Literature DB >> 32727897

InsP7 is a small-molecule regulator of NUDT3-mediated mRNA decapping and processing-body dynamics.

Soumyadip Sahu1, Zhenzhen Wang1, Xinfu Jiao2, Chunfang Gu1, Nikolaus Jork3,4, Christopher Wittwer3,4, Xingyao Li1, Sarah Hostachy5, Dorothea Fiedler5, Huanchen Wang1, Henning J Jessen3,4, Megerditch Kiledjian2, Stephen B Shears6.   

Abstract

Regulation of enzymatic 5' decapping of messenger RNA (mRNA), which normally commits transcripts to their destruction, has the capacity to dynamically reshape the transcriptome. For example, protection from 5' decapping promotes accumulation of mRNAs into processing (P) bodies-membraneless, biomolecular condensates. Such compartmentalization of mRNAs temporarily removes them from the translatable pool; these repressed transcripts are stabilized and stored until P-body dissolution permits transcript reentry into the cytosol. Here, we describe regulation of mRNA stability and P-body dynamics by the inositol pyrophosphate signaling molecule 5-InsP7 (5-diphosphoinositol pentakisphosphate). First, we demonstrate 5-InsP7 inhibits decapping by recombinant NUDT3 (Nudix [nucleoside diphosphate linked moiety X]-type hydrolase 3) in vitro. Next, in intact HEK293 and HCT116 cells, we monitored the stability of a cadre of NUDT3 mRNA substrates following CRISPR-Cas9 knockout of PPIP5Ks (diphosphoinositol pentakisphosphate 5-kinases type 1 and 2, i.e., PPIP5K KO), which elevates cellular 5-InsP7 levels by two- to threefold (i.e., within the physiological rheostatic range). The PPIP5K KO cells exhibited elevated levels of NUDT3 mRNA substrates and increased P-body abundance. Pharmacological and genetic attenuation of 5-InsP7 synthesis in the KO background reverted both NUDT3 mRNA substrate levels and P-body counts to those of wild-type cells. Furthermore, liposomal delivery of a metabolically resistant 5-InsP7 analog into wild-type cells elevated levels of NUDT3 mRNA substrates and raised P-body abundance. In the context that cellular 5-InsP7 levels normally fluctuate in response to changes in the bioenergetic environment, regulation of mRNA structure by this inositol pyrophosphate represents an epitranscriptomic control process. The associated impact on P-body dynamics has relevance to regulation of stem cell differentiation, stress responses, and, potentially, amelioration of neurodegenerative diseases and aging.

Entities:  

Keywords:  P bodies; cellular homeostasis; inositol; signaling

Mesh:

Substances:

Year:  2020        PMID: 32727897      PMCID: PMC7431097          DOI: 10.1073/pnas.1922284117

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  58 in total

1.  Crystal structure of human diphosphoinositol phosphatase 1.

Authors:  Ann-Gerd Thorsell; Camilla Persson; Susanne Gräslund; Martin Hammarström; Robert D Busam; B Martin Hallberg
Journal:  Proteins       Date:  2009-10

2.  Inositol hexakisphosphate is bound in the ADAR2 core and required for RNA editing.

Authors:  Mark R Macbeth; Heidi L Schubert; Andrew P Vandemark; Arunth T Lingam; Christopher P Hill; Brenda L Bass
Journal:  Science       Date:  2005-09-02       Impact factor: 47.728

Review 3.  The inositol pyrophosphate pathway in health and diseases.

Authors:  Anutosh Chakraborty
Journal:  Biol Rev Camb Philos Soc       Date:  2017-12-27

4.  Synthesis of densely phosphorylated bis-1,5-diphospho-myo-inositol tetrakisphosphate and its enantiomer by bidirectional P-anhydride formation.

Authors:  Samanta Capolicchio; Huanchen Wang; Divyeshsinh T Thakor; Stephen B Shears; Henning J Jessen
Journal:  Angew Chem Int Ed Engl       Date:  2014-07-14       Impact factor: 15.336

Review 5.  Intimate connections: Inositol pyrophosphates at the interface of metabolic regulation and cell signaling.

Authors:  Stephen B Shears
Journal:  J Cell Physiol       Date:  2017-06-15       Impact factor: 6.384

6.  Alterations in an inositol phosphate code through synergistic activation of a G protein and inositol phosphate kinases.

