ABSTRACT
Pathogens produce diverse effector proteins to manipulate host cellular processes. However, how functional diversity is generated in an effector repertoire is poorly understood. Many effectors in the devastating plant pathogen Phytophthora contain tandem repeats of the "(L)WY" motif, which are structurally conserved but variable in sequences. Here, we discovered a functional module formed by a specific (L)WY-LWY combination in multiple Phytophthora effectors, which efficiently recruits the serine/threonine protein phosphatase 2A (PP2A) core enzyme in plant hosts. Crystal structure of an effector-PP2A complex shows that the (L)WY-LWY module enables hijacking of the host PP2A core enzyme to form functional holoenzymes. While sharing the PP2A-interacting module at the amino terminus, these effectors possess divergent C-terminal LWY units and regulate distinct sets of phosphoproteins in the host. Our results highlight the appropriation of an essential host phosphatase through molecular mimicry by pathogens and diversification promoted by protein modularity in an effector repertoire.
Subject(s)
Phosphoric Monoester Hydrolases , Phytophthora , Phosphoric Monoester Hydrolases/metabolism , Proteins/metabolism , Phytophthora/chemistry , Phytophthora/metabolism , Plants/metabolism , Protein Processing, Post-Translational , Protein Phosphatase 2/metabolism , Plant DiseasesABSTRACT
Gene expression by RNA polymerase II (RNAPII) is tightly controlled by cyclin-dependent kinases (CDKs) at discrete checkpoints during the transcription cycle. The pausing checkpoint following transcription initiation is primarily controlled by CDK9. We discovered that CDK9-mediated, RNAPII-driven transcription is functionally opposed by a protein phosphatase 2A (PP2A) complex that is recruited to transcription sites by the Integrator complex subunit INTS6. PP2A dynamically antagonizes phosphorylation of key CDK9 substrates including DSIF and RNAPII-CTD. Loss of INTS6 results in resistance to tumor cell death mediated by CDK9 inhibition, decreased turnover of CDK9 phospho-substrates, and amplification of acute oncogenic transcriptional responses. Pharmacological PP2A activation synergizes with CDK9 inhibition to kill both leukemic and solid tumor cells, providing therapeutic benefit in vivo. These data demonstrate that fine control of gene expression relies on the balance between kinase and phosphatase activity throughout the transcription cycle, a process dysregulated in cancer that can be exploited therapeutically.
Subject(s)
Cyclin-Dependent Kinase 9/metabolism , Molecular Targeted Therapy , Neoplasms/drug therapy , Neoplasms/genetics , Protein Phosphatase 2/metabolism , RNA-Binding Proteins/metabolism , Transcription, Genetic , Tumor Suppressor Proteins/metabolism , Animals , Cell Line, Tumor , Cyclin-Dependent Kinase 9/antagonists & inhibitors , Drug Resistance, Neoplasm/genetics , Gene Expression Regulation, Neoplastic , Humans , Mice, Inbred NOD , Phosphorylation , Protein Binding , RNA Polymerase II/chemistry , RNA Polymerase II/metabolism , Substrate SpecificityABSTRACT
Impairment of protein phosphatases, including the family of serine/threonine phosphatases designated PP2A, is essential for the pathogenesis of many diseases, including cancer. The ability of PP2A to dephosphorylate hundreds of proteins is regulated by over 40 specificity-determining regulatory "B" subunits that compete for assembly and activation of heterogeneous PP2A heterotrimers. Here, we reveal how a small molecule, DT-061, specifically stabilizes the B56α-PP2A holoenzyme in a fully assembled, active state to dephosphorylate selective substrates, such as its well-known oncogenic target, c-Myc. Our 3.6 Å structure identifies molecular interactions between DT-061 and all three PP2A subunits that prevent dissociation of the active enzyme and highlight inherent mechanisms of PP2A complex assembly. Thus, our findings provide fundamental insights into PP2A complex assembly and regulation, identify a unique interfacial stabilizing mode of action for therapeutic targeting, and aid in the development of phosphatase-based therapeutics tailored against disease specific phospho-protein targets.
