Make earlier oncology decisions with direct target engagement evidence

Oncology programs rarely fail because there is too little data. More often, they stall because the available data does not clearly change the next decision. Biochemical activity may look strong. Cell phenotypes may be encouraging. Yet uncertainty remains around whether the intended target is truly engaged in the biological context that matters. CETSA is built to address that gap. 

Our overview poster maps how CETSA can support drug discovery decisions from early hit identification to translational studies, using CDK4 as an example.

So…

What does Laurence think about between experiments?

Watch and find out.

Featured oncology examples 

These posters show how CETSA helps resolve questions that frequently determine whether an oncology program accelerates, pivots, or stops. 

Example 1 — CDK2 inhibitors: Is efficacy on-target or driven by polypharmacology? 

Viability data suggested that one CDK2 inhibitor was the most potent, but CETSA selectivity profiling showed it was also the least selective. In-depth profiling showed how more selective compounds could still differ in engagement potency, and downstream pathway effects. In other words, CETSA helped reveal which signal was worth trusting. 

Example 2 — Degraders: engaged is not always degraded 

For targeted protein degradation, the outcome alone can hide important biology. This poster shows that CETSA can profile both target engagement and degradation-related effects, revealing that not all PROTAC-bound proteins are degraded. It also highlights how engaged-only proteins, E3 ligase interactions, and downstream cellular effects can shape the interpretation of compound behavior. 

Selected oncology publications 

For deeper reading, explore peer-reviewed publications that demonstrate how CETSA can support oncology discovery, mechanistic studies, and studies of resistance biology. 

Rigosertib and target deconvolution 

This study investigates how rigosertib drives anti-tumor and inflammatory responses by identifying previously unrecognized targets and pathways underlying its activity. CETSA-MS was used to profile proteome-wide target engagement in cells, helping uncover the proteins and biological mechanisms linked to rigosertib’s effects.  

Apoptosis mechanisms at proteome scale 

This paper shows that drugs with distinct apoptosis-inducing mechanisms converge on a common early effector stage at the nuclear periphery. Using proteome-wide IMPRINTS-CETSA, the authors mapped biochemical changes in living cells and revealed mechanistic convergence that would be difficult to capture with endpoint apoptosis assays alone. 

Gemcitabine resistance and DNA repair

This study examines how sensitive and resistant diffuse large B cell lymphoma cells respond to gemcitabine, revealing DNA damage response and repair associated with resistance. MS-CETSA was used to monitor changes in intact cells, uncovering resistance mechanisms and identifying ATR inhibition to restore gemcitabine sensitivity.

CRAF high-throughput screening

This study shows how CETSA can be applied at true high-throughput scale against the oncology target CRAF, using a screen of nearly 0.5 million compounds. CETSA was used in an AlphaLISA-based format to measure cellular target engagement directly, helping identify hits suitable for further optimization while demonstrating the feasibility of CETSA in early oncology discovery.

Bring earlier confidence into your oncology program 

Discuss your project with our scientific team