Affinage

Showing STK11LKB1 is a alias.

STK11

Serine/threonine-protein kinase STK11 · UniProt Q15831

Length
433 aa
Mass
48.6 kDa
Annotated
2026-06-10
100 papers in source corpus 31 papers cited in narrative 31 extracted findings
Cross-family judge vs UniProt: Affinage preferred faithfulness: 7/7 claims corpus-supported (100%)

Mechanistic narrative

Synthesis pass · prose summary of the discoveries below

STK11/LKB1 is a serine-threonine master kinase that couples cellular energy status to growth control, cell polarity, metabolism, and chromatin state by directly phosphorylating and activating AMPK and a family of 14 AMPK-related kinases (PMID:19629071, PMID:16756488). Its catalytic activity and subcellular distribution are set by assembly into a heterotrimeric complex with the pseudokinase STRAD and the armadillo-repeat scaffold MO25, which activates LKB1 independently of T-loop phosphorylation and relocalizes it from nucleus to cytoplasm; many cancer-derived point mutants fail to engage this complex (PMID:15561763). Genetic epistasis in vivo confirms that LKB1 signals through AMPK to coordinate epithelial polarity and proliferation with energy supply (PMID:17470638), and through downstream branches it restricts mTORC1 to limit proliferation and tumorigenesis (PMID:30830877) and activates SIK kinases that constitute a core tumor-suppressive axis (PMID:31350327). LKB1 governs chromatin and transcriptional programs: loss reprograms chromatin accessibility and, via SOX17, drives metastatic epigenetic states (PMID:34341533), upregulates serine-one-carbon metabolism and DNA methylation when combined with KRAS (PMID:27799657), and de-represses CRTC2-CREB inflammatory gene expression through H3K27ac deposition (PMID:37172591). Beyond canonical signaling, LKB1 maintains cell-type identity and homeostasis in Treg cells via Foxp3 stabilization (PMID:28621313), TH17 cells via mitochondrial-TCA coupling (PMID:36171294), beta cells (PMID:19808022), Schwann cells (PMID:25195104), and neurons (PMID:25086610, PMID:30208308), and supports vesicular trafficking through GTP-RAB7-dependent receptor degradation (PMID:25180605). LKB1 activity is further tuned by nuclear sequestration through Nur77 (PMID:22983157) and an MKP1-p38 axis (PMID:37669951), by FBXO22-mediated Lys-63 ubiquitination (PMID:31217475), by Golgi recruitment via TBC1D23 (PMID:38413626), and by disruption of the STRAD-MO25 complex by midkine (PMID:35487917). Additional substrates and partners include PRMT5 (PMID:30289978), Sirt1 (PMID:34216621), GSK-3β (PMID:25069613), and the p53/JNK DNA-damage axis (PMID:36077459).

Mechanistic history

Synthesis pass · year-by-year structured walk · 29 steps
  1. 2004 High

    Established how LKB1 is switched on and positioned in the cell, answering why an apparently constitutive kinase requires partners for activity and localization.

    Evidence Point mutagenesis of 34 cancer mutants, Co-IP, kinase assays, and imaging of the LKB1-STRAD-MO25 complex

    PMID:15561763

    Open questions at the time
    • Structural basis of activation refined only later
    • Does not address tissue-specific regulators of complex assembly
  2. 2006 High

    Consolidated LKB1 as the upstream kinase for AMPK and 14 related kinases, defining the breadth of its substrate family across metabolism, polarity, and proliferation.

    Evidence Review of biochemical reconstitution and substrate phosphorylation assays

    PMID:16756488

    Open questions at the time
    • Which AMPK-related kinases dominate in which tissue not resolved
  3. 2007 High

    Demonstrated in vivo that LKB1 acts through AMPK to coordinate epithelial polarity and proliferation with energy status, moving beyond in vitro phosphorylation to physiological output.

    Evidence Drosophila lkb1/AMPKalpha genetics with phosphomimetic rescue epistasis

    PMID:17470638

    Open questions at the time
    • AMPK-independent LKB1 functions not addressed here
  4. 2007 Medium

    Revealed a kinase-independent LKB1 activity controlling cyclin D1 transcription and G1 arrest, indicating LKB1 outputs are not solely catalytic.

    Evidence WT vs catalytic-mutant LKB1 introduced into p21-/-p53-/- colorectal cells with promoter-binding and cell-cycle assays

    PMID:17575127

    Open questions at the time
    • Single lab
    • Mechanism of LKB1 recruitment to the cyclin D1 promoter not defined
    • Generality across cell types unknown
  5. 2009 High

    Dissected LKB1 outputs in a physiological tissue into separable mTOR, Par1b, and AMPK branches governing beta cell size, polarity, and insulin secretion.

    Evidence Beta cell-specific conditional knockout with pathway-specific genetic dissection

    PMID:19808022

    Open questions at the time
    • How LKB1 partitions among branches in a single cell not resolved
  6. 2012 High

    Identified nuclear sequestration by Nur77 as a regulated switch controlling cytoplasmic LKB1 availability and AMPK activation in metabolic control.

    Evidence Co-IP, fractionation, kinase assays, and Nur77 knockout mice with glucose assays plus TMPA ligand

    PMID:22983157

    Open questions at the time
    • Signals that release LKB1 physiologically beyond TMPA not defined
  7. 2014 High

    Defined a kinase-dependent LKB1 role in vesicular trafficking by showing direct binding to active RAB7 to route the angiogenic receptor NRP-1 to lysosomal degradation.

    Evidence GTP/GDP-RAB7 form-specific pulldowns, siRNA rescue, and tumor xenografts

    PMID:25180605

    Open questions at the time
    • Whether LKB1 phosphorylates a trafficking substrate not established
  8. 2014 High

    Showed LKB1 controls polarized transporter trafficking and hepatocyte canalicular architecture through a PKA-dependent, AMPK-independent route.

