Serine/Threonine Phosphatases in Neurological Diseases

项目来源

美国卫生和人类服务部基金(HHS)

项目主持人

RIDDLE, ROBERT D

项目受资助机构

UNIVERSITY OF ARIZONA

立项年度

2019

立项时间

未公开

项目编号

5R01NS091336-05

研究期限

未知 / 未知

项目级别

国家级

受资助金额

333353.00美元

学科

Acquired Cognitive Impairment; Aging; Alzheimer's Disease; Alzheimer's Disease including Alzheimer's Disease Related Dementias (AD/ADRD); Brain Disorders; Dementia; Neurodegenerative; Neurosciences;

学科代码

未公开

基金类别

Non-SBIR/STTR RPGs

关键词

未公开

参与者

PAGE, REBECCA ; PETI, WOLFGANG

参与机构

NATIONAL INSTITUTE OF NEUROLOGICAL DISORDERS AND STROKE

项目标书摘要:? DESCRIPTION (provided by applicant): Signaling cascades direct information. Specific and strict temporal and spatial control is essential for the fidelity of this process, as derailed signling cascades lead to disease. Here, we investigate the control of signaling cascades in neurons. If neuronal signaling goes awry, the most prominent results are disease, such as Alzheimer's disease and Down syndrome. In this proposal, we specifically focus on the role of protein ser/thr phosphatases (PSPs) in the regulation of these signaling cascades, a histrionically understudied group of proteins that control essential biological functions. In particular, we focus on Calcineurin (CN) and Protein Phosphatase 1 (PP1), which together are responsible for dephosphorylating, with high fidelity and accuracy, more than 50% of all ser/thr residues in humans. Nevertheless, a detailed molecular understanding of how this fidelity and accuracy is achieved is largely missing. This is due, in part, to the fact that this group of proteins is exceedingly difficult to work with, which has frustrated the research community for the last 25 years. The combined laboratories that are part of this application have made significant progress in understanding the structural basis of PSP function and regulation by unraveling novel mechanisms for substrate specificity and signaling pathway fidelity. Our aims are: (1) to gain fundamental, molecular insights into CN substrate recognition, which, compared to our knowledge of substrate recognition by kinases, lags decades behind; (2) to elucidate the molecular mechanism by which CN is potently regulated by RCAN1, a trisomy 21 protein that leads to dysregulation of NFAT signaling and hyper-phosphorylation of tau, leading to Down syndrome and Alzheimer's disease, respectively; and (3) to establish how PP1 regulates translation initiation, setting the stage for the identification of novel routes for treating proten misfolding diseases such as Alzheimer's. As demonstrated over the last 10 years, we use our PSP: protein holoenzyme structures to develop function models, which are then tested in vivo in cells and neurons in collaboration with the Nairn Laboratory at Yale University, the Cyert Laboratory at Stanford University and the Shenolikar Laboratory at Duke-NUS. Thus, we integrate our structural and functional studies in order to obtain the comprehensive understanding necessary to fully explain the underlying biology of PSPs, ultimately identifying novel routes for the treatment of a variety of neurological disorders. Overall, this proposal rests on an outstanding foundation of: (1) 30 years of functional data that is waiting for a molecular interpretation to provide a deeper understanding and analysis of these critical PSP holoenzymes, (2) specific, highly technical skill sets for working with PP1 and CN, (3) strong preliminary results, including the first PSP: substrate model and (4) an outstanding assembled team that has successfully collaborated for more than 10 years to elucidate the molecular basis of PSP regulation. Therefore, the proposed structural and functional studies will provide a detailed understanding of the roles of CN and PP1 in the brain and will enable us to selectively modulate these particular signaling cascades for medical benefit.

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  • 1.Combining cryo-electron microscopy (cryo-EM) with orthogonal solution state methods to define the molecular basis of the phosphoprotein phosphatase family regulation and substrate specificity.

    • Peti, Wolfgang;Padi, Sathish K R;Page, Rebecca
    • 《Current opinion in structural biology》
    • 2025年
    • 91卷
    • 期刊

    Protein phosphatases are dynamic enzymes that exhibit complex regulatory mechanisms, with disruptions in these regulatory processes associated with disease. It is now clear that many phosphatases assemble into large macromolecular complexes via the interaction of phosphatase-specific regulatory proteins and substrates containing short linear motifs (SLiMs) or short helical motifs (SHelMs). Here, we review how cryo-electron microscopy (cryo-EM) integrated with orthogonal methods to study dynamic protein-protein interactions (NMR spectroscopy, hydrogen-deuterium exchange mass spectrometry, among others) is leading to new discoveries about the mechanisms controlling phosphatase assembly, substrate recruitment and dephosphorylation and, in turn, are providing novel strategies for targeting phosphatase-related diseases. This review focuses on the recently determined structures and regulation of the phosphoprotein phosphatase (PPP) family of ser/thr phosphatases-PP1, PP2A, Calcineurin and PP5. Copyright © 2025 Elsevier Ltd. All rights reserved.

