Modeling differentiation-state transitions linked to therapeutic escape in triple-negative breast cancer

Margaret P Chapman1, Tyler Risom2, Anil J Aswani3

  • 1Department of Electrical Engineering and Computer Sciences, University of California Berkeley, Berkeley, California, United States of America.

Insights

Breast cancer cells can become drug-resistant by changing their differentiation state. Computational models reveal that targeted therapies alter these transitions, leading to drug-resistant cell populations in triple-negative breast cancer.

Area of Science:

  • Cancer Biology
  • Computational Biology
  • Medical Science

Background:

  • Drug resistance in breast cancer is often linked to phenotypic transitions, such as epithelial-to-mesenchymal transition or cancer stem cell states.
  • Tumor heterogeneity and epigenetic states complicate the understanding of drug resistance dynamics.
  • Plasticity between differentiation states, identified by markers like cytokeratins, is associated with resistance to targeted therapies.

Purpose of the Study:

  • To investigate differentiation-state transition as a mechanism for therapeutic escape in triple-negative breast cancer (TNBC).
  • To develop computational models for a drug-treated, phenotypically heterogeneous TNBC cell line (HCC1143).
  • To predict therapy-induced changes in differentiation-state transitions and marker expression.

Main Methods:

  • Development of computational models for a heterogeneous TNBC cell line.
  • Modeling to predict changes in differentiation-state transition rates.
  • Empirical validation of model predictions for cell division and death.
  • Testing models on an independent dataset.

Main Results:

  • Identified statistically significant therapy-induced changes in transition rates between basal, luminal, mesenchymal, and other differentiation states in HCC1143 cells.
  • Validated model predictions regarding cell division and death.
  • Demonstrated that targeted therapies can alter differentiation-state transition rates.

Conclusions:

  • Changes in differentiation-state transition rates induced by targeted therapy can lead to drug-resistant cell aggregations.
  • Understanding these dynamics is crucial for designing improved therapeutic regimens for phenotypically heterogeneous cancers.
  • This study provides insights into therapeutic escape mechanisms in TNBC.

Related Concept Videos

Phase Transitions02:31

Phase Transitions

Whether solid, liquid, or gas, a substance's state depends on the order and arrangement of its particles (atoms, molecules, or ions). Particles in the solid pack closely together, generally in a pattern. The particles vibrate about their fixed positions but do not move or squeeze past their neighbors. In liquids, although the particles are closely spaced, they are randomly arranged. The position of the particles are not fixed—that is, they are free to move past their neighbors to...
23.1K
Escape Velocity01:26

Escape Velocity

The escape velocity of an object is defined as the minimum initial velocity that it requires to escape the surface of another object to which it is gravitationally bound and never to return. For example, what would be the minimum velocity at which a satellite should be launched from the Earth's surface such that it just escapes the Earth's gravitational field?
To calculate the escape velocity, it is assumed that no energy is lost to any frictional forces. In practice, a satellite...
8.4K
Negative Regulator Molecules01:23

Negative Regulator Molecules

Positive regulators allow a cell to advance through cell cycle checkpoints. Negative regulators have an equally important role as they terminate a cell’s progression through the cell cycle—or pause it—until the cell meets specific criteria.
38.5K
Cooperative Allosteric Transitions01:58

Cooperative Allosteric Transitions

Cooperative allosteric transitions can occur in multimeric proteins, where each subunit of the protein has its own ligand-binding site. When a ligand binds to any of these subunits, it triggers a conformational change that affects the binding sites in the other subunits; this can change the affinity of the other sites for their respective ligands. The ability of the protein to change the shape of its binding site is attributed to the presence of a mix of flexible and stable segments in the...
8.7K
Phase Transitions: Sublimation and Deposition02:33

Phase Transitions: Sublimation and Deposition

Some solids can transition directly into the gaseous state, bypassing the liquid state, via a process known as sublimation. At room temperature and standard pressure, a piece of dry ice (solid CO2) sublimes, appearing to gradually disappear without ever forming any liquid. Snow and ice sublimate at temperatures below the melting point of water, a slow process that may be accelerated by winds and the reduced atmospheric pressures at high altitudes. When solid iodine is warmed, the solid sublimes...
20.0K
Phase Transitions: Melting and Freezing02:39

Phase Transitions: Melting and Freezing

Heating a crystalline solid increases the average energy of its atoms, molecules, or ions, and the solid gets hotter. At some point, the added energy becomes large enough to partially overcome the forces holding the molecules or ions of the solid in their fixed positions, and the solid begins the process of transitioning to the liquid state or melting. At this point, the temperature of the solid stops rising, despite the continual input of heat, and it remains constant until all of the solid is...
15.0K