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Published on: May 3, 2024
Selectively Inducing Cancer Cell Death by Intracellular Enzyme-Instructed Self-Assembly (EISA) of Dipeptide
Jie Li1, Junfeng Shi1, Jamie E Medina2
1Department of Chemistry, Brandeis University, 415 South Street, Waltham, MA, 02454, USA.
Abstract:
Tight ligand-receptor binding, paradoxically, is a major root of drug resistance in cancer chemotherapy. To address this problem, instead of using conventional inhibitors or ligands, this paper focuses on the development of a novel process-enzyme-instructed self-assembly (EISA)-to kill cancer cells selectively. Here it is demonstrated that EISA as an intracellular process to generate nanofibrils of short peptides for selectively inhibiting cancer cell proliferation, including drug resistant ones. As the process that turns the non-self-assembling precursors into the self-assembling peptides upon the catalysis of carboxylesterases (CES), EISA occurs intracellularly to selectively inhibit a range of cancer cells that exhibit relatively high CES activities. More importantly, EISA inhibits drug resistant cancer cells (e.g., triple negative breast cancer cells (HCC1937) and platinum-resistant ovarian cells (SKOV3, A2780cis)). With the IC50 values of 28-80 and 25-44 µg mL-1 of l- and d-dipeptide precursors against cancer cells, respectively, EISA is innocuous to normal cells. Moreover, using coculture of cancer and normal cells, the selectivity of EISA is validated against cancer cells. Besides revealing that intracellular EISA cause apoptosis or necroptosis to kill the cancer cells, this work illustrates a new approach to amplify the enzymatic difference between cancer and normal cells and to expand the pool of drug candidates for potentially overcoming drug resistance in cancer therapy.
Insights
Enzyme-instructed self-assembly (EISA) uses peptide precursors to selectively kill cancer cells, including drug-resistant types, by forming nanofibrils intracellularly. This novel approach is safe for normal cells, offering a new strategy against cancer drug resistance.
Area of Science:
- Biochemistry
- Nanotechnology
- Oncology
Background:
- Tight ligand-receptor binding contributes to cancer drug resistance.
- Conventional inhibitors often face challenges in overcoming resistance mechanisms.
Purpose of the Study:
- To develop a novel enzyme-instructed self-assembly (EISA) process for selective cancer cell killing.
- To investigate EISA's efficacy against drug-resistant cancer cells.
Main Methods:
- EISA utilizes carboxylesterases (CES) to convert non-self-assembling peptide precursors into self-assembling nanofibrils intracellularly.
- Testing EISA's efficacy on various cancer cell lines, including drug-resistant subtypes (HCC1937, SKOV3, A2780cis).
- Assessing EISA's selectivity and safety using coculture models of cancer and normal cells.
Main Results:
- EISA selectively inhibits proliferation in cancer cells with high CES activity, including triple-negative breast cancer and platinum-resistant ovarian cancer cells.
- Low IC50 values (28-80 µg mL⁻¹ for l-dipeptide, 25-44 µg mL⁻¹ for d-dipeptide precursors) demonstrate potent anticancer activity.
- EISA is innocuous to normal cells, with validated selectivity in coculture experiments.
Conclusions:
- Intracellular EISA induces apoptosis or necroptosis, leading to cancer cell death.
- EISA offers a new strategy to exploit enzymatic differences between cancer and normal cells.
- This approach expands therapeutic options for overcoming cancer drug resistance.
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