ERK1/2 inhibitors: New weapons to inhibit the RAS-regulated RAF-MEK1/2-ERK1/2 pathway

Andrew M Kidger1, James Sipthorp1, Simon J Cook1

  • 1Signalling Programme, The Babraham Institute, Babraham Research Campus, Cambridge CB22 3AT, England, United Kingdom.

Pharmacology & Therapeutics
|February 19, 2018
PubMed

Insights

Targeting ERK1/2 is crucial for overcoming cancer resistance to RAF/MEK inhibitors. New ERK1/2 inhibitors with distinct mechanisms offer promising therapeutic strategies for various cancers.

Area of Science:

  • Oncology
  • Molecular Biology
  • Pharmacology

Background:

  • The RAS-RAF-MEK-ERK signaling pathway is frequently dysregulated in cancers due to mutations.
  • RAF and MEK inhibitors are clinically approved but face challenges with innate and acquired resistance.
  • ERK1/2 are validated as direct therapeutic targets due to pathway linearity and resistance mechanisms.

Purpose of the Study:

  • To review the validation of ERK1/2 as anti-cancer drug targets.
  • To discuss the mechanisms of action of novel ERK1/2 inhibitors.
  • To explore strategies for overcoming resistance and optimizing combination therapies involving ERK1/2 inhibitors.

Main Methods:

  • Review of preclinical and clinical data on ERK1/2 inhibitors.
  • Analysis of resistance mechanisms to RAF/MEK inhibitors.
  • Examination of the distinct mechanisms of action (catalytic, dual, covalent) of novel ERK1/2 inhibitors.

Main Results:

  • ERK1/2 inhibition is a validated strategy to overcome resistance to RAF/MEK inhibitors.
  • Novel ERK1/2 inhibitors with potent selectivity are entering clinical trials.
  • Different inhibitor mechanisms may influence cellular response and adaptation.

Conclusions:

  • ERK1/2 inhibitors represent a significant advancement in cancer therapy.
  • Combination strategies with RAF/MEK inhibitors are essential to prevent and overcome resistance.
  • Understanding inhibitor mechanisms is key to predicting efficacy and guiding treatment decisions.

Related Concept Videos

meta-Directing Deactivators: –NO2, –CN, –CHO, –⁠CO2R, –COR, –CO2H01:13

meta-Directing Deactivators: –NO2, –CN, –CHO, –⁠CO2R, –COR, –CO2H

All meta-directing substituents are deactivating groups. These substituents withdraw electrons from the aromatic ring, making the ring less reactive toward electrophilic substitution. For example, the nitration of nitrobenzene is 100,000 times slower than that of benzene because of the deactivating effect of the nitro group. The first step in an electrophilic aromatic substitution is the addition of an electrophile to form a resonance-stabilized carbocation. The energy diagrams for...
6.8K
2° Amines to N-Nitrosamines: Reaction with NaNO201:20

2° Amines to N-Nitrosamines: Reaction with NaNO2

Secondary amines react with nitrous acid to form N-nitrosamines, as depicted in Figure 1. Nitrous acid, a weak and unstable acid, is formed in situ from an aqueous solution of sodium nitrite and strong acids, such as hydrochloric acid or sulfuric acid, in cold conditions. In the presence of an acid, the nitrous acid gets protonated. The subsequent loss of water results in the formation of the electrophile known as nitrosonium ion.
5.5K
SN2 Reaction: Kinetics02:14

SN2 Reaction: Kinetics

Kinetic Studies and Significance
In a chemical reaction, a relationship exists between the concentration of reactants and the rate at which the reaction proceeds. The study to measure this relationship is known as the kinetics of a chemical reaction. Kinetic studies are used to deduce the rate law of a chemical reaction, which provides information about the species involved during the transition state of the rate-determining step. Thus, kinetic studies help to derive the mechanism of a...
10.4K
SN2 Reaction: Mechanism02:27

SN2 Reaction: Mechanism

The kinetic studies of SN2 reactions suggest an essential feature of its mechanism: it is a single-step process without intermediates. Here, both the nucleophile and the substrate participate in the rate-determining step.
The presence of the more electronegative halogen in the substrate creates a polarized carbon-halide bond. The halide pulls the electron cloud generating an electrophilic center at the carbon atom. Thus, the carbon atom carries a partial positive charge while the halide has a...
17.6K
SN2 Reaction: Transition State02:26

SN2 Reaction: Transition State

An SN2 reaction of an alkyl halide is a single-step process in which bond formation between the nucleophile and the substrate and bond breaking between the substrate and the halide occurs simultaneously through a transition state without forming an intermediate.
When the nucleophile approaches the electrophilic carbon with its lone pairs, the halide acts as a leaving group and moves away with the electron-pair bonded to the carbon. Dotted partial bonds represent the bonds being formed or broken...
12.1K
SN2 Reaction: Stereochemistry02:23

SN2 Reaction: Stereochemistry

In an SN2 reaction, the nucleophilic attack on the substrate and departure of the leaving group occurs simultaneously through a transition state. As the nucleophile approaches the substrate from the back-side, the configuration of the substrate carbon changes from tetrahedral to trigonal bipyramidal and then back to tetrahedral, leading to an inversion in the configuration of the product.
If the substrate is an achiral molecule at the α-carbon, the inversion of configuration is not...
11.9K