    Evidence Liver-specific knockout with FRAP, particle tracking, and cAMP/PKA rescue

    PMID:24643070

    Open questions at the time
    • Direct LKB1 substrate for ABCB11 trafficking unidentified
  9. 2014 Medium

    Linked LKB1 to genome protection via an AMPK-independent ROS-limiting cdc42-PAK1-p38-ATF2 axis enhancing antioxidant enzymes.

    Evidence LKB1 KO/re-expression with ROS, DNA damage assays, and LKB1-PAK1 Co-IP

    PMID:25263448

    Open questions at the time
    • Single lab
    • Whether LKB1 phosphorylates PAK1 directly not shown
  10. 2014 Medium

    Connected LKB1 to homology-directed DNA repair through AMPK-dependent control of HuR localization stabilizing BRCA1 mRNA.

    Evidence LKB1 knockdown/overexpression with HuR localization, mRNA stability, and HDR reporter assays

    PMID:25488815

    Open questions at the time
    • Single lab
    • Direct phosphorylation event in the HuR axis not mapped
  11. 2014 High

    Established that LKB1 maintains neuronal synaptic stability and Schwann cell axon support, extending its role to nervous-system homeostasis with differing AMPK dependence.

    Evidence Cell-type-specific conditional knockouts in rod photoreceptors and Schwann cells with morphology, ERG, and metabolic profiling

    PMID:25086610 PMID:25195104

    Open questions at the time
    • Downstream effectors in Schwann cells beyond metabolic rewiring not fully defined
  12. 2014 Medium

    Showed LKB1 controls satellite cell quiescence via AMPK/mTOR and differentiation via GSK-3beta phosphorylation, separating proliferation from differentiation outputs.

    Evidence Conditional knockouts with proliferation/differentiation assays and pathway inhibitors

    PMID:25069613

    Open questions at the time
    • Single lab
    • Directness of GSK-3beta phosphorylation moderately supported
  13. 2014 Medium

    Defined an LKB1-SIK-CRTC2 axis controlling inflammatory transcription through CBP/p300-mediated H3K27ac, linking the kinase to chromatin-level gene regulation.

    Evidence LKB1 deletion with H3K27ac ChIP, transcriptomics, and CRTC2 manipulation

    PMID:37172591

    Open questions at the time
    • Single lab
    • Direct SIK targets within the inflammatory program not enumerated
  14. 2014 Medium

    Showed STRADalpha stabilizes LKB1 protein via cytoplasmic compartmentalization, separating STRAD's stabilizing and axogenic functions.

    Evidence In vivo STRAD conditional expression in developing cortex with LKB1 protein-level readouts

    PMID:24594058

    Open questions at the time
    • Single lab
    • Mechanism of compartment-dependent stabilization unresolved
  15. 2016 High

    Revealed that LKB1 loss with KRAS rewires serine-one-carbon metabolism and DNA methylation, connecting the kinase to metabolic-epigenetic vulnerability.

    Evidence Genetically engineered mouse models with transcriptomics, metabolomics, and bisulfite sequencing plus pharmacological validation

    PMID:27799657

    Open questions at the time
    • mTOR-dependence dissected, but direct LKB1 substrate driving methylation not identified
  16. 2017 High

    Established LKB1 as a guardian of Treg lineage identity by preventing STAT4-driven CNS2 methylation to stabilize Foxp3 and augmenting TGF-beta signaling.

    Evidence T cell-specific conditional knockout with bisulfite sequencing and signaling assays

    PMID:28621313

    Open questions at the time
    • Whether LKB1 acts via AMPK-family kinases in this context not specified
  17. 2018 Medium

    Identified PRMT5 as a direct LKB1 substrate, with phosphorylation in the TIM-barrel domain required for methyltransferase activity, expanding LKB1 substrates beyond the AMPK family.

    Evidence Co-IP, in vitro kinase assay, site mutagenesis, and methyltransferase activity assays

    PMID:30289978

    Open questions at the time
    • Single lab
    • Cellular consequences of PRMT5 phosphorylation not fully mapped
  18. 2018 High

    Showed an LKB1-SIK1/SIK2 pathway ensures dendritic Robo2 localization to enforce Purkinje cell dendrite self-avoidance, a discrete neuronal patterning role.

    Evidence Conditional knockout with Robo2 localization imaging and rescue plus SIK downstream validation

    PMID:30208308

    Open questions at the time
    • How SIKs control Robo2 trafficking molecularly not resolved
  19. 2019 High

    Placed SIK family kinases as critical effectors of LKB1 tumor suppression in KRAS-driven lung adenocarcinoma via combinatorial in vivo genetics.

    Evidence CRISPR/Cas9 combinatorial knockout with histology and gene-expression epistasis

    PMID:31350327

    Open questions at the time
    • Relative contribution of individual SIKs not separated
  20. 2019 Medium

    Identified FBXO22-mediated Lys-63 polyubiquitination as a post-translational brake on LKB1 kinase activity promoting NSCLC growth.

    Evidence Co-IP, linkage-specific ubiquitination assays, and kinase/functional validation in cells and xenografts

    PMID:31217475

    Open questions at the time
    • Single lab
    • Ubiquitination site(s) on LKB1 not mapped
  21. 2019 High

    Demonstrated LKB1 restrains periosteal progenitor proliferation and osteogenic tumor formation through mTORC1, generalizing its mTOR-suppressive tumor-suppressor role to skeletal tissue.

