リケラボ論文検索は、全国の大学リポジトリにある学位論文・教授論文を一括検索できる論文検索サービスです。

リケラボ 全国の大学リポジトリにある学位論文・教授論文を一括検索するならリケラボ論文検索大学・研究所にある論文を検索できる

リケラボ 全国の大学リポジトリにある学位論文・教授論文を一括検索するならリケラボ論文検索大学・研究所にある論文を検索できる

大学・研究所にある論文を検索できる 「Clickable bisreactive small gold nanoclusters for preparing multifunctionalized nanomaterials: application to photouncaging of an anticancer molecule」の論文概要。リケラボ論文検索は、全国の大学リポジトリにある学位論文・教授論文を一括検索できる論文検索サービスです。

コピーが完了しました

URLをコピーしました

論文の公開元へ論文の公開元へ
書き出し

Clickable bisreactive small gold nanoclusters for preparing multifunctionalized nanomaterials: application to photouncaging of an anticancer molecule

Watanabe, Kenji ワタナベ, ケンジ Mao, Qiyue 毛, 斉悦 Zhang, Zhouen 張, 周恩 Hata, Machi Kodera, Masahito 小寺, 政人 コデラ, マサト Kitagishi, Hiroaki 北岸, 宏亮 キタガワ, ヒロアキ Niwa, Takashi 丹羽, 節 ニワ, タカシ Hosoya, Takamitsu 細谷, 孝充 ホソヤ, タカシ 九州大学

2023.12.15

概要

In this study, we successfully synthesized a small-sized gold nanocluster (2 nm) coated with homogeneous tripeptides bearing azido and amino groups that enable facile multifunctionalizations. Using so

この論文で使われている画像

参考文献

1 A. L. V. Zumaya, R. Mincheva, J.-M. Raquez and F. Hassouna,

Polymers, 2022, 14, 1188.

2 J. K. Patra, G. Das, L. F. Fraceto, E. V. R. Campos, M. del

P. Rodriguez-Torres, L. S. Acosta-Torres, L. A. Diaz-Torres,

R. Grillo, M. K. Swamy, S. Sharma, S. Habtemariam and

H.-S. Shin, J. Nanobiotechnol., 2018, 16, 71.

3 S. M. van de Looij, E. R. Hebels, M. Viola, M. Hembury,

S. Oliveira and T. Vermonden, Bioconjugate Chem., 2022,

33, 4–23.

4 A. Cifuentes-Rius, V. G. Deepagan, J. Xie and N. H. Voelcker,

ACS Appl. Mater. Interfaces, 2021, 13, 49581–49588.

5 H. Cui, Z.-S. Shao, Z. Song, Y.-B. Wang and H.-S. Wang, J.

Mater. Chem. C, 2020, 8, 14312–14333.

6 M. F. Matus and H. H¨

akkinen, Small, 2021, 17, 2005499.

7 X.-D. Zhang, J. Chen, Z. Luo, D. Wu, X. Shen, S.-S. Song,

Y.-M. Sun, P.-X. Liu, J. Zhao, S. Huo, S. Fan, F. Fan,

X.-J. Liang and J. Xie, Adv. Healthcare Mater., 2014, 3, 133–

141.

8 B. Zhang, J. Chen, Y. Cao, O. Jin, H. Chai and J. Xie, Small,

2021, 17, 2004381.

9 K. Klein, K. Loza, M. Heggen and M. Epple, ChemNanoMat,

2021, 7, 1330–1339.

Chem. Sci., 2024, 15, 1402–1408 | 1407

View Article Online

Open Access Article. Published on 15 December 2023. Downloaded on 2/2/2024 2:45:50 AM.

This article is licensed under a Creative Commons Attribution 3.0 Unported Licence.

Chemical Science

10 P. N. Gunawardene, J. F. Corrigan and M. S. Workentin, J.

Am. Chem. Soc., 2019, 141, 11781–11785.

11 S. B. van der Meer, K. Loza, K. Wey, M. Heggen, C. Beuck,

P. Bayer and M. Epple, Langmuir, 2019, 35, 7191–7204.

12 C.-A.

J. Lin, T.-Y. Yang, C.-H. Lee, S.-H. Huang,

R.-A. Sperling, M. Zanella, J. K. Li, J.-L. Shen, H.-H. Wang,

H.-I. Yeh, W.-J. Parak and W. H. Chang, ACS Nano, 2009, 3,

395–401.

13 X. Hu, Y. Zhang, T. Ding, J. Liu and H. Zhao, Front. Bioeng.

Biotechnol., 2020, 8, 990.

14 F. Thielbeer, S. V. Chankeshwara, E. M. V. Johansson,

N. Norouzi and M. Bradley, Chem. Sci., 2013, 4, 425–431.

15 X. Li, J. Guo, J. Asong, M. A. Wolfert and G.-J. Boons, J. Am.

Chem. Soc., 2011, 133, 11147–11153.

16 P. E. Schneggenburger, B. Worbs and U. Diederichsen, J.

Pept. Sci., 2010, 16, 10–14.

17 Tripeptide thiol 1 was stable at least for 5 days when stored

at −20 °C under argon atmosphere.

