Vomitoxin

Vomitoxin is a lipid of Prenol Lipids (PR) class. Vomitoxin is associated with abnormalities such as Infection and Gastroenteritis. The involved functions are known as mRNA Expression, Inflammation, Transcription, Genetic, Protein Biosynthesis and Adverse effects. Vomitoxin often locates in Lymphoid Tissue, Immune system, Bone Marrow and Plasma membrane. The associated genes with Vomitoxin are IMPACT gene, HIST1H1C gene and RBM39 gene. The related experimental models are Mouse Model.

Cross Reference

Introduction

To understand associated biological information of Vomitoxin, we collected biological information of abnormalities, associated pathways, cellular/molecular locations, biological functions, related genes/proteins, lipids and common seen animal/experimental models with organized paragraphs from literatures.

What diseases are associated with Vomitoxin?

Vomitoxin is suspected in Infection, Gastroenteritis and other diseases in descending order of the highest number of associated sentences.

Related references are mostly published in these journals:

Disease Cross reference Weighted score Related literature
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Possible diseases from mapped MeSH terms on references

We collected disease MeSH terms mapped to the references associated with Vomitoxin

MeSH term MeSH ID Detail
Weight Loss D015431 56 associated lipids
Anorexia D000855 8 associated lipids
Mycoses D009181 18 associated lipids
Coronavirus Infections D018352 4 associated lipids
Mycotoxicosis D015651 5 associated lipids
Adrenocortical Carcinoma D018268 4 associated lipids
Splenic Diseases D013158 5 associated lipids
Kashin-Beck Disease D057767 2 associated lipids
Ascaridiasis D001198 1 associated lipids
Per page 10 20 50 | Total 29

PubChem Associated disorders and diseases

What pathways are associated with Vomitoxin

There are no associated biomedical information in the current reference collection.

PubChem Biomolecular Interactions and Pathways

Link to PubChem Biomolecular Interactions and Pathways

What cellular locations are associated with Vomitoxin?

Related references are published most in these journals:

Location Cross reference Weighted score Related literatures
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What functions are associated with Vomitoxin?


Related references are published most in these journals:

Function Cross reference Weighted score Related literatures

What lipids are associated with Vomitoxin?

There are no associated biomedical information in the current reference collection.

What genes are associated with Vomitoxin?

Related references are published most in these journals:


Gene Cross reference Weighted score Related literatures

What common seen animal models are associated with Vomitoxin?

Mouse Model

Mouse Model are used in the study 'Dietary fish oil suppresses experimental immunoglobulin a nephropathy in mice.' (Pestka JJ et al., 2002).

Related references are published most in these journals:

Model Cross reference Weighted score Related literatures
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NCBI Entrez Crosslinks