    Evidence Ctsk-Cre conditional knockout with raptor deletion and mTORC1 inhibitor epistasis

    PMID:30830877

    Open questions at the time
    • Whether AMPK contributes upstream of mTORC1 here not dissected
  22. 2021 High

    Established LKB1 as a master regulator of chromatin accessibility whose loss activates SOX17 to drive metastatic epigenetic reprogramming.

    Evidence CRISPR screening with single-cell ATAC/RNA-seq and SOX17 gain/loss in vivo metastasis models

    PMID:34341533

    Open questions at the time
    • Signaling link from LKB1 loss to SOX17 induction not fully defined
  23. 2021 Medium

    Identified Sirt1 as a direct LKB1 substrate whose phosphorylation relieves DBC1 inhibition to drive mitochondrial biogenesis, adding a metabolic substrate.

    Evidence Resveratrol-stimulated binding, fluorometric Sirt1 activity assays, and phospho-site mutagenesis

    PMID:34216621

    Open questions at the time
    • Single lab
    • In vivo relevance of Sirt1 phosphorylation not established
  24. 2022 High

    Defined compartment-specific activation of LKB1 at the Golgi via TBC1D23, showing localized AMPK activation matters for development.

    Evidence Co-IP, fractionation, Golgi-targeted LKB1 rescue in zebrafish neurodevelopment

    PMID:38413626

    Open questions at the time
    • Relationship between Golgi and cytoplasmic LKB1 pools not quantified
  25. 2022 Medium

    Showed copper-loaded SCO1 tethers LKB1 to AMPK, revealing copper as a signaling input to LKB1-AMPK control of lipid catabolism.

    Evidence Co-IP of the ternary complex, copper-loading assays, AMPK activity, and Cp-ablated mice

    PMID:36261001

    Open questions at the time
    • Single lab
    • Stoichiometry and physiological copper range not defined
  26. 2022 Medium

    Identified intracellular midkine as a disruptor of the LKB1-STRAD-MO25 complex that dampens AMPK activation, adding a complex-disassembly regulatory mode.

    Evidence Co-IP with LKB1/STRAD and AMPK activity under glucose/2-DG stress

    PMID:35487917

    Open questions at the time
    • Single lab
    • Binding interface on the complex not mapped
  27. 2022 High

    Showed LKB1 couples mitochondrial membrane integrity to TH17 cytokine output by rectifying TCA glutamine flux and NADH/NAD+ balance.

    Evidence T cell-specific deletion with multi-omics, OPA1 deletion, and cytokine assays

    PMID:36171294

    Open questions at the time
    • Direct LKB1 substrate in the metabolic-cytokine link not pinpointed
  28. 2022 Medium

    Revealed reciprocal control of p53 in DNA damage, with LKB1 stabilizing p53 via JNK while downstream AMPK suppresses ROS-mediated p53 activation.

    Evidence LKB1 and AMPK double knockouts with cisplatin, JNK inhibition, and antioxidant rescue

    PMID:36077459

    Open questions at the time
    • Single lab
    • Direct vs indirect LKB1-JNK linkage not resolved
  29. 2023 High

    Defined an MKP1-p38-LKB1 axis controlling LKB1 nuclear export, providing a stress-responsive localization switch relevant to NASH.

    Evidence Hepatic MKP1 conditional knockout with fractionation, phospho-specific antibodies, and NASH diet models

    PMID:37669951

    Open questions at the time
    • Identity of the LKB1 export phospho-site not fully characterized in this corpus

Open questions

Synthesis pass · forward-looking unresolved questions
  • How LKB1 selects among its diverse substrate and localization-regulator programs in a given cell type, and which inputs dominate physiologically, remains unresolved.
  • No unified model integrating nuclear sequestration, ubiquitination, Golgi recruitment, and complex disruption
  • Substrate-specificity determinants beyond the AMPK family not mapped
  • Structural basis for context-dependent activation incomplete

Mechanism profile

Synthesis pass · controlled-vocabulary classification · explore literature graph →
Molecular activity
GO:0016740 transferase activity 4 GO:0140096 catalytic activity, acting on a protein 4 GO:0140110 transcription regulator activity 2
Localization
GO:0005634 nucleus 3 GO:0005829 cytosol 3 GO:0005794 Golgi apparatus 1
Pathway
R-HSA-1430728 Metabolism 5 R-HSA-1643685 Disease 5 R-HSA-162582 Signal Transduction 4 R-HSA-168256 Immune System 3 R-HSA-4839726 Chromatin organization 3
Complex memberships
LKB1-STRAD-MO25 heterotrimeric complex