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  • 3.PP2A/B55alpha substrate recruitment as defined by the retinoblastoma-related protein p107

    • 关键词:
    • FIBROBLAST-GROWTH-FACTOR; PP2A HOLOENZYMES; CELL-CYCLE; REGULATORY SUBUNIT; POCKET PROTEINS; PHOSPHORYLATION; DEPHOSPHORYLATION; PHOSPHATASES; MOTIF; SPECIFICITY
    • Fowle, Holly;Zhao, Ziran;Xu, Qifang;Wasserman, Jason S.;Wang, Xinru;Adeyemi, Mary;Feiser, Felicity;Kurimchak, Alison N.;Atar, Diba;McEwan, Brennan C.;Kettenbach, Arminja N.;Page, Rebecca;Peti, Wolfgang;Dunbrack, Roland L.;Grana, Xavier
    • 《ELIFE》
    • 2021年
    • 10卷
    • 期刊

    Protein phosphorylation is a reversible post-translation modification essential in cell signaling. This study addresses a long-standing question as to how the most abundant serine/threonine protein phosphatase 2 (PP2A) holoenzyme, PP2A/B55 alpha, specifically recognizes substrates and presents them to the enzyme active site. Here, we show how the PP2A regulatory subunit B55 alpha recruits p107, a pRB-related tumor suppressor and B55 alpha substrate. Using molecular and cellular approaches, we identified a conserved region 1 (R1, residues 615-626) encompassing the strongest p107 binding site. This enabled us to identify an 'HxRVxxV(619-625)' short linear motif (SLiM) in p107 as necessary for B55 alpha binding and dephosphorylation of the proximal pSer-615 in vitro and in cells. Numerous B55 alpha/PP2A substrates, including TAU, contain a related SLiM C-terminal from a proximal phosphosite, 'p[ST]-P-x(4,10)-[RK]-V-x-x-[VI]-R.' Mutation of conserved SLiM residues in TAU dramatically inhibits dephosphorylation by PP2A/B55 alpha, validating its generality. A data-guided computational model details the interaction of residues from the conserved p107 SLiM, the B55 alpha groove, and phosphosite presentation. Altogether, these data provide key insights into PP2A/B55 alpha's mechanisms of substrate recruitment and active site engagement, and also facilitate identification and validation of new substrates, a key step towards understanding PP2A/B55 alpha's role in multiple cellular processes.

    ...
  • 4.EDC3 phosphorylation regulates growth and invasion through controlling P-body formation and dynamics.

    • 关键词:
    • 0 / RNA, Messenger;P-bodies; cancers; kinases; mRNA processing; phosphorylation
    • Bearss, Jeremiah J;Padi, Sathish Kr;Singh, Neha;Cardo-Vila, Marina;Song, Jin H;Mouneimne, Ghassan;Fernandes, Nikita;Li, Yang;Harter, Matthew R;Gard, Jaime Mc;Cress, Anne E;Peti, Wolfgang;Nelson, Andrew Dl;Buchan, J Ross;Kraft, Andrew S;Okumura, Koichi
    • 《EMBO reports》
    • 2021年
    • 22卷
    • 4期
    • 期刊

    Regulation of mRNA stability and translation plays a critical role in determining protein abundance within cells. Processing bodies (P-bodies) are critical regulators of these processes. Here, we report that the Pim1 and 3 protein kinases bind to the P-body protein enhancer of mRNA decapping 3 (EDC3) and phosphorylate EDC3 on serine (S)161, thereby modifying P-body assembly. EDC3 phosphorylation is highly elevated in many tumor types, is reduced upon treatment of cells with kinase inhibitors, and blocks the localization of EDC3 to P-bodies. Prostate cancer cells harboring an EDC3 S161A mutation show markedly decreased growth, migration, and invasion in tissue culture and in xenograft models. Consistent with these phenotypic changes, the expression of integrin beta1 and alpha6 mRNA and protein is reduced in these mutated cells. These results demonstrate that EDC3 phosphorylation regulates multiple cancer-relevant functions and suggest that modulation of P-body activity may represent a new paradigm for cancer treatment. © 2021 The Authors.