All references with Vomitoxin

Download all related citations
Per page 10 20 50 100 | Total 1588
Authors Title Published Journal PubMed Link
Magan N et al. Environmental factors and interactions with mycobiota of grain and grapes: effects on growth, deoxynivalenol and ochratoxin production by Fusarium culmorum and Aspergillus carbonarius. 2010 Toxins (Basel) pmid:22069589
Pestka JJ Deoxynivalenol-induced proinflammatory gene expression: mechanisms and pathological sequelae. 2010 Toxins (Basel) pmid:22069639
Ji F et al. Enzyme-linked immunosorbent-assay for Deoxynivalenol (DON). 2011 Toxins (Basel) pmid:22069751
Zhang ZQ et al. Phosphoproteome Analysis Reveals the Molecular Mechanisms Underlying Deoxynivalenol-Induced Intestinal Toxicity in IPEC-J2 Cells. 2016 Toxins (Basel) pmid:27669298
Hassan YI et al. Beyond Ribosomal Binding: The Increased Polarity and Aberrant Molecular Interactions of 3-epi-deoxynivalenol. 2016 Toxins (Basel) pmid:27618101
Springler A et al. Early Activation of MAPK p44/42 Is Partially Involved in DON-Induced Disruption of the Intestinal Barrier Function and Tight Junction Network. 2016 Toxins (Basel) pmid:27618100
Ajandouz el H et al. Hydrolytic Fate of 3/15-Acetyldeoxynivalenol in Humans: Specific Deacetylation by the Small Intestine and Liver Revealed Using in Vitro and ex Vivo Approaches. 2016 Toxins (Basel) pmid:27483321
Grenier B et al. Susceptibility of Broiler Chickens to Coccidiosis When Fed Subclinical Doses of Deoxynivalenol and Fumonisins-Special Emphasis on the Immunological Response and the Mycotoxin Interaction. 2016 Toxins (Basel) pmid:27472362
Ansari KI et al. Light influences how the fungal toxin deoxynivalenol affects plant cell death and defense responses. 2014 Toxins (Basel) pmid:24561479
Pietsch C et al. Organ damage and hepatic lipid accumulation in carp (Cyprinus carpio L.) after feed-borne exposure to the mycotoxin, deoxynivalenol (DON). 2014 Toxins (Basel) pmid:24566729
Forrer HR et al. Fusarium head blight control and prevention of mycotoxin contamination in wheat with botanicals and tannic acid. 2014 Toxins (Basel) pmid:24577585
Ji J et al. The Antagonistic Effect of Mycotoxins Deoxynivalenol and Zearalenone on Metabolic Profiling in Serum and Liver of Mice. 2017 Toxins (Basel) pmid:28075412
Waśkiewicz A et al. Deoxynivalenol in the gastrointestinal tract of immature gilts under per os toxin application. 2014 Toxins (Basel) pmid:24603665
Cirlini M et al. Are Treated Celiac Patients at Risk for Mycotoxins? An Italian Case-Study. 2016 Toxins (Basel) pmid:28036017
Saint-Cyr MJ et al. Risk Assessment of Deoxynivalenol by Revisiting Its Bioavailability in Pig and Rat Models to Establish Which Is More Suitable. 2015 Toxins (Basel) pmid:26633505
Bannert E et al. Metabolic and hematological consequences of dietary deoxynivalenol interacting with systemic Escherichia coli lipopolysaccharide. 2015 Toxins (Basel) pmid:26580654
Schwartz-Zimmermann HE et al. Metabolism of deoxynivalenol and deepoxy-deoxynivalenol in broiler chickens, pullets, roosters and turkeys. 2015 Toxins (Basel) pmid:26569307
Paulick M et al. Studies on the bioavailability of deoxynivalenol (DON) and DON sulfonate (DONS) 1, 2, and 3 in pigs fed with sodium sulfite-treated DON-contaminated maize. 2015 Toxins (Basel) pmid:26556376
Clark ES et al. High Sensitivity of Aged Mice to Deoxynivalenol (Vomitoxin)-Induced Anorexia Corresponds to Elevated Proinflammatory Cytokine and Satiety Hormone Responses. 2015 Toxins (Basel) pmid:26492270
Wu L et al. Dietary L-arginine supplementation protects weanling pigs from deoxynivalenol-induced toxicity. 2015 Toxins (Basel) pmid:25884909
Paulick M et al. Effects of increasing concentrations of sodium sulfite on deoxynivalenol and deoxynivalenol sulfonate concentrations of maize kernels and maize meal preserved at various moisture content. 2015 Toxins (Basel) pmid:25760079
Przybylska-Gornowicz B et al. The effects of low doses of two Fusarium toxins, zearalenone and deoxynivalenol, on the pig jejunum. A light and electron microscopic study. 2015 Toxins (Basel) pmid:26569306
Bonnet MS et al. Advances in deoxynivalenol toxicity mechanisms: the brain as a target. 2012 Toxins (Basel) pmid:23202308
Wegulo SN Factors influencing deoxynivalenol accumulation in small grain cereals. 2012 Toxins (Basel) pmid:23202310
