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Updated: Feb 1, 2026

Assessing Cell Viability and Death in 3D Spheroid Cultures of Cancer Cells
Published on: June 16, 2019
Unraveling the Cellular Mechanism of Assembling Cholesterols for Selective Cancer Cell Death
Huaimin Wang1, Zhaoqianqi Feng1, Cuihong Yang2
1Department of Chemistry, Brandeis University, Waltham, Massachusetts.
Abstract:
Acquired drug resistance remains a challenge in chemotherapy. Here we show enzymatic, in situ assembling of cholesterol derivatives to act as polypharmaceuticals for selectively inducing death of cancer cells via multiple pathways and without inducing acquired drug resistance. A conjugate of tyrosine and cholesterol (TC), formed by enzyme-catalyzed dephosphorylation of phosphorylate TC, self-assembles selectively on or in cancer cells. Acting as polypharmaceuticals, the assemblies of TC augment lipid rafts, aggregate extrinsic cell death receptors (e.g., DR5, CD95, or TRAILR), modulate the expression of oncoproteins (e.g., Src and Akt), disrupt the dynamics of cytoskeletons (e.g., actin filaments or microtubules), induce endoplasmic reticulum stress, and increase the production of reactive oxygen species, thus resulting in cell death and preventing acquired drug resistance. Moreover, the assemblies inhibit the growth of platinum-resistant ovarian cancer tumor in a murine model. This work illustrates the use of instructed assembly (iA) in cellular environment to form polypharmaceuticals in situ that not only interact with multiple proteins, but also modulate membrane dynamics for developing novel anticancer therapeutics. IMPLICATIONS: As a multifaceted strategy for controlling cancer cell death, iA minimized acquired resistance of cancer cells, which is a new strategy to amplify the genetic difference between cancer and normal cells and provides a promise for overcoming drug resistance in cancer therapy.Visual Overview: http://mcr.aacrjournals.org/content/molcanres/17/4/907/F1.large.jpg.
Insights
Researchers developed a new method using cholesterol derivatives to create cancer-killing polypharmaceuticals. This approach selectively targets cancer cells, induces cell death through multiple pathways, and importantly, prevents acquired drug resistance in chemotherapy.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Acquired drug resistance is a significant challenge in cancer chemotherapy.
- Novel therapeutic strategies are needed to overcome resistance and improve treatment efficacy.
Purpose of the Study:
- To develop a novel therapeutic approach using enzymatic, in situ assembly of cholesterol derivatives as polypharmaceuticals.
- To selectively induce cancer cell death and prevent acquired drug resistance.
Main Methods:
- Enzyme-catalyzed dephosphorylation of a tyrosine and cholesterol conjugate (TC) to form self-assembling structures.
- Investigating the mechanism of TC assembly-induced cancer cell death, including effects on lipid rafts, death receptors, oncoproteins, cytoskeleton, ER stress, and ROS production.
- Evaluating the efficacy of TC assemblies in a murine model of platinum-resistant ovarian cancer.
Main Results:
- TC conjugates self-assemble selectively on or in cancer cells.
- TC assemblies act as polypharmaceuticals, augmenting lipid rafts, aggregating death receptors, modulating oncoprotein expression, disrupting cytoskeletal dynamics, inducing ER stress, and increasing ROS production.
- TC assemblies demonstrated inhibition of platinum-resistant ovarian cancer tumor growth in vivo.
Conclusions:
- Instructed assembly (iA) in the cellular environment can create in situ polypharmaceuticals with multiple cellular targets.
- This strategy effectively induces cancer cell death and minimizes acquired drug resistance.
- The approach holds promise for developing novel anticancer therapeutics and overcoming drug resistance.
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