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Nano-energy interference: A novel strategy for blunting tumor adaptation and metastasis
Fei Teng1,2, Dong Fu3, Chen-Cheng Shi1,2
1Department of Gastrointestinal Surgery, Minhang Hospital, Fudan University, Shanghai, 201199, PR China.
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.
Insights
This study introduces a novel nano-energy device that disrupts tumor metabolism by inhibiting mitochondria and ribosomes. This strategy weakens cancer
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Cancer Biology
Background:
- Tumor cells possess stress-sensing abilities crucial for survival and metastasis.
- Targeting cellular energy metabolism offers a strategy to control tumor progression.
Purpose of the Study:
- To design a nano-energy interference device to alter tumor cellular energy metabolism.
- To inhibit mitochondrial respiration, biogenesis, and ribosome production in tumors.
Main Methods:
- Lipid nanoparticles (LNP) encapsulating azelaic acid (AA) and 2-deoxy-D-glucose (2-DG).
- Mitochondrial-targeting molecules enhance AA delivery and disruption of the respiratory chain.
- 2-DG competitively inhibits glucose uptake, inducing energy deficiency.
Main Results:
- Combined AA and 2-DG in LNP created a synergistic effect, inducing comprehensive energy deficiency in tumors.
- Inhibition of mitochondrial respiration and ribosome production was observed.
- Tumor growth and metastasis were significantly inhibited due to weakened stress adaptation.
Conclusions:
- The developed nano-energy interference device effectively controls tumor stress-sensing ability.
- This approach offers a novel therapeutic strategy for refractory tumors by targeting energy metabolism.
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