Subject(s)
Protein Phosphatase 2/metabolism , Amino Acid Sequence , Animals , Cell Line, Tumor , Enzyme Activators/metabolism , HEK293 Cells , Heterografts , Humans , Male , Mice , Mice, Nude , Models, Molecular , Multiprotein Complexes/metabolism , Protein Phosphatase 2/chemistry , Protein SubunitsABSTRACT
Protein phosphatase 2A (PP2A) enzymes can suppress tumors, but they are often inactivated in human cancers overexpressing inhibitory proteins. Here, we identify a class of small-molecule iHAPs (improved heterocyclic activators of PP2A) that kill leukemia cells by allosterically assembling a specific heterotrimeric PP2A holoenzyme consisting of PPP2R1A (scaffold), PPP2R5E (B56ε, regulatory), and PPP2CA (catalytic) subunits. One compound, iHAP1, activates this complex but does not inhibit dopamine receptor D2, a mediator of neurologic toxicity induced by perphenazine and related neuroleptics. The PP2A complex activated by iHAP1 dephosphorylates the MYBL2 transcription factor on Ser241, causing irreversible arrest of leukemia and other cancer cells in prometaphase. In contrast, SMAPs, a separate class of compounds, activate PP2A holoenzymes containing a different regulatory subunit, do not dephosphorylate MYBL2, and arrest tumor cells in G1 phase. Our findings demonstrate that small molecules can serve as allosteric switches to activate distinct PP2A complexes with unique substrates.
Subject(s)
Protein Phosphatase 2/metabolism , Apoptosis , Cell Cycle Proteins/drug effects , Cell Cycle Proteins/metabolism , Cell Line, Tumor , Enzyme Activators/metabolism , G1 Phase , Humans , Multiprotein Complexes/metabolism , Multiprotein Complexes/physiology , Phenothiazines/pharmacology , Phosphorylation , Protein Phosphatase 2/physiology , Protein Subunits/metabolism , Trans-Activators/drug effects , Trans-Activators/metabolism , Transcription Factors/metabolismABSTRACT
During mitosis, chromatin condensation shapes chromosomes as separate, rigid, and compact sister chromatids to facilitate their segregation. Here, we show that, unlike wild-type yeast chromosomes, non-chromosomal DNA circles and chromosomes lacking a centromere fail to condense during mitosis. The centromere promotes chromosome condensation strictly in cis through recruiting the kinases Aurora B and Bub1, which trigger the autonomous condensation of the entire chromosome. Shugoshin and the deacetylase Hst2 facilitated spreading the condensation signal to the chromosome arms. Targeting Aurora B to DNA circles or centromere-ablated chromosomes or releasing Shugoshin from PP2A-dependent inhibition bypassed the centromere requirement for condensation and enhanced the mitotic stability of DNA circles. Our data indicate that yeast cells license the chromosome-autonomous condensation of their chromatin in a centromere-dependent manner, excluding from this process non-centromeric DNA and thereby inhibiting their propagation.
Subject(s)
Centromere/genetics , Chromosomes, Fungal/genetics , Mitosis , Saccharomyces cerevisiae/genetics , Aurora Kinase B/genetics , Aurora Kinase B/metabolism , Nuclear Proteins/genetics , Nuclear Proteins/metabolism , Protein Phosphatase 2/genetics , Protein Phosphatase 2/metabolism , Protein Serine-Threonine Kinases/genetics , Protein Serine-Threonine Kinases/metabolism , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae Proteins/metabolism , Sirtuin 2/genetics , Sirtuin 2/metabolismABSTRACT
B cell activation during normal immune responses and oncogenic transformation impose increased metabolic demands on B cells and their ability to retain redox homeostasis. While the serine/threonine-protein phosphatase 2A (PP2A) was identified as a tumor suppressor in multiple types of cancer, our genetic studies revealed an essential role of PP2A in B cell tumors. Thereby, PP2A redirects glucose carbon utilization from glycolysis to the pentose phosphate pathway (PPP) to salvage oxidative stress. This unique vulnerability reflects constitutively low PPP activity in B cells and transcriptional repression of G6PD and other key PPP enzymes by the B cell transcription factors PAX5 and IKZF1. Reflecting B-cell-specific transcriptional PPP-repression, glucose carbon utilization in B cells is heavily skewed in favor of glycolysis resulting in lack of PPP-dependent antioxidant protection. These findings reveal a gatekeeper function of the PPP in a broad range of B cell malignancies that can be efficiently targeted by small molecule inhibition of PP2A and G6PD.