Evidence

Reading pass · 31 per-paper findings extracted from the source corpus
Year Finding Method Journal Conf PMIDs
2009 LKB1 directly phosphorylates and activates AMPK, a central metabolic sensor, linking cell metabolism to growth control and cell polarity. LKB1 acts as an upstream kinase for AMPK and 14 related AMPK subfamily kinases. Biochemical kinase assays, genetic epistasis, and multiple experimental systems reviewed Nature reviews. Cancer High 19629071
2004 LKB1 forms a heterotrimeric complex with the pseudokinase STRAD and the armadillo-repeat scaffold protein MO25. Binding to STRAD-MO25 activates LKB1 kinase activity and re-localizes it from the nucleus to the cytoplasm. Two binding sites on MO25α are required for complex assembly, and LKB1 activation by STRADα-MO25α does not require phosphorylation of LKB1's own T-loop. STRADα binds ATP with high affinity but this is not required for LKB1 activation. Twelve of 34 cancer-derived LKB1 point mutants tested failed to interact with STRAD-MO25. Point mutagenesis of 34 LKB1 cancer mutants, co-immunoprecipitation, kinase activity assays, immunofluorescence localization Journal of cell science High 15561763
2006 LKB1 kinase activity and cellular localization are controlled through interaction with the catalytically inactive pseudokinase STRAD and the armadillo-repeat protein MO25. LKB1 phosphorylates and activates 14 kinases related to AMPK, mediating effects on metabolism, polarity, and proliferation. Biochemical reconstitution, interaction studies, substrate phosphorylation assays (reviewed from primary experimental literature) Annual review of biochemistry High 16756488
2007 In Drosophila, LKB1 is required in vivo for AMPK activation; lkb1 mutations phenocopy ampkalpha mutations (loss of epithelial polarity and overproliferation under energetic stress). A phosphomimetic AMPKα rescues lkb1 mutant phenotypes, establishing genetic epistasis: LKB1 signals through AMPK to coordinate epithelial polarity and proliferation with cellular energy status. Drosophila genetics: lkb1 and AMPKα mutant analysis, epistasis with phosphomimetic AMPKα, immunofluorescence The Journal of cell biology High 17470638
2012 The orphan nuclear receptor Nur77 binds and sequesters LKB1 in the nucleus, attenuating AMPK activation. The compound TMPA binds Nur77 with high affinity, releasing LKB1 to shuttle to the cytoplasm where it phosphorylates AMPKα. Nur77 knockout mice do not respond to TMPA's glucose-lowering effects, confirming on-pathway requirement. Co-immunoprecipitation, pulldown, subcellular fractionation, kinase assays, Nur77 knockout mouse model, glucose/insulin assays Nature chemical biology High 22983157
2009 LKB1 regulates pancreatic beta cell size, polarity, and function through distinct downstream targets: cell size is controlled via mTOR pathway; nuclear position polarity is controlled via LKB1 target Par1b; insulin secretion is restricted via AMPK. LKB1-deficient beta cells show dramatic increase in insulin secretion, altered nuclear/cilia localization, and 65% increased cell volume. Beta cell-specific LKB1 conditional knockout mice; histology, immunofluorescence, insulin secretion assays, pathway-specific genetic dissection Cell metabolism High 19808022
2014 LKB1 promotes RAB7-mediated trafficking of the angiogenic receptor NRP-1 from late endosomes to the lysosome for degradation, suppressing angiogenesis. LKB1 specifically binds GTP-bound (active) RAB7 but not GDP-bound RAB7. siRNA depletion of RAB7 disrupts NRP-1 lysosomal transfer and increases tumor growth and angiogenesis. Co-immunoprecipitation, pulldown with GTP/GDP-RAB7 forms, siRNA knockdown, live-cell trafficking assays, tumor xenograft models The Journal of clinical investigation High 25180605
2019 FBXO22 interacts with LKB1 and mediates Lys-63-linked polyubiquitination of LKB1, inhibiting LKB1 kinase activity and thereby promoting NSCLC cell growth through inhibition of LKB1-AMPK-mTOR signaling. Co-immunoprecipitation, ubiquitination assays (linkage-specific), kinase activity assays, overexpression/knockdown in cell lines and xenografts Cell death & disease Medium 31217475
2021 LKB1 directly binds Sirt1 in a resveratrol-stimulated manner and phosphorylates Sirt1 at three C-terminal serine residues, which increases intramolecular Sirt1 interactions (C-terminus binding to deacetylase core domain), eliminates DBC1 inhibition, and promotes Sirt1-substrate interaction. This LKB1-dependent Sirt1 activation increases mitochondrial biogenesis and respiration via PGC-1α deacetylation. Knockdown/rescue experiments, fluorometric Sirt1 activity assays, immunoprecipitation, pulldown assays, site-directed mutagenesis of phosphorylation sites The Journal of biological chemistry Medium 34216621
2014 LKB1 activity is required for microtubule-dependent trafficking of the bile acid transporter ABCB11 to the canalicular membrane and for hepatocyte polarization and canalicular network formation. In LKB1 knockout hepatocytes, ABCB11 trafficking is greatly reduced and only restored by cAMP (via PKA, not AMPK), not by taurocholate. Liver-specific LKB1 knockout mice, live-cell imaging, FRAP, particle tracking, biochemical fractionation PloS one High 24643070