18 Y. Negishi, N. K. Chaki, Y. Shichibu, R. L. Whetten and

T. Tsukuda, J. Am. Chem. Soc., 2007, 129, 11322–11323.

19 Z. Luo, X. Yuan, Y. Yu, Q. Zhang, D. T. Leong, J. Y. Lee and

J. Xie, J. Am. Chem. Soc., 2012, 134, 16662–16670.

20 J. Xie, Y. Zheng and J. Y. Ying, J. Am. Chem. Soc., 2009, 131,

888–889.

21 N. Lee, D.-W. Lee and S.-M. Lee, Biomacromolecules, 2018, 19,

4534–4541.

22 V. Amendola, R. Pilot, M. Frasconi, O. M. Marag`

o and

M. A. Iat`ı, J. Phys.: Condens.Matter, 2017, 29, 203002.

23 R. Jin and T. Higaki, Commun. Chem., 2021, 4, 28.

24 Q. Wang, T. R. Chan, R. Hilgraf, V. V. Fokin, K. B. Sharpless

and M. G. Finn, J. Am. Chem. Soc., 2003, 125, 3192–3193.

25 M. Meldal and C. W. Tornøe, Chem. Rev., 2008, 108, 2952–

3015.

26 AuNc2 (Au content, 65 wt%) and AuNc4 (Au content, 42 wt%)

were assumed to contain approximately 333 and 250 atoms

of Au in a single particle, respectively.

27 J. C. Jewett and C. R. Bertozzi, Chem. Soc. Rev., 2010, 39,

1272–1279.

28 J. Dommerholt, F. P. J. T. Rutjes and F. L. van Del, Top.

Curr. Chem., 2016, 374, 16.

29 I. Kii, A. Shiraishi, T. Hiramatsu, T. Matsushita, H. Uekusa,

S. Yoshida, M. Yamamoto, A. Kudo, M. Hagiwara and

T. Hosoya, Org. Biomol. Chem., 2010, 8, 4051–4055.

1408 | Chem. Sci., 2024, 15, 1402–1408

Edge Article

30 P. Neirynck, J. Brinkmann, Q. An, D. W. J. van der Scha,

L.-G. Milroy, P. Jonkheijm and L. Brunsveld, Chem.

Commun., 2013, 49, 3679–3681.

31 Z. R. Goddard, M. J. Marin, D. A. Russell and M. S. Searcey,

Chem. Soc. Rev., 2020, 49, 8774–8789.

32 X. Sun and W. N. Leung, Photochem. Photobiol., 2002, 75,

644–651.

33 P. G. Calavia, G. Bruce, L. P´

erez-Garc´ıa and D. A. Russell,

Photochem. Photobiol. Sci., 2018, 17, 1534–1552.

34 P. Kl´

an, T. Solomek, C. G. Bochet, A. Blanc, R. Givens,

M. Rubina, V. Popik, A. Kostikov and J. Wirz, Chem. Rev.,

2013, 113, 119–191.

35 H. Janekova, M. Russo, U. Ziegler and P. Stacko, Angew.

Chem., Int. Ed., 2022, 61, e202204391.

36 P. Shrestha, A. Mukhopadhyay, K. C. Dissanayake and

A. H. Winter, J. Org. Chem., 2022, 87, 14334–14341.

37 A. Poryvai, M. Galkin, V. Shvadchak and T. Slanina, Angew.

Chem., Int. Ed., 2022, 61, e202205855.

38 Q. Lin, R. Guo, K. Hamao, R. Takagi and M. Abe, Chem. Lett.,

2022, 51, 153–156.

39 R. Weinstain, T. Slanina, D. Kand and P. Kla´

n, Chem. Rev.,

2020, 120, 13135–13272.

40 R. R. Nani, A. P. Gorka, T. Nagaya, H. Kobayashi and

M. J. Schnermann, Angew. Chem., Int. Ed., 2015, 54, 13635–

13638.

41 K. Watanabe, N. Terao, I. Kii, R. Nakagawa, T. Niwa and

T. Hosoya, Org. Lett., 2020, 22, 5434–5438.

42 K. Watanabe, N. Terao, T. Niwa and T. Hosoya, J. Org. Chem.,

2021, 86, 11822–11834.

43 K. Watanabe, A. Kuratsu, D. Hashizume, T. Niwa and

T. Hosoya, Commun. Chem., 2022, 5, 91.

44 Note that 4 and 5 were randomly introduced on the surface

of AuNc5 by this method.

45 S. K. Eswaramoorthy, N. J. Sakthivel and A. Dass, J. Phys.

Chem. C, 2019, 123, 9634–9639.

46 S. Zheng, Q. Zhong, M. Mottamal, Q. Zhang, C. Zhang,

E. LeMelle, H. McFerrin and G. Wang, J. Med. Chem., 2014,

57, 3369–3381.

47 L. Ren, S. Chen, H. Li, Z. Zhang, C. Ye, M. Liu and X. Zhou,

Nanoscale, 2015, 7, 12843–12850.

48 P. Lanza, B. Felding-Habermann, Z. M. Ruggeri, M. Zanetti

and R. Billetta, Blood Cells, Mol., Dis., 1997, 23, 230–241.

© 2024 The Author(s). Published by the Royal Society of Chemistry

...

参考文献をもっと見る

全国の大学の
卒論・修論・学位論文

一発検索!

この論文の関連論文を見る