Subject(s)
Carbon/metabolism , Glucose/metabolism , Precursor Cell Lymphoblastic Leukemia-Lymphoma/pathology , Animals , B-Lymphocytes/cytology , B-Lymphocytes/metabolism , Cell Line, Tumor , Cell Survival , Glucosephosphate Dehydrogenase/genetics , Glucosephosphate Dehydrogenase/metabolism , Glycolysis , Humans , Ikaros Transcription Factor/genetics , Ikaros Transcription Factor/metabolism , Mice , Mice, Inbred C57BL , Mice, Inbred NOD , Oxidative Stress , PAX5 Transcription Factor/genetics , PAX5 Transcription Factor/metabolism , Pentose Phosphate Pathway , Precursor Cell Lymphoblastic Leukemia-Lymphoma/metabolism , Protein Phosphatase 2/deficiency , Protein Phosphatase 2/genetics , Protein Phosphatase 2/metabolism , Proto-Oncogene Proteins c-bcl-2/metabolism , Transcription, GeneticABSTRACT
Progression through the cell cycle is controlled by regulated and abrupt changes in phosphorylation1. Mitotic entry is initiated by increased phosphorylation of mitotic proteins, a process driven by kinases2, whereas mitotic exit is achieved by counteracting dephosphorylation, a process driven by phosphatases, especially PP2A:B553. Although the role of kinases in mitotic entry is well established, recent data have shown that mitosis is only successfully initiated when the counterbalancing phosphatases are also inhibited4. Inhibition of PP2A:B55 is achieved by the intrinsically disordered proteins ARPP195,6 and FAM122A7. Despite their critical roles in mitosis, the mechanisms by which they achieve PP2A:B55 inhibition is unknown. Here, we report the single-particle cryo-electron microscopy structures of PP2A:B55 bound to phosphorylated ARPP19 and FAM122A. Consistent with our complementary NMR spectroscopy studies, both intrinsically disordered proteins bind PP2A:B55, but do so in highly distinct manners, leveraging multiple distinct binding sites on B55. Our extensive structural, biophysical and biochemical data explain how substrates and inhibitors are recruited to PP2A:B55 and provide a molecular roadmap for the development of therapeutic interventions for PP2A:B55-related diseases.
Subject(s)
Cryoelectron Microscopy , Intracellular Signaling Peptides and Proteins , Intrinsically Disordered Proteins , Phosphoproteins , Protein Phosphatase 2 , Humans , Intracellular Signaling Peptides and Proteins/chemistry , Intracellular Signaling Peptides and Proteins/metabolism , Intrinsically Disordered Proteins/chemistry , Intrinsically Disordered Proteins/metabolism , Intrinsically Disordered Proteins/ultrastructure , Mitosis , Nuclear Magnetic Resonance, Biomolecular , Phosphoproteins/chemistry , Phosphoproteins/metabolism , Phosphoproteins/ultrastructure , Phosphorylation , Protein Phosphatase 2/chemistry , Protein Phosphatase 2/metabolism , Protein Phosphatase 2/ultrastructureABSTRACT
The Integrator complex can terminate RNA polymerase II (Pol II) in the promoter-proximal region of genes. Previous work has shed light on how Integrator binds to the paused elongation complex consisting of Pol II, the DRB sensitivity-inducing factor (DSIF) and the negative elongation factor (NELF) and how it cleaves the nascent RNA transcript1, but has not explained how Integrator removes Pol II from the DNA template. Here we present three cryo-electron microscopy structures of the complete Integrator-PP2A complex in different functional states. The structure of the pre-termination complex reveals a previously unresolved, scorpion-tail-shaped INTS10-INTS13-INTS14-INTS15 module that may use its 'sting' to open the DSIF DNA clamp and facilitate termination. The structure of the post-termination complex shows that the previously unresolved subunit INTS3 and associated sensor of single-stranded DNA complex (SOSS) factors prevent Pol II rebinding to Integrator after termination. The structure of the free Integrator-PP2A complex in an inactive closed conformation2 reveals that INTS6 blocks the PP2A phosphatase active site. These results lead to a model for how Integrator terminates Pol II transcription in three steps that involve major rearrangements.