    ...
  • 5.The structure of the RCAN1:CN complex explains the inhibition of and substrate recruitment by calcineurin

    • 关键词:
    • SYNDROME CRITICAL REGION; DOWN-SYNDROME; PHOSPHATASE CALCINEURIN; PVIVIT-PEPTIDE; TAU-PROTEIN; DSCR1; NFAT; NMR; EXPRESSION; GENE
    • Li, Yang;Sheftic, Sarah R.;Grigoriu, Simina;Schwieters, Charles D.;Page, Rebecca;Peti, Wolfgang
    • 《SCIENCE ADVANCES》
    • 2020年
    • 6卷
    • 27期
    • 期刊

    Regulator of calcineurin 1 (RCAN1) is an endogenous inhibitor of the Ser/Thr phosphatase calcineurin (CN). It has been shown that excessive inhibition of CN is a critical factor for Down syndrome and Alzheimer's disease. Here, we determined RCAN1's mode of action. Using a combination of structural, biophysical, and biochemical studies, we show that RCAN1 inhibits CN via multiple routes: first, by blocking essential substrate recruitment sites and, second, by blocking the CN active site using two distinct mechanisms. We also show that phosphorylation either inhibits RCAN1-CN assembly or converts RCAN1 into a weak inhibitor, which can be reversed by CN via dephosphorylation. This highlights the interplay between posttranslational modifications in regulating CN activity. Last, this work advances our understanding of how active site inhibition of CN can be achieved in a highly specific manner. Together, these data provide the necessary road map for targeting multiple neurological disorders.

    ...
  • 6.A dynamic charge-charge interaction modulates PP2A:B56 substrate recruitment

    • 关键词:
    • PROTEIN; BINDING; COMPLEXES; SEARCH; DEPHOSPHORYLATION; SPECIFICITY; REGULATOR; INSIGHTS; PLATFORM; PEPTIDE
    • Wang, Xinru;Garvanska, Dimitriya H.;Nasa, Isha;Ueki, Yumi;Zhang, Gang;Kettenbach, Arminja N.;Peti, Wolfgang;Nilsson, Jakob;Page, Rebecca
    • 《ELIFE》
    • 2020年
    • 9卷
    • 期刊

    The recruitment of substrates by the ser/thr protein phosphatase 2A (PP2A) is poorly understood, limiting our understanding of PP2A-regulated signaling. Recently, the first PP2A:B56 consensus binding motif, LxxIxE, was identified. However, most validated LxxIxE motifs bind PP2A: B56 with micromolar affinities, suggesting that additional motifs exist to enhance PP2A:B56 binding. Here, we report the requirement of a positively charged motif in a subset of PP2A:B56 interactors, including KIF4A, to facilitate B56 binding via dynamic, electrostatic interactions. Using molecular and cellular experiments, we show that a conserved, negatively charged groove on B56 mediates dynamic binding. We also discovered that this positively charged motif, in addition to facilitating KIF4A dephosphorylation, is essential for condensin I binding, a function distinct and exclusive from PP2A-B56 binding. Together, these results reveal how dynamic, charge-charge interactions fine-tune the interactions mediated by specific motifs, providing a new framework for understanding how PP2A regulation drives cellular signaling.

    ...
  • 7.Targeting the Non-catalytic RVxF Site of Protein Phosphatase-1 With Small Molecules for Ebola Virus Inhibition

    • 关键词:
    • Ebola virus; protein phosphatase-1; small molecule EBOV inhibitor;protein painting; surface plasmon resonance; split NanoBiT; massspectrometry;DEPHOSPHORYLATION; SPECIFICITY; SUBSTRATE; TRIAL; PP1
    • Lin, Xionghao;Ammosova, Tatiana;Choy, Meng S.;Pietzsch, Colette A.;Ivanov, Andrey;Ahmad, Asrar;Saygideger, Yasemin;Kumari, Namita;Kovalskyy, Dmytro;Uren, Aykut;Peti, Wolfgang;Bukreyev, Alexander;Nekhai, Sergei
    • 《FRONTIERS IN MICROBIOLOGY》
    • 2019年
    • 10卷
    • 期刊