2019 CRISPR/Cas9-based combinatorial knockout in a KRAS-driven lung adenocarcinoma mouse model demonstrated that SIK family kinases are critical downstream effectors of LKB1-mediated tumor suppression. SIK- and LKB1-deficient tumors share histologic and gene-expression similarities, placing SIKs in the same tumor-suppressive axis as LKB1. CRISPR/Cas9 combinatorial genome editing in vivo, histology, gene-expression profiling, genetic epistasis Cancer discovery High 31350327
2014 LKB1 controls inflammatory gene expression through the CRTC2-SIK axis: LKB1 loss triggers elevated CRTC2-CREB signaling downstream of SIK kinases, increasing cytokine and chemokine production. Mechanistically, CRTC2 cooperates with histone acetyltransferases CBP/p300 to deposit H3K27ac marks at inflammatory gene loci. Genetic deletion of LKB1, ChIP for H3K27ac, transcriptomic analysis, CRTC2 overexpression/knockdown, cytokine measurements Molecular cell Medium 37172591
2014 LKB1 reduces intracellular ROS and protects genome from oxidative damage independently of AMPK. Under elevated ROS, LKB1 binds to and maintains the activity of the cdc42-PAK1 complex, triggering p38 activation and downstream ATF-2 signaling, which enhances superoxide dismutase-2 and catalase activity. LKB1 KO/re-expression, ROS measurements, DNA damage assays, Co-IP of LKB1-PAK1 complex, kinase activity assays Oncogene Medium 25263448
2016 LKB1 loss combined with KRAS activation induces mTOR-dependent upregulation of the serine-glycine-one-carbon pathway and S-adenosylmethionine generation. Simultaneously, DNA methyltransferases are upregulated, elevating DNA methylation at retrotransposon elements. LKB1-deficient cells and tumors are sensitized to inhibition of serine biosynthesis and DNA methylation. Genetically engineered mouse models, primary pancreatic epithelial cells, transcriptomics, proteomics, metabolic analyses, bisulfite sequencing for DNA methylation Nature High 27799657
2021 LKB1 inactivation drives chromatin accessibility changes and acts as a master regulator of chromatin remodeling in lung adenocarcinoma primary tumors. Loss of LKB1 activates the endoderm transcription factor SOX17 in metastases, which drives a second wave of epigenetic changes enhancing metastatic ability; SOX17 expression is necessary and sufficient for this metastatic epigenetic reprogramming. CRISPR-Cas9 screening, single-cell multi-omic analysis (ATAC-seq, RNA-seq), in vivo metastasis models, SOX17 gain/loss-of-function Nature cell biology High 34341533
2017 Lkb1 maintains regulatory T (Treg) cell lineage identity by stabilizing Foxp3 expression. Lkb1 prevents STAT4-mediated methylation of the conserved noncoding sequence 2 (CNS2) in the Foxp3 locus. Independently, Lkb1 programs immunosuppressive gene expression through augmentation of TGF-β signaling. Treg-specific deletion of Lkb1 causes fatal early-onset autoimmune disease with loss of Foxp3 expression. T cell-specific conditional knockout, bisulfite sequencing of CNS2, STAT4 mechanistic studies, TGF-β signaling assays, flow cytometry Nature communications High 28621313
2022 LKB1 couples mitochondrial function to cytokine expression in TH17 cells by regulating TCA cycle metabolism. Mitochondrial membrane disruption activates LKB1, which restrains IL-17 expression. LKB1 deletion restores IL-17 expression in TH17 cells with disrupted mitochondrial membranes by rectifying aberrant TCA cycle glutamine flux, balancing NADH/NAD+, and preventing 2-hydroxyglutarate production. T cell-specific LKB1 deletion, multi-omics (metabolomics, transcriptomics, epigenomics), OPA1 deletion, functional cytokine assays Nature High 36171294
2022 The Golgi-localized protein TBC1D23 directly interacts with LKB1 and recruits it to the Golgi, promoting Golgi-specific activation of AMPK upon energy stress. Golgi-targeted LKB1 expression rescues TBC1D23 deficiency in zebrafish. LKB1 loss causes neurodevelopmental abnormalities in zebrafish that partially recapitulate TBC1D23 deficiency phenotypes. Co-immunoprecipitation, subcellular fractionation, AMPK activity assays, Golgi-targeted LKB1 constructs, zebrafish genetic models Nature communications High 38413626
2022 SCO1 constitutively interacts with LKB1; copper-loaded SCO1 directly tethers LKB1 to AMPK, activating AMPK and promoting mitochondrial biogenesis and fatty acid oxidation. This copper-SCO1-LKB1-AMPK complex assembly represents a mechanism by which copper as a signaling molecule regulates lipid catabolism. Co-immunoprecipitation of SCO1-LKB1-AMPK complex, biochemical copper-loading assays, AMPK activity assays, mouse models with Cp ablation Cell reports Medium 36261001
2022 Intracellular midkine (MDK) disrupts the LKB1-STRAD-Mo25 complex by interacting with LKB1 and STRAD, decreasing LKB1 activity and dampening basal and stress-induced AMPK activation. Co-immunoprecipitation, AMPK activity assays, cell-based glucose starvation/2-DG stress assays, MDK overexpression Cell death & disease Medium 35487917
2023 MKP1 promotes LKB1 nuclear retention through a MKP1-p38 MAPK-LKB1 signaling axis: under NASH conditions, oxidative stress induces MKP1 expression, leading to nuclear p38 MAPK dephosphorylation and decreased LKB1 phosphorylation at a site required for LKB1 nuclear export. Hepatic MKP1 deletion releases nuclear LKB1 to the cytoplasm, activating AMPKα and preventing NASH. Hepatic MKP1 conditional knockout mice, subcellular fractionation, phospho-specific antibodies, AMPK activity assays, NASH diet feeding Nature communications High 37669951
