TY - JOUR
T1 - Asterias pectinifera derived collagen peptide-encapsulating elastic nanoliposomes for the cosmetic application
AU - Han, Seong Beom
AU - Won, Bada
AU - Yang, Seung chan
AU - Kim, Dong Hwee
N1 - Funding Information:
This work was performed by the collaboration with Starstech Co. partly supported by the Technology Development Program (S2788590) funded by the Ministry of SMEs and Startups (MSS, Korea). The authors thank members of the Applied Mechanobiology Group (AMG) at Korea University and Stars? Tech for constructive discussion of marine biotechnology. D.K. was supported by National Research Foundation of Korea (NRF-2019R1A2C2004437) and the MSIT (Ministry of Science and ICT), Korea, under the ICT Creative Consilience program (IITP-2020-0-01819) supervised by the IITP (Institute for Information & communications Technology Planning & Evaluation). D.K. and S.H. appreciate the financial support from KU-KIST Graduate School of Converging Science and Technology Program.
Publisher Copyright:
© 2021 The Author(s)
PY - 2021/6/25
Y1 - 2021/6/25
N2 - Asterias pectinifera, a starfish that has been known to ruin the aquaculture industry owing to its voracious appetite, has recently been identified as an eco-friendly source of non-toxic and highly water-soluble low-molecular weight collagen peptides, which promotes wound healing, bone regeneration, and skin protection. Although they have potential applications in biomedical applications, including pharmaceuticals and cosmetic products, it remains unclear how to improve the in vivo absorption of collagen peptides. Here, we present a novel method to enhance the absorption rate of collagen peptides using a lipid-based nanocarrier. We prepared an elastic nanoliposome by controlling the composition ratio of phospholipids and low-molecular weight collagen peptides. Our results indicate that low-molecular weight collagen peptides extracted from Asterias pectinifera have higher encapsulation efficiency than the collagen peptides extracted from pork and fish, which have traditionally been considered as a conventional source of collagen. Moreover, we demonstrate that the elastic nanoliposome containing the collagen peptide of Asterias pectinifera can reduce MMP-1 expression caused by ultraviolet radiation-induced photoaging. Therefore, the combination of Asterias pectinifera-derived low-molecular-weight collagen peptides and elastic nanoliposomes may be a promising formulation as an eco-friendly source of materials for anti-aging cosmetics.
AB - Asterias pectinifera, a starfish that has been known to ruin the aquaculture industry owing to its voracious appetite, has recently been identified as an eco-friendly source of non-toxic and highly water-soluble low-molecular weight collagen peptides, which promotes wound healing, bone regeneration, and skin protection. Although they have potential applications in biomedical applications, including pharmaceuticals and cosmetic products, it remains unclear how to improve the in vivo absorption of collagen peptides. Here, we present a novel method to enhance the absorption rate of collagen peptides using a lipid-based nanocarrier. We prepared an elastic nanoliposome by controlling the composition ratio of phospholipids and low-molecular weight collagen peptides. Our results indicate that low-molecular weight collagen peptides extracted from Asterias pectinifera have higher encapsulation efficiency than the collagen peptides extracted from pork and fish, which have traditionally been considered as a conventional source of collagen. Moreover, we demonstrate that the elastic nanoliposome containing the collagen peptide of Asterias pectinifera can reduce MMP-1 expression caused by ultraviolet radiation-induced photoaging. Therefore, the combination of Asterias pectinifera-derived low-molecular-weight collagen peptides and elastic nanoliposomes may be a promising formulation as an eco-friendly source of materials for anti-aging cosmetics.
KW - Anti-aging
KW - Asterias pectinifera
KW - Cosmetic application
KW - Elastic nanoliposome
KW - Marine biotechnology
KW - Starfish collagen
UR - http://www.scopus.com/inward/record.url?scp=85103736887&partnerID=8YFLogxK
U2 - 10.1016/j.jiec.2021.03.039
DO - 10.1016/j.jiec.2021.03.039
M3 - Article
AN - SCOPUS:85103736887
SN - 1226-086X
VL - 98
SP - 289
EP - 297
JO - Journal of Industrial and Engineering Chemistry
JF - Journal of Industrial and Engineering Chemistry
ER -