Related Experiment Video
Updated: Jun 25, 2026

Methods to Study Epithelial Transport Protein Function and Expression in Native Intestine and Caco-2 Cells Grown in 3D
Published on: March 16, 2017
Analysis of context-specific KRAS-effector (sub)complexes in Caco-2 cells
Camille Ternet1,2, Philipp Junk1,2, Thomas Sevrin1,2
1Systems Biology Ireland, School of Medicine, University College Dublin, Dublin 4, Ireland.
Abstract:
Ras is a key switch controlling cell behavior. In the GTP-bound form, Ras interacts with numerous effectors in a mutually exclusive manner, where individual Ras-effectors are likely part of larger cellular (sub)complexes. The molecular details of these (sub)complexes and their alteration in specific contexts are not understood. Focusing on KRAS, we performed affinity purification (AP)-mass spectrometry (MS) experiments of exogenously expressed FLAG-KRAS WT and three oncogenic mutants ("genetic contexts") in the human Caco-2 cell line, each exposed to 11 different culture media ("culture contexts") that mimic conditions relevant in the colon and colorectal cancer. We identified four effectors present in complex with KRAS in all genetic and growth contexts ("context-general effectors"). Seven effectors are found in KRAS complexes in only some contexts ("context-specific effectors"). Analyzing all interactors in complex with KRAS per condition, we find that the culture contexts had a larger impact on interaction rewiring than genetic contexts. We investigated how changes in the interactome impact functional outcomes and created a Shiny app for interactive visualization. We validated some of the functional differences in metabolism and proliferation. Finally, we used networks to evaluate how KRAS-effectors are involved in the modulation of functions by random walk analyses of effector-mediated (sub)complexes. Altogether, our work shows the impact of environmental contexts on network rewiring, which provides insights into tissue-specific signaling mechanisms. This may also explain why KRAS oncogenic mutants may be causing cancer only in specific tissues despite KRAS being expressed in most cells and tissues.
Insights
Environmental conditions significantly alter KRAS protein interactions, impacting cell behavior and potentially explaining tissue-specific cancer development. This study reveals context-dependent network rewiring in KRAS signaling.
Area of Science:
- Molecular Biology
- Cellular Signaling
- Cancer Research
Background:
- Ras proteins act as crucial molecular switches regulating cell behavior.
- Understanding the molecular details of Ras-effector complexes and their context-dependent alterations is limited.
- KRAS signaling pathways are implicated in various cellular functions and diseases, including cancer.
Purpose of the Study:
- To investigate the impact of genetic and environmental contexts on KRAS effector complex formation.
- To identify context-general and context-specific KRAS effectors.
- To elucidate how KRAS interactome changes influence cellular functions like metabolism and proliferation.
Main Methods:
- Affinity purification coupled with mass spectrometry (AP-MS) was used to identify KRAS interactors.
- Experiments involved exogenously expressed FLAG-KRAS wild-type and oncogenic mutants in Caco-2 cells.
- Cells were cultured in diverse media mimicking colon and colorectal cancer conditions.
Main Results:
- Four context-general and seven context-specific KRAS effectors were identified.
- Culture conditions exerted a greater influence on KRAS interaction rewiring than genetic mutations.
- Functional validation confirmed context-dependent differences in cell metabolism and proliferation.
Conclusions:
- Environmental contexts significantly rewire KRAS-effector networks, impacting cellular functions.
- This context-dependent network rewiring provides insights into tissue-specific signaling mechanisms.
- The findings may explain why KRAS oncogenic mutants cause cancer in specific tissues.
Related Concept Videos
Assembly of Signaling Complexes
Interaction domains in cell signaling
Interaction domains recognize exposed features of their binding partners containing post-translationally modified sequences,...
Small GTPases - Ras and Rho
Three regulatory proteins control their activity:
Calmodulin-dependent Signaling
The Ca2+-CaM complex does not have enzymatic activity by itself. Instead, the complex binds downstream target proteins, including membrane proteins or enzymes,...