2014 LKB1 post-transcriptionally stimulates BRCA1 expression by inhibiting the cytoplasmic localization of the RNA-binding protein HuR in an AMPK-dependent manner, thereby stabilizing BRCA1 mRNA. This maintains homology-directed DNA repair (HDR) capacity. Cells lacking LKB1 display defective HDR and increased DNA double-strand breaks. LKB1 knockdown/overexpression, HuR localization assays, BRCA1 mRNA stability assays, DNA damage (γ-H2AX) assays, HDR reporter assay Nucleic acids research Medium 25488815
2014 LKB1 regulates synaptic remodeling in the aging retina: LKB1 and its substrate AMPK function in rod photoreceptors to maintain synaptic stability. Loss of either kinase in young adult mice produces retinal synaptic defects (aberrant axonal retraction, ectopic dendritic extension, ectopic synapses) resembling those in old wild-type animals. Genetic or pharmacological AMPK activation attenuates age-related synaptic alterations. Conditional KO of LKB1 and AMPK in rod photoreceptors, retinal immunofluorescence and EM morphology, ERG functional assays, pharmacological AMPK activation Nature neuroscience High 25086610
2014 LKB1 activity in Schwann cells is central to axon stability. LKB1 deletion in Schwann cells causes abnormalities in nerve energy and lipid homeostasis and increased lactate release that compensatorily supports distressed axons. AMPK and mTOR in Schwann cells are largely dispensable for this support function. SC-specific LKB1 conditional knockout mice, molecular, structural and behavioral characterization, metabolic profiling Nature neuroscience High 25195104
2018 In Purkinje cells, the LKB1-SIK1/SIK2 kinase pathway ensures dendritic localization of Robo2, a regulator of dendrite self-avoidance. PC-specific LKB1 deletion severely disrupts dendrite self-avoidance without affecting gross morphology. Restoration of dendritic Robo2 by overexpression largely rescues the self-avoidance defect in LKB1-deficient PCs. Conditional LKB1 KO in Purkinje cells, immunofluorescence for Robo2 localization, Robo2 rescue experiment, SIK1/SIK2 downstream validation Cell reports High 30208308
2014 STRADα specifically maintains LKB1 protein levels via cytoplasmic compartmentalization (reciprocal protein-stabilizing relationship in vivo). STRADβ is also sufficient for axogenesis in cortical neurons but does not stabilize LKB1 protein levels. In vivo STRAD conditional expression studies in developing cortex, immunofluorescence, Western blotting for LKB1 levels Neural development Medium 24594058
2019 LKB1 deficiency in periosteal mesenchymal progenitors (Ctsk+ cells) increases proliferation and osteoblast differentiation leading to osteogenic tumor formation. This effect is mediated via mTORC1, as raptor genetic deletion or mTORC1 inhibitor treatment ameliorates tumor progression in Ctsk-Cre Lkb1fl/fl mice. Conditional LKB1 KO in Ctsk-Cre cells, lineage tracing, mTORC1 genetic and pharmacological inhibition, xenograft models The Journal of clinical investigation High 30830877
2018 LKB1 directly interacts with and phosphorylates PRMT5 at T132, T139, and T144 residues within the TIM-Barrel domain. Point mutation of T139/144 to A drastically decreases PRMT5 methyltransferase activity, likely due to loss of interaction with regulatory proteins MEP50, pICln, and RiOK1. Co-immunoprecipitation, in vitro kinase assay, site-directed mutagenesis of PRMT5 phosphorylation sites, methyltransferase activity assay International journal of cancer Medium 30289978
2007 LKB1 catalytically deficient mutants (when introduced into DLD1 colorectal cancer cells) activate cyclin D1 expression through recruitment to response elements in the cyclin D1 promoter, and allow cell cycle progression to S phase. Wild-type LKB1 causes G1 arrest independent of p21 or p53. Introduction of LKB1 WT and catalytic mutants into p21-/-p53-/- colorectal cancer cells, cell cycle analysis, promoter-binding assays, Western blotting Cancer research Medium 17575127
2022 LKB1 stabilizes and activates p53 through the JNK pathway in response to cisplatin-induced DNA damage, promoting apoptosis. Conversely, AMPK (downstream of LKB1) negatively regulates cisplatin-induced apoptosis by suppressing ROS-mediated p53 activation, revealing reciprocal regulation of p53 by LKB1 and AMPK in DNA damage response. LKB1 and AMPKα1/α2 double knockout cells, cisplatin treatment, apoptosis assays, p53 stabilization assays, JNK pathway inhibition, antioxidant rescue International journal of molecular sciences Medium 36077459
2014 LKB1 limits satellite cell proliferation through the AMPK/mTOR pathway but facilitates differentiation through phosphorylation of GSK-3β (a WNT signaling component). Lkb1 null satellite cells fail to maintain quiescence and show accelerated proliferation but reduced differentiation. MyoD-Cre and Pax7-CreER conditional LKB1 knockout mice, satellite cell isolation, proliferation/differentiation assays, pathway inhibitor treatments Stem cells (Dayton, Ohio) Medium 25069613

