| DZn-Zn2+ | 403 | 610 | 0.62 | 810 | 935 | 580 |
| AZn2[ | 365 | 494 | 0.012 | 780 | ND | ND |
| AZn2-Zn2+[ | 365 | 499 | 0.65 | 780 | 140 | 95 |
Table 2 Photophysical data for DZn and AZn2
| Compd. | ηc | ηδmax | ||||
|---|---|---|---|---|---|---|
| DZn | 403 | 610 | 0.02 | 810 | 400 | 8 |
| DZn-Zn2+ | 403 | 610 | 0.62 | 810 | 935 | 580 |
| AZn2[ | 365 | 494 | 0.012 | 780 | ND | ND |
| AZn2-Zn2+[ | 365 | 499 | 0.65 | 780 | 140 | 95 |
| c(Zn2+)/ (mmol·L-1) | 1H NMR(DMSO-d6, 400 MHz), δ | ||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Ha | Hb | Hc | Hd | He | Hf | Hg | Hh | Hi | Hj | Hk | Hl | Hm | |
| 0 | 8.508 | 8.419 | 7.920 | 7.785 | 7.567 | 7.478 | 7.281 | 7.066 | 6.982 | 3.669 | 3.262 | 2.584 | 2.502 |
| 9.5 | 8.563 | 8.421 | 7.923 | 7.908 | 7.572 | 7.486 | 7.411 | 7.074 | 6.993 | 3.789 | 3.338 | 2.676 | 2.502 |
| 95 | 8.597 | 8.418 | 7.920 | 7.989 | 7.570 | 7.490 | 7.586 | 7.075 | 6.997 | 3.869 | 3.381 | 2.741 | 2.500 |
Table 3 1H NMR data for DZn with various zinc ion concentrations
| c(Zn2+)/ (mmol·L-1) | 1H NMR(DMSO-d6, 400 MHz), δ | ||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Ha | Hb | Hc | Hd | He | Hf | Hg | Hh | Hi | Hj | Hk | Hl | Hm | |
| 0 | 8.508 | 8.419 | 7.920 | 7.785 | 7.567 | 7.478 | 7.281 | 7.066 | 6.982 | 3.669 | 3.262 | 2.584 | 2.502 |
| 9.5 | 8.563 | 8.421 | 7.923 | 7.908 | 7.572 | 7.486 | 7.411 | 7.074 | 6.993 | 3.789 | 3.338 | 2.676 | 2.502 |
| 95 | 8.597 | 8.418 | 7.920 | 7.989 | 7.570 | 7.490 | 7.586 | 7.075 | 6.997 | 3.869 | 3.381 | 2.741 | 2.500 |
Fig.2 Bright-field image(A) and two-photon microscopy(TPM) images(B—D) of 1 μmol/L DZn-labeled mouse fibroblast collected at 550—650 nm (B) Before addition of 10 mmol/L SNOC; (C) after addition of 10 mmol/L SNOC; (D) after addition of 0.1 mmol/L TPEN to(C). The two-photon excitation fluorescence(TPEF) images were collected upon excitation at 810 nm with a femtosecond pulse. Cells were showed representative images from replicate experiments(n=5). SNOC is an endogenous NO donor that triggers the release of Zn2+. TPEN is a membrane-permeable Zn2+ chelator that can remove Zn2+ effectively.
Fig.3 TPM images of a mouse brain tissue slice (A) Before addition of 30 mmol/L SNOC; (B) after addition of 30 mmol/L SNOC; (C) after addition of 0.3 mmol/L TPEN to(B); (D) relative TPEF intensity of a mouse brain tissue slice stained with 10 μmol/L DZn collected at 550—650 nm as a function of time. The TPEF images were collected at 550—650 nm at a depth of ca. 120 μm with magnification 100× upon excitation at 810 nm with a femtosecond pulse.
