Literature DB >> 22491258

Myeloid-specific tristetraprolin deficiency in mice results in extreme lipopolysaccharide sensitivity in an otherwise minimal phenotype.

Lian-Qun Qiu1, Deborah J Stumpo, Perry J Blackshear.   

Abstract

Tristetraprolin (TTP) is a mRNA-destabilizing protein that binds to AU-rich elements in labile transcripts, such as the mRNA encoding TNF, and promotes their deadenylation and degradation. TTP-deficient (knockout [KO]) mice exhibit an early-onset, severe inflammatory phenotype, with cachexia, erosive arthritis, left-sided cardiac valvulitis, myeloid hyperplasia, and autoimmunity, which can be prevented by injections of anti-TNF Abs, or interbreeding with TNF receptor-deficient mice. To determine whether the excess TNF that causes the TTP KO phenotype is produced by myeloid cells, we performed myeloid-specific disruption of Zfp36, the gene encoding TTP. We documented the lack of TTP expression in LPS-stimulated bone marrow-derived macrophages from the mice, whereas fibroblasts expressed TTP mRNA and protein normally in response to serum. The mice exhibited a minimal phenotype, characterized by slight slowing of weight gain late in the first year of life, compared with the early-onset, severe weight loss and inflammation seen in the TTP KO mice. Instead, the myeloid-specific TTP KO mice were highly and abnormally susceptible to a low-dose LPS challenge, with rapid development of typical endotoxemia signs and extensive organ damage, and elevations of serum TNF levels to 110-fold greater than control. We conclude that myeloid-specific TTP deficiency does not phenocopy complete TTP deficiency in C57BL/6 mice under normal laboratory conditions, implying contributions from other cell types to the complete phenotype. However, myeloid cell TTP plays a critical role in protecting mice against LPS-induced septic shock, primarily through its posttranscriptional regulation of TNF mRNA stability.

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Year:  2012        PMID: 22491258      PMCID: PMC3345041          DOI: 10.4049/jimmunol.1103700

Source DB:  PubMed          Journal:  J Immunol        ISSN: 0022-1767            Impact factor:   5.422


  32 in total

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2.  Rapid insulin-stimulated accumulation of an mRNA encoding a proline-rich protein.

Authors:  W S Lai; D J Stumpo; P J Blackshear
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Authors:  P Vassalli
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4.  Simplified mammalian DNA isolation procedure.

Authors:  P W Laird; A Zijderveld; K Linders; M A Rudnicki; R Jaenisch; A Berns
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5.  Nucleotide sequence of a cDNA encoding TIS11, a message induced in Swiss 3T3 cells by the tumor promoter tetradecanoyl phorbol acetate.

Authors:  B C Varnum; R W Lim; V P Sukhatme; H R Herschman
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Authors:  E Carballo; W S Lai; P J Blackshear
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7.  Wasting, ischemia, and lymphoid abnormalities in mice expressing T cell-targeted human tumor necrosis factor transgenes.

Authors:  L Probert; J Keffer; P Corbella; H Cazlaris; E Patsavoudi; S Stephens; E Kaslaris; D Kioussis; G Kollias
Journal:  J Immunol       Date:  1993-08-15       Impact factor: 5.422

8.  A pathogenetic role for TNF alpha in the syndrome of cachexia, arthritis, and autoimmunity resulting from tristetraprolin (TTP) deficiency.

Authors:  G A Taylor; E Carballo; D M Lee; W S Lai; M J Thompson; D D Patel; D I Schenkman; G S Gilkeson; H E Broxmeyer; B F Haynes; P J Blackshear
Journal:  Immunity       Date:  1996-05       Impact factor: 31.745

9.  The TIS11 primary response gene is a member of a gene family that encodes proteins with a highly conserved sequence containing an unusual Cys-His repeat.

Authors:  B C Varnum; Q F Ma; T H Chi; B Fletcher; H R Herschman
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10.  Transgenic mice expressing human tumour necrosis factor: a predictive genetic model of arthritis.

Authors:  J Keffer; L Probert; H Cazlaris; S Georgopoulos; E Kaslaris; D Kioussis; G Kollias
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  59 in total

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2.  The RNA-binding protein tristetraprolin schedules apoptosis of pathogen-engaged neutrophils during bacterial infection.

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Review 3.  Post-transcriptional coordination of immunological responses by RNA-binding proteins.

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Journal:  Nat Immunol       Date:  2014-06       Impact factor: 25.606

4.  A Knock-In Tristetraprolin (TTP) Zinc Finger Point Mutation in Mice: Comparison with Complete TTP Deficiency.

Authors:  Wi S Lai; Deborah J Stumpo; Lianqun Qiu; Roberta Faccio; Perry J Blackshear
Journal:  Mol Cell Biol       Date:  2018-01-29       Impact factor: 4.272

Review 5.  An Ancient Family of RNA-Binding Proteins: Still Important!

Authors:  Melissa L Wells; Lalith Perera; Perry J Blackshear
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6.  Importance of the Conserved Carboxyl-Terminal CNOT1 Binding Domain to Tristetraprolin Activity In Vivo.

Authors:  Wi S Lai; Deborah J Stumpo; Melissa L Wells; Artiom Gruzdev; Stephanie N Hicks; Cindo O Nicholson; Zhengfeng Yang; Roberta Faccio; Michael W Webster; Lori A Passmore; Perry J Blackshear
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7.  LPS-induced production of TNF-α and IL-6 in mast cells is dependent on p38 but independent of TTP.

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9.  Effects of Combined Tristetraprolin/Tumor Necrosis Factor Receptor Deficiency on the Splenic Transcriptome.

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Review 10.  Tristetraprolin as a Therapeutic Target in Inflammatory Disease.

Authors:  Sonika Patial; Perry J Blackshear
Journal:  Trends Pharmacol Sci       Date:  2016-08-05       Impact factor: 14.819

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