Subject(s)
Cryoelectron Microscopy , Models, Molecular , Protein Phosphatase 2 , RNA Polymerase II , RNA Polymerase II/metabolism , RNA Polymerase II/chemistry , RNA Polymerase II/ultrastructure , Protein Phosphatase 2/metabolism , Protein Phosphatase 2/chemistry , Protein Phosphatase 2/ultrastructure , Transcription Termination, Genetic , Humans , Transcription Factors/metabolism , Transcription Factors/chemistry , Protein Binding , Transcriptional Elongation Factors/metabolism , Transcriptional Elongation Factors/chemistry , Nuclear Proteins/metabolism , Nuclear Proteins/chemistry , Nuclear Proteins/ultrastructure , Protein Subunits/metabolism , Protein Subunits/chemistryABSTRACT
Entry into mitosis has been classically attributed to the activation of a cyclin B/Cdk1 amplification loop via a partial pool of this kinase becoming active at the end of G2 phase. However, how this initial pool is activated is still unknown. Here we discovered a new role of the recently identified PP2A-B55 inhibitor FAM122A in triggering mitotic entry. Accordingly, depletion of the orthologue of FAM122A in C. elegans prevents entry into mitosis in germline stem cells. Moreover, data from Xenopus egg extracts strongly suggest that FAM122A-dependent inhibition of PP2A-B55 could be the initial event promoting mitotic entry. Inhibition of this phosphatase allows subsequent phosphorylation of early mitotic substrates by cyclin A/Cdk, resulting in full cyclin B/Cdk1 and Greatwall (Gwl) kinase activation. Subsequent to Greatwall activation, Arpp19/ENSA become phosphorylated and now compete with FAM122A, promoting its dissociation from PP2A-B55 and taking over its phosphatase inhibition role until the end of mitosis.
Subject(s)
Caenorhabditis elegans , Protein Serine-Threonine Kinases , Animals , Phosphorylation , Protein Serine-Threonine Kinases/metabolism , Caenorhabditis elegans/genetics , Caenorhabditis elegans/metabolism , Protein Phosphatase 2/genetics , Protein Phosphatase 2/metabolism , Mitosis , CDC2 Protein Kinase/genetics , CDC2 Protein Kinase/metabolism , Cyclin B/metabolismABSTRACT
Cytokinetic abscission marks the final stage of cell division, during which the daughter cells physically separate through the generation of new barriers, such as the plasma membrane or cell wall. While the contractile ring plays a central role during cytokinesis in bacteria, fungi and animal cells, the process diverges in Apicomplexa. In Toxoplasma gondii, two daughter cells are formed within the mother cell by endodyogeny. The mechanism by which the progeny cells acquire their plasma membrane during the disassembly of the mother cell, allowing daughter cells to emerge, remains unknown. Here we identify and characterize five T. gondii proteins, including three protein phosphatase 2A subunits, which exhibit a distinct and dynamic localization pattern during parasite division. Individual downregulation of these proteins prevents the accumulation of plasma membrane at the division plane, preventing the completion of cellular abscission. Remarkably, the absence of cytokinetic abscission does not hinder the completion of subsequent division cycles. The resulting progeny are able to egress from the infected cells but fail to glide and invade, except in cases of conjoined twin parasites.
Subject(s)
Cytokinesis , Protein Phosphatase 2 , Protozoan Proteins , Toxoplasma , Toxoplasma/enzymology , Toxoplasma/genetics , Protozoan Proteins/metabolism , Protozoan Proteins/genetics , Protein Phosphatase 2/metabolism , Protein Phosphatase 2/genetics , Cell Membrane/metabolism , Animals , Cell Division , HumansABSTRACT
Homeostasis of the immune system depends on the proper function of regulatory T cells (T(reg) cells). Compromised suppressive activity of T(reg) cells leads to autoimmune disease and graft rejection and promotes anti-tumor immunity. Here we report a previously unrecognized requirement for the serine-threonine phosphatase PP2A in the function of T(reg) cells. T(reg) cells exhibited high PP2A activity, and T(reg) cell-specific ablation of the PP2A complex resulted in a severe, multi-organ, lymphoproliferative autoimmune disorder. Mass spectrometry revealed that PP2A associated with components of the mTOR metabolic-checkpoint kinase pathway and suppressed the activity of the mTORC1 complex. In the absence of PP2A, T(reg) cells altered their metabolic and cytokine profile and were unable to suppress effector immune responses. Therefore, PP2A is required for the function of T(reg) cells and the prevention of autoimmunity.
