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Biology subjects

Gilley, R.

Publications and source records attributed to Gilley, R..

3 recordsLinked to original sources

A GCN1-independent activator of the kinase GCN2

Mutations of EIF2AK4, which encodes the eIF2 kinase GCN2, cause a severe inherited form of pulmonary hypertension called pulmonary veno-occlusive disease (PVOD). Some pathogenic variants of GCN2 are amenable to pharmacological reactivation by low concentrations of ATP-pocket binding inhibitors. Kinase inhibition at modestly elevated concentrations limits the clinical utility of these drugs against PVOD. We therefore performed an in cellulo chemical screen for GCN2 activators and identified three structurally distinct compounds with low micromolar stimulatory activities. Unlike previously described GCN2 activators, one of these molecules activated GCN2 independently of GCN1. Modelling supported by structure activity screens suggested it binds within the ATP-pocket of GCN2, but unlike existing ligands does not protrude inward into the allosteric pocket or outward into the solvent. This overcomes a key requirement of other GCN2 activators.

cell biology↗

RAF inhibitors activate the integrated stress response by direct activation of GCN2

Paradoxical RAF activation by chemical RAF inhibitors (RAFi) is a well-understood on-target biological and clinical response. In this study, we show that a range of RAFi drive ERK1/2-independent activation of the Unfolded Protein Response (UPR), including expression of ATF4 and CHOP, that required the translation initiation factor eIF2. RAFi-induced ATF4 and CHOP expression was not reversed by inhibition of PERK, a known upstream activator of the eIF2-dependent Integrated Stress Response (ISR). Rather, we found that RAFi exposure activated GCN2, an alternate eIF2 kinase, leading to eIF2-dependent (and ERK1/2-independent) ATF4 and CHOP expression. The GCN2 kinase inhibitor A-92, GCN2 RNAi, GCN2 knock-out or ISRIB (an eIF2 antagonist) all reversed RAFi-induced expression of ATF4 and CHOP indicating that RAFi require GCN2 to activate the ISR. RAFi also activated full-length recombinant GCN2 in vitro and in cells, generating a characteristic bell-shaped concentration-response curve, reminiscent of RAFi-driven paradoxical activation of WT RAF dimers. Activation of the ISR by RAFi was abolished by GCN2 kinase dead mutations and M802A or M802G gatekeeper mutations, suggesting that RAFi bind directly to the GCN2 kinase domain; this was supported by mechanistic structural models of RAFi interaction with GCN2. Since the ISR is a critical pathway for determining cell survival or death, our observations may be relevant to the clinical use of RAFi, where paradoxical GCN2 activation may be a previously unappreciated off-target effect that may modulate tumour cell responses.

biochemistry↗

Paradoxical Activation of GCN2 by ATP-competitive inhibitors via allosteric activation and autophosphorylation

Recently it has been found that General Control Non-derepressible 2 (GCN2) can be activated by an array of small molecule ATP-competitive inhibitors, including clinically relevant compounds such as Ponatinib, and compounds specifically designed to be GCN2 inhibitors, such as GCN2iB. Furthermore, we recently showed that GCN2 can be activated in cells by clinically approved small molecule RAF inhibitors. GCN2 is a drug target, specifically in cancers such as mesothelioma, and a better understanding of this paradoxical activation is required to develop drugs which truly inhibit the enzyme. Using biochemical assays and structural mass spectrometry, we present a model for how GCN2 is activated by these compounds by promoting an active conformation in the HisRS domain while competitively inhibiting the kinase domain. This conformation promotes activating phosphorylation of GCN2, potentially through phosphorylation of other activated GCN2 molecules which are not bound to compound. Together this model suggests that efforts to inhibit GCN2 would benefit from exploring allosteric routes rather than targeting the ATP-binding pocket of the kinase domain.

biochemistry↗