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Nano-energy interference: A novel strategy for blunting tumor adaptation and metastasis

Authors :
Fei Teng
Dong Fu
Chen-Cheng Shi
An Xiong
Meng-Xuan Yang
Chang Su
Ming Lei
Yi-Ou Cao
Xiao-Dong Shen
Yi Chen
Pu-Hua Wang
Shao-Qun Liu
Source :
Materials Today Bio, Vol 25, Iss , Pp 100984- (2024)
Publication Year :
2024
Publisher :
Elsevier, 2024.

Abstract

Blunting the tumor's stress-sensing ability is an effective strategy for controlling tumor adaptive survival and metastasis. Here, we have designed a cyclically amplified nano-energy interference device based on lipid nanoparticles (LNP), focused on altering cellular energy metabolism. This innovative nano device efficiently targets and monitors the tumor's status while simultaneously inhibiting mitochondrial respiration, biogenesis and ribosome production. To this end, we first identified azelaic acid (AA), a binary acid capable of disrupting the mitochondrial respiratory chain. Upon encapsulation in LNP and linkage to mitochondrial-targeting molecules, this disruptive effect is further augmented. Consequently, tumors exhibit a substantial upregulation of the glycolytic pathway, intensifying their glucose demand and worsening the tumor's energy-deprived microenvironment. Then, the glucose analog, 2-Deoxy-D-glucose (2-DG), linked to the LNP, efficiently targets tumors and competitively inhibits the tumor's normal glucose uptake. The synergetic results of combining AA with 2-DG induce comprehensive energy deficiency within tumors, blocking the generation of energy-sensitive ribosomes. Ultimately, the disruption of both mitochondria and ribosomes depletes energy supply and new protein-generating capacity, weakening tumor's ability to adapt to environmental stress and thereby inhibiting growth and metastasis. Comprehensively, this nano-energy interference device, by controlling the tumor's stress-sensing ability, provides a novel therapeutic strategy for refractory tumors.

Details

Language :
English
ISSN :
25900064
Volume :
25
Issue :
100984-
Database :
Directory of Open Access Journals
Journal :
Materials Today Bio
Publication Type :
Academic Journal
Accession number :
edsdoj.534ff562690d4fa084c829588f92d43a
Document Type :
article
Full Text :
https://doi.org/10.1016/j.mtbio.2024.100984