Qiu J and Shi J Genetic relationships, carbendazim sensitivity and mycotoxin production of the Fusarium graminearum populations from maize, wheat and rice in eastern China. 2014 Toxins (Basel) pmid:25093387
Piotrowska M et al. The effect of experimental fusarium mycotoxicosis on microbiota diversity in porcine ascending colon contents. 2014 Toxins (Basel) pmid:25025709
Schollenberger M et al. Occurrence and distribution of 13 trichothecene toxins in naturally contaminated maize plants in Germany. 2012 Toxins (Basel) pmid:23162697
Sliková S et al. Occurrence of deoxynivalenol in wheat in Slovakia during 2010 and 2011. 2013 Toxins (Basel) pmid:23917334
Ivanova L et al. Cytotoxicity of enniatins A, A1, B, B1, B2 and B3 from Fusarium avenaceum. 2006 Toxicon pmid:16730043
Abbas HK et al. Cytotoxicity and phytotoxicity of trichothecene mycotoxins produced by Fusarium spp. 2013 Toxicon pmid:23933195
Luongo D et al. Effects of four Fusarium toxins (fumonisin B(1), alpha-zearalenol, nivalenol and deoxynivalenol) on porcine whole-blood cellular proliferation. 2008 Toxicon pmid:18620720
Ruiz MJ et al. Toxicological interactions between the mycotoxins beauvericin, deoxynivalenol and T-2 toxin in CHO-K1 cells in vitro. 2011 Toxicon pmid:21821061
Ficheux AS et al. Co-exposure of Fusarium mycotoxins: in vitro myelotoxicity assessment on human hematopoietic progenitors. 2012 Toxicon pmid:22921581
Gajęcka M et al. Changes in the metabolic profile and body weight of pre-pubertal gilts during prolonged monotonic exposure to low doses of zearalenone and deoxynivalenol. 2017 Toxicon pmid:27840141
Ji J et al. GC-TOF/MS-based metabolomic strategy for combined toxicity effects of deoxynivalenol and zearalenone on murine macrophage ANA-1 cells. 2016 Toxicon pmid:27530666
Albonico M et al. Toxicological effects of fumonisin B1 alone and in combination with other fusariotoxins on bovine granulosa cells. 2016 Toxicon pmid:27108238
Pizzo F et al. In vitro effects of deoxynivalenol and zearalenone major metabolites alone and combined, on cell proliferation, steroid production and gene expression in bovine small-follicle granulosa cells. 2016 Toxicon pmid:26657070
Ueno Y et al. Examination of Chinese and U.S.S.R. cereals for the Fusarium mycotoxins, nivalenol, deoxynivalenol and zearalenone. 1986 Toxicon pmid:2944249
Dinu D et al. Adapted response of the antioxidant defense system to oxidative stress induced by deoxynivalenol in Hek-293 cells. 2011 Toxicon pmid:21549142
Lucioli J et al. The food contaminant deoxynivalenol activates the mitogen activated protein kinases in the intestine: interest of ex vivo models as an alternative to in vivo experiments. 2013 Toxicon pmid:23403092
Caloni F et al. Effects of a trichothecene, T-2 toxin, on proliferation and steroid production by porcine granulosa cells. 2009 Toxicon pmid:19463844
Sun LH et al. Individual and combined cytotoxic effects of aflatoxin B1, zearalenone, deoxynivalenol and fumonisin B1 on BRL 3A rat liver cells. 2015 Toxicon pmid:25549941
Zhang X et al. The role of oxidative stress in deoxynivalenol-induced DNA damage in HepG2 cells. 2009 Toxicon pmid:19486909
Luongo D et al. Trichothecenes NIV and DON modulate the maturation of murine dendritic cells. 2010 Toxicon pmid:19635492
Kouadio JH et al. Effects of combinations of Fusarium mycotoxins on the inhibition of macromolecular synthesis, malondialdehyde levels, DNA methylation and fragmentation, and viability in Caco-2 cells. 2007 Toxicon pmid:17109910
Zielonka Ł et al. The effect of environmental mycotoxins on selected ovarian tissue fragments of multiparous female wild boars at the beginning of astronomical winter. 2014 Toxicon pmid:25016169
Bensassi F et al. In vitro investigation of toxicological interactions between the fusariotoxins deoxynivalenol and zearalenone. 2014 Toxicon pmid:24680766
Amuzie CJ et al. Tissue distribution and proinflammatory cytokine induction by the trichothecene deoxynivalenol in the mouse: comparison of nasal vs. oral exposure. 2008 Toxicology pmid:18433975
Mikami O et al. Porcine hepatocyte apoptosis and reduction of albumin secretion induced by deoxynivalenol. 2004 Toxicology pmid:15388250
Bensassi F et al. Pathway of deoxynivalenol-induced apoptosis in human colon carcinoma cells. 2009 Toxicology pmid:19664677