Source papers

Stage 0 corpus · 100 papers · ranked by NIH iCite citations
Year Title Journal Citations PMID
2009 The LKB1-AMPK pathway: metabolism and growth control in tumour suppression. Nature reviews. Cancer 1607 19629071
2018 STK11/LKB1 Mutations and PD-1 Inhibitor Resistance in KRAS-Mutant Lung Adenocarcinoma. Cancer discovery 1359 29773717
2006 LKB1-dependent signaling pathways. Annual review of biochemistry 661 16756488
2002 Inactivation of LKB1/STK11 is a common event in adenocarcinomas of the lung. Cancer research 527 12097271
2021 Diminished Efficacy of Programmed Death-(Ligand)1 Inhibition in STK11- and KEAP1-Mutant Lung Adenocarcinoma Is Affected by KRAS Mutation Status. Journal of thoracic oncology : official publication of the International Association for the Study of Lung Cancer 334 34740862
2016 LKB1 loss links serine metabolism to DNA methylation and tumorigenesis. Nature 268 27799657
2013 LKB1 and AMPK and the cancer-metabolism link - ten years after. BMC biology 253 23587167
2005 New roles for the LKB1-->AMPK pathway. Current opinion in cell biology 213 15780593
2020 Concurrent Mutations in STK11 and KEAP1 Promote Ferroptosis Protection and SCD1 Dependence in Lung Cancer. Cell reports 200 33264619
2008 LKB1; linking cell structure and tumor suppression. Oncogene 179 19029933
2004 Relative frequency and morphology of cancers in STK11 mutation carriers. Gastroenterology 168 15188174
2014 Metabolic regulator LKB1 is crucial for Schwann cell-mediated axon maintenance. Nature neuroscience 163 25195104
2007 LKB1 and AMPK maintain epithelial cell polarity under energetic stress. The Journal of cell biology 157 17470638
2012 The orphan nuclear receptor Nur77 regulates LKB1 localization and activates AMPK. Nature chemical biology 155 22983157
2003 LKB1, a protein kinase regulating cell proliferation and polarity. FEBS letters 149 12829253
2024 CTLA4 blockade abrogates KEAP1/STK11-related resistance to PD-(L)1 inhibitors. Nature 145 39385035
2022 Glutaminase inhibition impairs CD8 T cell activation in STK11-/Lkb1-deficient lung cancer. Cell metabolism 144 35504291
2009 LKB1 regulates pancreatic beta cell size, polarity, and function. Cell metabolism 142 19808022
2021 Crocetin promotes clearance of amyloid-β by inducing autophagy via the STK11/LKB1-mediated AMPK pathway. Autophagy 141 33404280
2004 Analysis of the LKB1-STRAD-MO25 complex. Journal of cell science 129 15561763
2008 LKB1 and AMPK in cell polarity and division. Trends in cell biology 120 18314332
2019 LKB1/AMPK Pathway and Drug Response in Cancer: A Therapeutic Perspective. Oxidative medicine and cellular longevity 107 31781355
2004 LKB1 tumor suppressor protein: PARtaker in cell polarity. Trends in cell biology 104 15183188
2006 The LKB1 tumor suppressor kinase in human disease. Biochimica et biophysica acta 94 17010524
2012 Targeting LKB1 signaling in cancer. Biochimica et biophysica acta 93 23287572
2014 LKB1 and AMPK regulate synaptic remodeling in old age. Nature neuroscience 89 25086610
2003 Loss of Stk11/Lkb1 expression in pancreatic and biliary neoplasms. Modern pathology : an official journal of the United States and Canadian Academy of Pathology, Inc 89 12861065
2022 An LKB1-mitochondria axis controls TH17 effector function. Nature 81 36171294
2019 An LKB1-SIK Axis Suppresses Lung Tumor Growth and Controls Differentiation. Cancer discovery 81 31350327
2021 STK11/LKB1 Modulation of the Immune Response in Lung Cancer: From Biology to Therapeutic Impact. Cells 80 34831355
2017 Lkb1 maintains Treg cell lineage identity. Nature communications 77 28621313
2015 Targeting LKB1 in cancer - exposing and exploiting vulnerabilities. British journal of cancer 77 26196184
2020 STK11/LKB1 Mutations in NSCLC Are Associated with KEAP1/NRF2-Dependent Radiotherapy Resistance Targetable by Glutaminase Inhibition. Clinical cancer research : an official journal of the American Association for Cancer Research 76 33323404
2005 Mutations in the human LKB1/STK11 gene. Human mutation 74 16110486
2014 LKB1 and AMPK differentially regulate pancreatic β-cell identity. FASEB journal : official publication of the Federation of American Societies for Experimental Biology 73 25070369
2012 LKB1 and AMPK: central regulators of lymphocyte metabolism and function. Immunological reviews 69 22889215
2010 Molecular mechanisms of tumor suppression by LKB1. FEBS letters 68 21192934
2011 Regulation of AMP-activated protein kinase by LKB1 and CaMKK in adipocytes. Journal of cellular biochemistry 67 21312243
2019 Lkb1 deletion in periosteal mesenchymal progenitors induces osteogenic tumors through mTORC1 activation. The Journal of clinical investigation 62 30830877
2021 Resveratrol-induced Sirt1 phosphorylation by LKB1 mediates mitochondrial metabolism. The Journal of biological chemistry 60 34216621
2008 LKB1 and AMPK and the regulation of skeletal muscle metabolism. Current opinion in clinical nutrition and metabolic care 60 18403917
2014 Lkb1 is indispensable for skeletal muscle development, regeneration, and satellite cell homeostasis. Stem cells (Dayton, Ohio) 58 25069613
2014 Recent progress on liver kinase B1 (LKB1): expression, regulation, downstream signaling and cancer suppressive function. International journal of molecular sciences 57 25244018
2018 An exploration of genotype-phenotype link between Peutz-Jeghers syndrome and STK11: a review. Familial cancer 56 28900777
2004 LKB1 kinase: master and commander of metabolism and polarity. Current biology : CB 55 15186763
2010 The LKB1/AMPK polarity pathway. FEBS letters 54 21185289
2022 Downregulation of hepatic ceruloplasmin ameliorates NAFLD via SCO1-AMPK-LKB1 complex. Cell reports 53 36261001
1999 Germline mutations of the LKB1 (STK11) gene in Peutz-Jeghers patients. Journal of medical genetics 53 10353780
2014 LKB1 reduces ROS-mediated cell damage via activation of p38. Oncogene 51 25263448
2011 The tumor suppressor kinase LKB1: lessons from mouse models. Journal of molecular cell biology 51 21926085
2005 LKB1, the multitasking tumour suppressor kinase. Journal of clinical pathology 50 15623475