    Ebola virus (EBOV) is a non-segmented negative-sense RNA virus that causes a severe human disease. The ongoing EBOV outbreak in the Eastern part of Democratic Republic of the Congo has resulted to date in over 2500 confirmed cases including over 1500 deaths. Difficulties with vaccine administration indicate the necessity for development of new general drugs and therapeutic strategies against EBOV. Host Ser/Thr protein phosphatases, particularly PP1 and PP2A, facilitate EBOV transcription by dephosphorylating the EBOV VP30 protein and switching activity of the polymerase complex toward replication. Previously, we developed small molecule 1E7-03 that targeted host protein phosphatase-1 (PP1) and induces phosphorylation of EBOV VP30 protein thus shifting transcription-replication balance and inhibiting EBOV replication. Here, we developed a new EBOV inhibitor, 1E7-07, that potently inhibits EBOV replication and displays significantly improved metabolic stability when compared to previously described 1E7-03. Proteome analysis of VP30 shows that 1E7-07 increases its phosphorylation on Thr-119 and Ser-124 over 3-fold with p < 0.001, which likely contributes to EBOV inhibition. We analyzed 1E7-07 binding to PP1 using a mass spectrometry-based protein painting approach. Combined with computational docking, protein painting shows that 1E7-07 binds to several PP1 sites including the RVxF site, C-terminal groove and NIPP1-helix binding pocket. Further analysis using surface plasmon resonance and a split NanoBiT system demonstrates that 1E7-07 binds primarily to the RVxF site. Together, detailed analysis of 1E7-07 binding to PP1 and identification of the RVxF site as the main binding site opens up an opportunity for future development of PP1-targeting EBOV inhibitors.

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  • 8.Molecular basis for the binding and selective dephosphorylation of Na+/H+ exchanger 1 by calcineurin

    • 关键词:
    • NHE1; ACTIVATION; KINASE; PHOSPHORYLATION; DOWNSTREAM; ISOFORM; PEPTIDE;CANCER; MODEL; PH
    • Hendus-Altenburger, Ruth;Wang, Xinru;Sjogaard-Frich, Lise M.;Pedraz-Cuesta, Elena;Sheftic, Sarah R.;Bendsoe, Anne H.;Page, Rebecca;Kragelund, Birthe B.;Pedersen, Stine F.;Peti, Wolfgang
    • 《NATURE COMMUNICATIONS》
    • 2019年
    • 10卷
    • 期刊

    Very little is known about how Ser/Thr protein phosphatases specifically recruit and dephosphorylate substrates. Here, we identify how the Na+/H+-exchanger 1 (NHE1), a key regulator of cellular pH homeostasis, is regulated by the Ser/Thr phosphatase calcineurin (CN). NHE1 activity is increased by phosphorylation of NHE1 residue T779, which is specifically dephosphorylated by CN. While it is known that Ser/Thr protein phosphatases prefer pThr over pSer, we show that this preference is not key to this exquisite CN selectivity. Rather a combination of molecular mechanisms, including recognition motifs, dynamic charge-charge interactions and a substrate interaction pocket lead to selective dephosphorylation of pT779. Our data identify T779 as a site regulating NHE1-mediated cellular acid extrusion and provides a molecular understanding of NHE1 substrate selection by CN, specifically, and how phosphatases recruit specific substrates, generally.

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  • 9.ASPP proteins discriminate between PP1 catalytic subunits through their SH3 domain and the PP1 C-tail

    • 关键词:
    • STRUCTURAL BASIS; PHOSPHATASE 1; SUBCELLULAR LOCALIZATIONS; BINDING;SPECIFICITY; RECOGNITION; SUBSTRATE; INTERACTS; PROTEOME; ISOFORMS
    • Bertran, M. Teresa;Mouilleron, Stephane;Zhou, Yanxiang;Bajaj, Rakhi;Uliana, Federico;Kumar, Ganesan Senthil;van Drogen, Audrey;Lee, Rebecca;Banerjee, Jennifer J.;Hauri, Simon;O'Reilly, Nicola;Gstaiger, Matthias;Page, Rebecca;Peti, Wolfgang;Tapon, Nicolas
    • 《NATURE COMMUNICATIONS》
    • 2019年
    • 10卷
    • 期刊

    Serine/threonine phosphatases such as PP1 lack substrate specificity and associate with a large array of targeting subunits to achieve the requisite selectivity. The tumour suppressor ASPP (apoptosis-stimulating protein of p53) proteins associate with PP1 catalytic subunits and are implicated in multiple functions from transcriptional regulation to cell junction remodelling. Here we show that Drosophila ASPP is part of a multiprotein PP1 complex and that PP1 association is necessary for several in vivo functions of Drosophila ASPP. We solve the crystal structure of the human ASPP2/PP1 complex and show that ASPP2 recruits PP1 using both its canonical RVxF motif, which binds the PP1 catalytic domain, and its SH3 domain, which engages the PP1 C-terminal tail. The ASPP2 SH3 domain can discriminate between PP1 isoforms using an acidic specificity pocket in the n-Src domain, providing an exquisite mechanism where multiple motifs are used combinatorially to tune binding affinity to PP1.

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