Subject(s)
Autoimmune Diseases/immunology , Lymphoproliferative Disorders/immunology , Protein Phosphatase 2/immunology , T-Lymphocytes, Regulatory/immunology , Animals , Autoimmune Diseases/genetics , Autoimmune Diseases/metabolism , Autoimmunity/genetics , Autoimmunity/immunology , Cells, Cultured , Ceramides/immunology , Ceramides/metabolism , Female , Flow Cytometry , Humans , Immunoblotting , Jurkat Cells , Lymphoproliferative Disorders/genetics , Lymphoproliferative Disorders/metabolism , Male , Mechanistic Target of Rapamycin Complex 1 , Mice, Inbred C57BL , Mice, Knockout , Mice, Transgenic , Multiprotein Complexes/immunology , Multiprotein Complexes/metabolism , Phosphorylation/immunology , Protein Phosphatase 2/genetics , Protein Phosphatase 2/metabolism , Signal Transduction/genetics , Signal Transduction/immunology , T-Lymphocytes, Regulatory/metabolism , TOR Serine-Threonine Kinases/immunology , TOR Serine-Threonine Kinases/metabolismABSTRACT
Autophagy is a process of cellular self-digestion induced by various forms of starvation. Although nitrogen deficit is a common trigger, some yeast cells induce autophagy upon switch from a rich to minimal media without nitrogen starvation. We show that the amino acid methionine is sufficient to inhibit such non-nitrogen-starvation (NNS)-induced autophagy. Methionine boosts synthesis of the methyl donor, S-adenosylmethionine (SAM). SAM inhibits autophagy and promotes growth through the action of the methyltransferase Ppm1p, which modifies the catalytic subunit of PP2A in tune with SAM levels. Methylated PP2A promotes dephosphorylation of Npr2p, a component of a conserved complex that regulates NNS autophagy and other growth-related processes. Thus, methionine and SAM levels represent a critical gauge of amino acid availability that is sensed via the methylation of PP2A to reciprocally regulate cell growth and autophagy.
Subject(s)
Autophagy , Methionine/metabolism , Protein Phosphatase 2/metabolism , S-Adenosylmethionine/metabolism , Saccharomyces cerevisiae/cytology , Saccharomyces cerevisiae/metabolism , Intracellular Signaling Peptides and Proteins/metabolism , Methylation , Protein Methyltransferases/metabolism , Saccharomyces cerevisiae/growth & development , Saccharomyces cerevisiae Proteins/metabolismABSTRACT
The rate of cell-cycle progression must be tuned in response to nutrient levels to ensure that sufficient materials are synthesized to generate viable daughters. We report that accumulation of the yeast M phase B-cyclin CLB2 mRNA depends on assembly and activation of the heterogeneous nuclear RNA-binding protein (hnRNP) arginine methyltransferase Hmt1, which is promoted by the kinase Dbf2 and countered by the PP2A phosphatase Pph22. Activated Hmt1 methylates hnRNPs, which in turn stabilize CLB2 transcripts. Dbf2 activation of Hmt1 is highly cooperative, producing a sharp increase in CLB2, whereas Pph22 dephosphorylation is graded such that small changes in PP2A activity can cause large shifts in Dbf2-mediated Hmt1 activity. Starvation and rapamycin inhibition of TOR activate Pph22, causing a depletion of CLB2 and delay of M phase. We propose a general model wherein changes to Pph22 activity modulate cyclin mRNA stability to tune cell-cycle progression to environmental conditions.
