950831-51-3Relevant academic research and scientific papers
D-amino acids modulate the cellular response of enzymatic-instructed supramolecular nanofibers of small peptides
Shi, Junfeng,Du, Xuewen,Yuan, Dan,Zhou, Jie,Zhou, Ning,Huang, Yibing,Xu, Bing
, p. 3559 - 3568 (2014)
Peptides made of d-amino acids, as the enantiomer of corresponding l-peptides, are able to resist proteolysis. It is, however, unclear or much less explored whether or how d-amino acids affect the cellular response of supramolecular nanofibers formed by e
Alkaline phosphatase-triggered assembly of etoposide enhances its anticancer effect
Kiran, Sonia,Hai, Zijuan,Ding, Zhanling,Wang, Lin,Liu, Yaling,Zhang, Huafeng,Liang, Gaolin
supporting information, p. 1853 - 1856 (2018/02/23)
Etoposide is a cancer-targeting drug but an overdose of etoposide leads to immunosuppression in patients. Therefore, the development of a new strategy to enhance its anticancer effect, while in the meantime alleviating its adverse effects, is important but challenging. In this work, with the assistance of a hydrogelator precursor Nap-Phe-Phe-Tyr(H2PO3)-OH (1P), etoposide phosphate (EP) was subjected to alkaline phosphatase (ALP)-triggered assembly, which obviously enhanced its anticancer efficacy in vitro and in vivo. In vitro tests indicated that the assembly of EP with 1P resulted in a slow release of etoposide and long-term inhibitory effects on HeLa cells. In vivo experiments indicated that, compared with those of EP-treated mice, the tumor growth of EP + 1P-treated mice was further inhibited while their body weight loss was alleviated. We envision that our hydrogelator-assisted assembly strategy could be applied to enhance the therapeutic effects of more drugs, while in the meantime alleviating their adverse effects in the future.
Versatile small-molecule motifs for self-assembly in water and the formation of biofunctional supramolecular hydrogels
Zhang, Ye,Kuang, Yi,Gao, Yuan,Xu, Bing
body text, p. 529 - 537 (2012/02/14)
This feature article introduces new structural motifs (referred as "samogen") that serve as the building blocks of hydrogelators for molecular self-assembly in water to result in a series of supramolecular hydrogels. Using a compound that consists of two