Authors:  James C Otto; Patrick Kelly; Shean-Tai Chiou; John D York
Journal:  Proc Natl Acad Sci U S A       Date:  2007-09-25       Impact factor: 11.205

7.  Cloning and characterisation of hAps1 and hAps2, human diadenosine polyphosphate-metabolising Nudix hydrolases.

Authors:  Nick R Leslie; Alexander G McLennan; Stephen T Safrany
Journal:  BMC Biochem       Date:  2002-07-16       Impact factor: 4.059

8.  Inositol pyrophosphates mediate the effects of aging on bone marrow mesenchymal stem cells by inhibiting Akt signaling.

Authors:  Zheng Zhang; Chuanxu Zhao; Bing Liu; Dong Liang; Xing Qin; Xiujuan Li; Rongqing Zhang; Congye Li; Haichang Wang; Dongdong Sun; Feng Cao
Journal:  Stem Cell Res Ther       Date:  2014-03-26       Impact factor: 6.832

9.  Inositol Pyrophosphate Profiling of Two HCT116 Cell Lines Uncovers Variation in InsP8 Levels.

Authors:  Chunfang Gu; Miranda S C Wilson; Henning J Jessen; Adolfo Saiardi; Stephen B Shears
Journal:  PLoS One       Date:  2016-10-27       Impact factor: 3.240

10.  The inositol hexakisphosphate kinases IP6K1 and -2 regulate human cellular phosphate homeostasis, including XPR1-mediated phosphate export.

Authors:  Miranda S Wilson; Henning J Jessen; Adolfo Saiardi
Journal:  J Biol Chem       Date:  2019-06-11       Impact factor: 5.157

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  7 in total

Review 1.  Processing body (P-body) and its mediators in cancer.

Authors:  Bernard Nsengimana; Faiz Ali Khan; Ebenezeri Erasto Ngowi; Xuefeng Zhou; Yu Jin; Yuting Jia; Wenqiang Wei; Shaoping Ji
Journal:  Mol Cell Biochem       Date:  2022-01-28       Impact factor: 3.396

2.  5-IP7 is a GPCR messenger mediating neural control of synaptotagmin-dependent insulin exocytosis and glucose homeostasis.

Authors:  Xiaozhe Zhang; Na Li; Jun Zhang; Yanshen Zhang; Xiaoli Yang; Yifan Luo; Bobo Zhang; Zhixue Xu; Zhenhua Zhu; Xiuyan Yang; Yuan Yan; Biao Lin; Shen Wang; Da Chen; Caichao Ye; Yan Ding; Mingliang Lou; Qingcui Wu; Zhanfeng Hou; Keren Zhang; Ziming Liang; Anqi Wei; Bianbian Wang; Changhe Wang; Nan Jiang; Wenqing Zhang; Guozhi Xiao; Cong Ma; Yan Ren; Xiangbing Qi; Weiping Han; Chao Wang; Feng Rao
Journal:  Nat Metab       Date:  2021-10-18

3.  Inositol phosphate kinases in the eukaryote landscape.

Authors:  Debabrata Laha; Paloma Portela-Torres; Yann Desfougères; Adolfo Saiardi
Journal:  Adv Biol Regul       Date:  2020-12-29

4.  Structural Insight into Molecular Inhibitory Mechanism of InsP6 on African Swine Fever Virus mRNA-Decapping Enzyme g5Rp.

Authors:  Yan Yang; Changhui Zhang; Xuehui Li; Li Li; Yanjuan Chen; Xin Yang; Yao Zhao; Cheng Chen; Wei Wang; Zhihui Zhong; Cheng Yang; Zhen Huang; Dan Su
Journal:  J Virol       Date:  2022-04-28       Impact factor: 6.549

5.  Inositol hexakisphosphate kinases differentially regulate trafficking of vesicular glutamate transporters 1 and 2.

Authors:  Haiyan Li; Maia Datunashvili; Reno C Reyes; Susan M Voglmaier
Journal:  Front Cell Neurosci       Date:  2022-07-22       Impact factor: 6.147

Review 6.  Inositol polyphosphate-protein interactions: Implications for microbial pathogenicity.

Authors:  Sophie Lev; Bethany Bowring; Desmarini Desmarini; Julianne Teresa Djordjevic
Journal:  Cell Microbiol       Date:  2021-03-25       Impact factor: 4.115

Review 7.  Metabolism and Functions of Inositol Pyrophosphates: Insights Gained from the Application of Synthetic Analogues.

Authors:  Stephen B Shears; Huanchen Wang
Journal:  Molecules       Date:  2020-10-02       Impact factor: 4.411

  7 in total

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