Subject(s)
Cyclin B/genetics , RNA Stability , Saccharomyces cerevisiae Proteins/genetics , Saccharomyces cerevisiae/cytology , Saccharomyces cerevisiae/metabolism , Signal Transduction , Amino Acid Sequence , Cell Division , Cell Nucleus/metabolism , Cell Physiological Phenomena , Exoribonucleases/metabolism , Molecular Sequence Data , Protein Phosphatase 2/metabolism , Protein Serine-Threonine Kinases/metabolism , Protein-Arginine N-Methyltransferases/chemistry , Protein-Arginine N-Methyltransferases/metabolism , Repressor Proteins/chemistry , Repressor Proteins/metabolism , Ribonucleases/metabolism , Saccharomyces cerevisiae Proteins/chemistry , Saccharomyces cerevisiae Proteins/metabolism , Sequence AlignmentABSTRACT
Efficient release of promoter-proximally paused RNA Pol II into productive elongation is essential for gene expression. Recently, we reported that the Integrator complex can bind paused RNA Pol II and drive premature transcription termination, potently attenuating the activity of target genes. Premature termination requires RNA cleavage by the endonuclease subunit of Integrator, but the roles of other Integrator subunits in gene regulation have yet to be elucidated. Here we report that Integrator subunit 8 (IntS8) is critical for transcription repression and required for association with protein phosphatase 2A (PP2A). We find that Integrator-bound PP2A dephosphorylates the RNA Pol II C-terminal domain and Spt5, preventing the transition to productive elongation. Thus, blocking PP2A association with Integrator stimulates pause release and gene activity. These results reveal a second catalytic function associated with Integrator-mediated transcription termination and indicate that control of productive elongation involves active competition between transcriptional kinases and phosphatases.
Subject(s)
Drosophila Proteins/metabolism , Protein Phosphatase 2/metabolism , Protein Subunits/metabolism , Transcription Factors/metabolism , Transcription Termination, Genetic , Amino Acid Motifs , Amino Acid Sequence , Animals , Conserved Sequence , Drosophila Proteins/chemistry , Drosophila melanogaster , Gene Expression Regulation , Genetic Loci , Humans , Phosphorylation , Promoter Regions, Genetic , Protein Subunits/chemistry , RNA Polymerase II/chemistry , RNA Polymerase II/metabolism , Signal Transduction , Substrate Specificity , Transcription Factors/chemistryABSTRACT
The functional relevance and mechanistic basis of the effects of the neurotransmitter dopamine (DA) on inflammation remain unclear. Here we reveal that DA inhibited TLR2-induced NF-κB activation and inflammation via the DRD5 receptor in macrophages. We found that the DRD5 receptor, via the EFD and IYX(X)I/L motifs in its CT and IC3 loop, respectively, can directly recruit TRAF6 and its negative regulator ARRB2 to form a multi-protein complex also containing downstream signaling proteins, such as TAK1, IKKs, and PP2A, that impairs TRAF6-mediated activation of NF-κB and expression of pro-inflammatory genes. Furthermore, the DA-DRD5-ARRB2-PP2A signaling axis can prevent S. aureus-induced inflammation and protect mice against S. aureus-induced sepsis and meningitis after DA treatment. Collectively, these findings provide the first demonstration of DA-DRD5 signaling acting to control inflammation and a detailed delineation of the underlying mechanism and identify the DRD5-ARRB2-PP2A axis as a potential target for future therapy of inflammation-associated diseases such as meningitis and sepsis.
Subject(s)
Dopamine/physiology , Inflammation/metabolism , Protein Phosphatase 2/metabolism , Receptors, Dopamine D5/metabolism , Signal Transduction , beta-Arrestin 2/metabolism , Amino Acid Motifs , Animals , Cells, Cultured , Cyclic AMP-Dependent Protein Kinases/metabolism , Cytokines/genetics , Cytokines/metabolism , HEK293 Cells , Humans , Intracellular Signaling Peptides and Proteins/metabolism , Mice , NF-kappa B/antagonists & inhibitors , NF-kappa B/metabolism , Receptors, Dopamine D5/chemistry , TNF Receptor-Associated Factor 6/antagonists & inhibitors , TNF Receptor-Associated Factor 6/metabolism , Toll-Like Receptor 2/antagonists & inhibitors , beta-Arrestin 2/physiologyABSTRACT
The AKT-mTOR pathway is a central regulator of cell growth and metabolism. Upon sustained mTOR activity, AKT activity is attenuated by a feedback loop that restrains upstream signaling. However, how cells control the signals that limit AKT activity is not fully understood. Here, we show that MASTL/Greatwall, a cell cycle kinase that supports mitosis by phosphorylating the PP2A/B55 inhibitors ENSA/ARPP19, inhibits PI3K-AKT activity by sustaining mTORC1- and S6K1-dependent phosphorylation of IRS1 and GRB10. Genetic depletion of MASTL results in an inefficient feedback loop and AKT hyperactivity. These defects are rescued by the expression of phosphomimetic ENSA/ARPP19 or inhibition of PP2A/B55 phosphatases. MASTL is directly phosphorylated by mTORC1, thereby limiting the PP2A/B55-dependent dephosphorylation of IRS1 and GRB10 downstream of mTORC1. Downregulation of MASTL results in increased glucose uptake in vitro and increased glucose tolerance in adult mice, suggesting the relevance of the MASTL-PP2A/B55 kinase-phosphatase module in controlling AKT and maintaining metabolic homeostasis.