2021 LKB1 inactivation modulates chromatin accessibility to drive metastatic progression. Nature cell biology 49 34341533
2019 FBXO22 mediates polyubiquitination and inactivation of LKB1 to promote lung cancer cell growth. Cell death & disease 49 31217475
2014 Targeting the LKB1 tumor suppressor. Current drug targets 48 24387336
2011 LKB1 in lung cancerigenesis: a serine/threonine kinase as tumor suppressor. Protein & cell 48 21380642
2011 Role of LKB1-SAD/MARK pathway in neuronal polarization. Developmental neurobiology 48 21416623
2014 Protein kinase LKB1 promotes RAB7-mediated neuropilin-1 degradation to inhibit angiogenesis. The Journal of clinical investigation 47 25180605
2011 The role of LKB1 in lung cancer. Familial cancer 45 21516316
2008 LKB1 and lung cancer: more than the usual suspects. Cancer research 44 18483235
2007 Genetic defects underlying Peutz-Jeghers syndrome (PJS) and exclusion of the polarity-associated MARK/Par1 gene family as potential PJS candidates. Clinical genetics 44 17924967
2011 Liver kinase B1 (LKB1) in the pathogenesis of epithelial cancers. Cancer letters 42 21450399
2018 LKB1 regulates PRMT5 activity in breast cancer. International journal of cancer 40 30289978
2014 LKB1/AMPK and PKA control ABCB11 trafficking and polarization in hepatocytes. PloS one 40 24643070
2023 STK11/LKB1-Deficient Phenotype Rather Than Mutation Diminishes Immunotherapy Efficacy and Represents STING/Type I Interferon/CD8+ T-Cell Dysfunction in NSCLC. Journal of thoracic oncology : official publication of the International Association for the Study of Lung Cancer 39 37495171
2020 Emerging Therapeutic Implications of STK11 Mutation: Case Series. The oncologist 39 32396674
2020 STK11 (LKB1) missense somatic mutant isoforms promote tumor growth, motility and inflammation. Communications biology 38 32647375
2019 LKB1 Deficiency Renders NSCLC Cells Sensitive to ERK Inhibitors. Journal of thoracic oncology : official publication of the International Association for the Study of Lung Cancer 37 31634668
2007 LKB1 catalytically deficient mutants enhance cyclin D1 expression. Cancer research 36 17575127
2007 AMPK/LKB1 signaling in epithelial cell polarity and cell division. Cell cycle (Georgetown, Tex.) 36 17986859
2012 LKB1-AMPK axis revisited. Cell research 33 22801477
2019 Overexpression and Selective Anticancer Efficacy of ENO3 in STK11 Mutant Lung Cancers. Molecules and cells 32 31697874
2013 Dysregulation of mTOR activity through LKB1 inactivation. Chinese journal of cancer 31 23668926
2022 The Tumor Suppressor Kinase LKB1: Metabolic Nexus. Frontiers in cell and developmental biology 30 35573694
2007 Dialogue between LKB1 and AMPK: a hot topic at the cellular pole. Science's STKE : signal transduction knowledge environment 30 17878409
2015 Dissecting the signaling pathways that mediate cancer in PTEN and LKB1 double-knockout mice. Science signaling 28 26329580
2021 The Importance of STK11/LKB1 Assessment in Non-Small Cell Lung Carcinomas. Diagnostics (Basel, Switzerland) 27 33572782
2018 Versatile Roles of LKB1 Kinase Signaling in Neural Development and Homeostasis. Frontiers in molecular neuroscience 26 30333724
2002 Two novel mutations and a new STK11/LKB1 gene isoform in Peutz-Jeghers patients. Human mutation 26 12112668
2023 MKP1 promotes nonalcoholic steatohepatitis by suppressing AMPK activity through LKB1 nuclear retention. Nature communications 25 37669951
2022 Midkine noncanonically suppresses AMPK activation through disrupting the LKB1-STRAD-Mo25 complex. Cell death & disease 25 35487917
2020 LKB1 and cancer: The dual role of metabolic regulation. Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie 25 33068936
2009 The molecular mechanisms that underlie the tumor suppressor function of LKB1. Acta biochimica et biophysica Sinica 25 19204826
2023 LKB1 controls inflammatory potential through CRTC2-dependent histone acetylation. Molecular cell 24 37172591
2022 LKB1: An emerging therapeutic target for cardiovascular diseases. Life sciences 24 35907495
2018 Molecular mechanism of LKB1 in the invasion and metastasis of colorectal cancer. Oncology reports 24 30483811
2011 The LKB1 complex-AMPK pathway: the tree that hides the forest. Familial cancer 24 21656073
2022 Unraveling the Role of STK11/LKB1 in Non-small Cell Lung Cancer. Cureus 23 35165542
2022 The Distinct Roles of LKB1 and AMPK in p53-Dependent Apoptosis Induced by Cisplatin. International journal of molecular sciences 23 36077459
2006 An updated mutation spectrum in an Australian series of PJS patients provides further evidence for only one gene locus. Clinical genetics 23 17026623
2014 LKB1 preserves genome integrity by stimulating BRCA1 expression. Nucleic acids research 22 25488815
2018 The LKB1-SIK Pathway Controls Dendrite Self-Avoidance in Purkinje Cells. Cell reports 21 30208308
2014 STRAD pseudokinases regulate axogenesis and LKB1 stability. Neural development 21 24594058
2024 TBC1D23 mediates Golgi-specific LKB1 signaling. Nature communications 20 38413626
2004 Mapping of a translocation breakpoint in a Peutz-Jeghers hamartoma to the putative PJS locus at 19q13.4 and mutation analysis of candidate genes in polyp and STK11-negative PJS cases. Genes, chromosomes & cancer 20 15287029
2024 LKB1 biology: assessing the therapeutic relevancy of LKB1 inhibitors. Cell communication and signaling : CCS 19 38844908
2023 Tumor loss-of-function mutations in STK11/LKB1 induce cachexia. JCI insight 19 37092555
2022 LKB1: Can We Target an Hidden Target? Focus on NSCLC. Frontiers in oncology 19 35646638
2018 Intestinal Epithelial Cell-Derived LKB1 Suppresses Colitogenic Microbiota. Journal of immunology (Baltimore, Md. : 1950) 19 29352002
2006 LKB1: a sweet side to Peutz-Jeghers syndrome? Trends in molecular medicine 19 16530014
2020 Role of the Serine/Threonine Kinase 11 (STK11) or Liver Kinase B1 (LKB1) Gene in Peutz-Jeghers Syndrome. Critical reviews in eukaryotic gene expression 18 32749111

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