Fig.4 TPM images of a mouse brain tissue slice stained with 10 μmol/L DZn by magnification 100× at different penetration depth of 80(A), 100(B), 120(C) and 150 μm(D) The TPEF images were collected at 550—650 nm upon excitation at 810 nm with a femtosecond pulse.
| [1] | Frederickson C. J., Koh J. Y., Bush A. I., Nature Reviews Neuroscience,2005, 6(6), 449—462 |
| [2] | Vallee B. L., Falchuk K. H., Physiological Reviews,1993, 73(1), 79—118 |
| [3] | Frederickson C.J., Kasarskis E. J., Ringo D., Frederickson R. E.,J. Neurosci. Methods, 1987, 20(2), 91—103 |
| [4] | Hendrickson K. M., Geue J. P., Wyness O., Lincoln S. F., Ward A. D., J. Am. Chem. Soc., 2003, 125(13), 3889—3895 |
| [5] | Komatsu K., Kikuchi K., Kojima H., Urano Y., Nagano T., J. Am. Chem. Soc., 2005, 127(29), 10197—10204 |
| [6] | Burdette S. C., Frederickson C. J., Bu W., Lippard S. J., J. Am. Chem. Soc., 2003, 125(7), 1778—1787 |
| [7] | Gee K. R., Zhou Z. L., Qian W. J., Kennedy R., J. Am. Chem. Soc., 2002, 124(5), 776—778 |
| [8] | Budde T., Minta A., White J. A., Kay A. R., Neuroscience,1997, 79(2), 347—358 |
| [9] | Hirano T., Kikuchi K., Urano Y., Higuchi T., Nagano T., J. Am. Chem. Soc., 2000, 122(49), 12399—12400 |
| [10] | Li L., Du L. T., Sun J., Yan C. G., Chem. Res. Chinese Universities,2013, 29(5), 874—878 |
| [11] | Belfield K. D., Bondar M. V., Frazer A., Morales A. R., Kachkovsky O. D., Mikhailov I. A., Masunov A. E., Przhonska O. V., J. Phys. Chem. B,2010, 114(28), 9313—9321 |
| [12] | Kim H. M., Seo M. S., An M. J., Hong J. H., Tian Y. S., Choi J. H., Kwon O., Lee K. J., Cho B. R., Angew. Chem. Int. Ed., 2008, 47(28), 5167—5170 |
| [13] | Sumalekshmy S., Henary M. M., Siegel N., Lawson P. V., Wu Y., Schmidt K., Brédas J. L., Perry J. W., Fahrni C. J., J. Am. Chem. Soc., 2007, 129(39), 11888—11889 |
| [14] | Bhaskar A., Ramakrishna G., Twieg R. J., Goodson T., J. Phys. Chem. C,2007, 111(40), 14607—14611 |
| [15] | Huang C., Lin C., Ren A., Yang N., J. Mol. Struct., 2011, 1006(1—3), 91—95 |
| [16] | Huang C. B., Zeng Q. H., Zeng B. P., Fine Chemicals,2013, 30(8), 948—952 |
| (黄池宝, 曾启华, 曾伯平. 精细化工, 2013, 30(8), 948—952) | |
| [17] | Huang H., He Q., Lin H., Bai F. L., Sun Z., Li Q. S., Polymers for Advanced Technologies,2004, 15(1/2), 84—88 |
| [18] | Huang C., Fan J., Peng X., Lin Z., Guo B., J. Photochem. Photobiol. C,2008, 199(2/3), 144—149 |
| [19] | Wiley R. H., Notes I. G., J. Org. Chem., 1961, 26(2), 593—595 |
| [20] | Albota M., Beljonne D., Bredas J. L., Ehrlich J. E., Fu J. Y., Heikal A. A., Hess S. E., Kogej T., Levin M. D., Marder S. R., McCord-Maughon D., Perry J. W., Rockel H., Rumi M., Subramaniam G., Webb W. W., Wu X. L., Xu C., Science,1998, 281(5383), 1653—1656 |
| [21] | Day P. N., Nguyen K. A., Pachter R., J. Phys. Chem. B,2005, 109(5), 1803—1814 |
| [22] | Pond S. J. K., Tsutsumi O., Rumi M., Kwon O., Zojer E., Jean-Luc B., Marder S. R., Perry J. W., J. Am. Chem. Soc., 2004, 126(30), 9291—9306 |
| [23] | Xu C., Webb W. W., J. Opt. Soc. Am. B,1996, 13(3), 481—491 |
| [24] | Wang W., Zhang Y., Li Y., Zhao Q., Chem. Res. Chinese Universities,2013, 29(4), 632—637 |
| [25] | Rapid M. T., J. Immunol. Meth., 1983, 65(1/2), 55—63 |
| [26] | Li X. D., Yang S. M., Xu H., Ma Y. G., Chem. J. Chinese Universities,2012, 33(1), 210—214 |
| (李晓东, 杨淑敏, 徐红, 马於光. 高等学校化学学报, 2012, 33(1), 210—214) |
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