Subject(s)
Mechanistic Target of Rapamycin Complex 1 , Protein Phosphatase 2 , Protein Serine-Threonine Kinases , Animals , Mice , Cell Cycle/genetics , Glucose/metabolism , Mechanistic Target of Rapamycin Complex 1/genetics , Mechanistic Target of Rapamycin Complex 1/metabolism , Mitosis , Phosphatidylinositol 3-Kinases/genetics , Phosphorylation , Protein Phosphatase 2/genetics , Protein Phosphatase 2/metabolism , Protein Serine-Threonine Kinases/metabolism , Proto-Oncogene Proteins c-akt/genetics , Proto-Oncogene Proteins c-akt/metabolismABSTRACT
The phytochrome (phy) family of sensory photoreceptors modulates developmental programs in response to ambient light. Phys also control gene expression in part by directly interacting with the bHLH class of transcription factors, PHYTOCHROME-INTERACTING FACTORS (PIFs), and inducing their rapid phosphorylation and degradation. Several kinases have been shown to phosphorylate PIFs and promote their degradation. However, the phosphatases that dephosphorylate PIFs are less understood. In this study, we describe 4 regulatory subunits of the Arabidopsis (Arabidopsis thaliana) protein PHOSPHATASE 2A (PP2A) family (B'α, B'ß, Bâ³α, and Bâ³ß) that interact with PIF3 in yeast 2-hybrid, in vitro and in vivo assays. The pp2abâ³αß and bâ³αß/b'αß mutants display short hypocotyls, while the overexpression of the B subunits induces longer hypocotyls compared with the wild type (WT) under red light. The light-induced degradation of PIF3 is faster in the bâ³αß/b'αß quadruple mutant compared with that in the WT. Consistently, immunoprecipitated PP2A A and B subunits directly dephosphorylate PIF3-MYC in vitro. An RNA-sequencing analysis shows that Bâ³α and Bâ³ß alter global gene expression in response to red light. PIFs (PIF1, PIF3, PIF4, and PIF5) are epistatic to these B subunits in regulating hypocotyl elongation under red light. Collectively, these data show an essential function of PP2A in dephosphorylating PIF3 to modulate photomorphogenesis in Arabidopsis.
Subject(s)
Arabidopsis Proteins , Arabidopsis , Basic Helix-Loop-Helix Transcription Factors , Gene Expression Regulation, Plant , Protein Phosphatase 2 , Arabidopsis/genetics , Arabidopsis/metabolism , Arabidopsis/growth & development , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Basic Helix-Loop-Helix Transcription Factors/metabolism , Basic Helix-Loop-Helix Transcription Factors/genetics , Protein Phosphatase 2/metabolism , Protein Phosphatase 2/genetics , Phosphorylation , Hypocotyl/growth & development , Hypocotyl/genetics , Hypocotyl/metabolism , Light , MutationABSTRACT
Mitosis in metazoa requires nuclear envelope (NE) disassembly and reassembly. NE disassembly is driven by multiple phosphorylation events. Mitotic phosphorylation of the protein BAF reduces its affinity for chromatin and the LEM family of inner nuclear membrane proteins; loss of this BAF-mediated chromatin-NE link contributes to NE disassembly. BAF must reassociate with chromatin and LEM proteins at mitotic exit to reform the NE; however, how its dephosphorylation is regulated is unknown. Here, we show that the C. elegans protein LEM-4L and its human ortholog Lem4 (also called ANKLE2) are both required for BAF dephosphorylation. They act in part by inhibiting BAF's mitotic kinase, VRK-1, in vivo and in vitro. In addition, Lem4/LEM-4L interacts with PP2A and is required for it to dephosphorylate BAF during mitotic exit. By coordinating VRK-1- and PP2A-mediated signaling on BAF, Lem4/LEM-4L controls postmitotic NE formation in a function conserved from worms to humans.
Subject(s)
Caenorhabditis elegans Proteins/metabolism , Caenorhabditis elegans/cytology , Caenorhabditis elegans/metabolism , Membrane Proteins/metabolism , Mitosis , Nuclear Envelope/metabolism , Nuclear Proteins/metabolism , Protein Phosphatase 2/metabolism , Protein Serine-Threonine Kinases/metabolism , Animals , Caenorhabditis elegans/enzymology , Caenorhabditis elegans Proteins/chemistry , Caenorhabditis elegans Proteins/genetics , Carrier Proteins/metabolism , DNA-Binding Proteins/metabolism , HeLa Cells , Humans , Membrane Proteins/chemistry , Mutation , Nuclear Proteins/chemistry , Protein Serine-Threonine Kinases/geneticsABSTRACT
The inflammasome initiates innate defence and inflammatory responses by activating caspase-1 and pyroptotic cell death in myeloid cells1,2. It consists of an innate immune receptor/sensor, pro-caspase-1, and a common adaptor molecule, ASC. Consistent with their pro-inflammatory function, caspase-1, ASC and the inflammasome component NLRP3 exacerbate autoimmunity during experimental autoimmune encephalomyelitis by enhancing the secretion of IL-1ß and IL-18 in myeloid cells3-6. Here we show that the DNA-binding inflammasome receptor AIM27-10 has a T cell-intrinsic and inflammasome-independent role in the function of T regulatory (Treg) cells. AIM2 is highly expressed by both human and mouse Treg cells, is induced by TGFß, and its promoter is occupied by transcription factors that are associated with Treg cells such as RUNX1, ETS1, BCL11B and CREB. RNA sequencing, biochemical and metabolic analyses demonstrated that AIM2 attenuates AKT phosphorylation, mTOR and MYC signalling, and glycolysis, but promotes oxidative phosphorylation of lipids in Treg cells. Mechanistically, AIM2 interacts with the RACK1-PP2A phosphatase complex to restrain AKT phosphorylation. Lineage-tracing analysis demonstrates that AIM2 promotes the stability of Treg cells during inflammation. Although AIM2 is generally accepted as an inflammasome effector in myeloid cells, our results demonstrate a T cell-intrinsic role of AIM2 in restraining autoimmunity by reducing AKT-mTOR signalling and altering immune metabolism to enhance the stability of Treg cells.
Subject(s)
Autoimmunity/immunology , DNA-Binding Proteins/immunology , Encephalomyelitis, Autoimmune, Experimental/immunology , Encephalomyelitis, Autoimmune, Experimental/prevention & control , T-Lymphocytes, Regulatory/immunology , T-Lymphocytes, Regulatory/metabolism , Animals , CARD Signaling Adaptor Proteins/deficiency , DNA-Binding Proteins/deficiency , DNA-Binding Proteins/genetics , Encephalomyelitis, Autoimmune, Experimental/metabolism , Female , Glycolysis , Humans , Inflammasomes , Inflammation/immunology , Mice , Oxidative Phosphorylation , Phosphorylation , Protein Phosphatase 2/metabolism , Proto-Oncogene Proteins c-akt/metabolism , Proto-Oncogene Proteins c-myc/metabolism , Receptors for Activated C Kinase/metabolism , TOR Serine-Threonine Kinases/metabolism , Transcription Factors/metabolism , Transforming Growth Factor betaABSTRACT
Dysregulation of chromatin methylation is associated with defects in cellular differentiation as well as a variety of cancers. How cells regulate the opposing activities of histone methyltransferase and demethylase enzymes to set the methylation status of the epigenome for proper control of gene expression and metabolism remains poorly understood. Here, we show that loss of methylation of the major phosphatase PP2A in response to methionine starvation activates the demethylation of histones through hyperphosphorylation of specific demethylase enzymes. In parallel, this regulatory mechanism enables cells to preserve SAM by increasing SAH to limit SAM consumption by methyltransferase enzymes. Mutants lacking the PP2A methyltransferase or the effector H3K36 demethylase Rph1 exhibit elevated SAM levels and are dependent on cysteine due to reduced capacity to sink the methyl groups of SAM. Therefore, PP2A directs the methylation status of histones by regulating the phosphorylation status of histone demethylase enzymes in response to SAM levels.