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Search

Probes for TGF-β

ACD can configure probes for the various manual and automated assays for TGF-β for RNAscope Assay, or for Basescope Assay compatible for your species of interest.

  • Probes for TGF-β (0)
  • Kits & Accessories (0)
  • Support & Documents (0)
  • Publications (3)
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Refine Probe List

Content for comparison

Gene

  • TGF-β (8) Apply TGF-β filter
  • TBD (8) Apply TBD filter
  • TNF-α (5) Apply TNF-α filter
  • TGFB1 (4) Apply TGFB1 filter
  • IL-10 (4) Apply IL-10 filter
  • IFN-γ (4) Apply IFN-γ filter
  • IL-17A (4) Apply IL-17A filter
  • Tgf-β1 (4) Apply Tgf-β1 filter
  • Tgfbr1 (3) Apply Tgfbr1 filter
  • Wnt5a (2) Apply Wnt5a filter
  • Tgfb3 (2) Apply Tgfb3 filter
  • Tgfbr2 (2) Apply Tgfbr2 filter
  • Tgfβ2 (2) Apply Tgfβ2 filter
  • ACTA2 (1) Apply ACTA2 filter
  • Agtr1a (1) Apply Agtr1a filter
  • Wnt4 (1) Apply Wnt4 filter
  • (-) Remove Wnt7a filter Wnt7a (1)
  • CXCL10 (1) Apply CXCL10 filter
  • Ptch1 (1) Apply Ptch1 filter
  • Nrg1 (1) Apply Nrg1 filter
  • TLR2 (1) Apply TLR2 filter
  • Gfral (1) Apply Gfral filter
  • EREG (1) Apply EREG filter
  • GREM1 (1) Apply GREM1 filter
  • IGF1 (1) Apply IGF1 filter
  • Foxp3 (1) Apply Foxp3 filter
  • ITGB6 (1) Apply ITGB6 filter
  • ROBO1 (1) Apply ROBO1 filter
  • MKI67 (1) Apply MKI67 filter
  • NOTUM (1) Apply NOTUM filter
  • SHH (1) Apply SHH filter
  • MYH11 (1) Apply MYH11 filter
  • (-) Remove WC1 filter WC1 (1)
  • Wif1 (1) Apply Wif1 filter
  • COL11A1 (1) Apply COL11A1 filter
  • Ret (1) Apply Ret filter
  • Nuak1 (1) Apply Nuak1 filter
  • Dusp1 (1) Apply Dusp1 filter
  • CXCL9 (1) Apply CXCL9 filter
  • (-) Remove slit2 filter slit2 (1)
  • robo2 (1) Apply robo2 filter
  • IL-16 (1) Apply IL-16 filter
  • TNF (1) Apply TNF filter
  • PD-L1 (1) Apply PD-L1 filter
  • VIM (1) Apply VIM filter
  • DapB (1) Apply DapB filter
  • Pofut2 (1) Apply Pofut2 filter
  • IL-12 (1) Apply IL-12 filter
  • mycobacterial 23s (1) Apply mycobacterial 23s filter
  • Optn (1) Apply Optn filter

Product

  • RNAscope 2.0 Assay (1) Apply RNAscope 2.0 Assay filter
  • RNAscope 2.5 HD Duplex (1) Apply RNAscope 2.5 HD Duplex filter
  • RNAscope 2.5 HD Red assay (1) Apply RNAscope 2.5 HD Red assay filter

Research area

  • Other (2) Apply Other filter
  • Inflammation (1) Apply Inflammation filter

Category

  • Publications (3) Apply Publications filter
ROBO2 is a stroma suppressor gene in the pancreas and acts via TGF-β signalling.

Nat Commun. 2018 Nov 30;9(1):5083.

2018 Nov 30

Pinho AV, Van Bulck M, Chantrill L, Arshi M, Sklyarova T, Herrmann D, Vennin C, Gallego-Ortega D, Mawson A, Giry-Laterriere M, Magenau A, Leuckx G, Baeyens L, Gill AJ, Phillips P, Timpson P, Biankin AV, Wu J, Rooman I.
PMID: 30504844 | DOI: 10.1038/s41467-018-07497-z

Whereas genomic aberrations in the SLIT-ROBO pathway are frequent in pancreatic ductal adenocarcinoma (PDAC), their function in the pancreas is unclear. Here we report that in pancreatitis and PDAC mouse models, epithelial Robo2 expression is lost while Robo1 expression becomes most prominent in the stroma. Cell cultures of mice with loss of epithelial Robo2 (Pdx1Cre;Robo2F/F) show increased activation of Robo1+ myofibroblasts and induction of TGF-β and Wnt pathways. During pancreatitis, Pdx1Cre;Robo2F/F mice present enhanced myofibroblast activation, collagen crosslinking, T-cell infiltration and tumorigenic immune markers. The TGF-β inhibitor galunisertib suppresses these effects. In PDAC patients, ROBO2 expression is overall low while ROBO1 is variably expressed in epithelium and high in stroma. ROBO2low;ROBO1high patients present the poorest survival. In conclusion, Robo2 acts non-autonomously as a stroma suppressor gene by restraining myofibroblast activation and T-cell infiltration. ROBO1/2 expression in PDAC patients may guide therapy with TGF-β inhibitors or other stroma /immune modulating agents.
Evaluating the cytokine profile of the WC1+ γδ T cell subset in the ileum of cattle with the subclinical and clinical forms of MAP infection

Veterinary Immunology and Immunopathology

2018 May 19

Albarrak SM, Waters WR, Stabel JR, Hostetter JM.
PMID: - | DOI: 10.1016/j.vetimm.2018.05.003

In the present study, we evaluated expression of IFN-γ, IL-17, TNF-α, IL-10 and TGF-β by mucosal cells, including WC1+ γδ T cells, in ileal tissues taken from non-infected cattle and cattle naturally infected with Mycobacterium avium subsp paratuberculosis (MAP). Infected cattle were either in the subclinical or clinical stage of infection. We hypothesized that the cytokine profile of the WC1+ γδ T cell subset would be different between subclinical and clinical cattle. Our data indicate a significant increase in the numbers of WC1+ γδ T cells expressing IL-10 in clinical cattle compared to subclinical and non-infected cattle. We observed a significant increase in TGF-β expression by non-WC1+ cells in clinically infected cattle. Expression of IFN-γ, IL-17 and TNF-α in mucosal cells, including the WC1+ γδ T cell subset, was identified in all examined groups. However, our data indicate that the stage of infection did not significantly influence expression of these proinflammatory cytokines. This study demonstrates changes in the cytokine mRNA expression profile of mucosal cells in the ileum, and specifically WC1+ γδ T cells, as cattle progress to the clinical disease. The change is characterized by an increase in expression of anti-inflammatory cytokines.

Experimental inhibition of porcupine-mediated Wnt O-acylation attenuates kidney fibrosis

Kidney International (2016).

2016 Mar 25

Madan B, Patel MB, Zhang J, Bunte RM, Rudemiller NP, Griffiths R, Virshup DM, Crowley SD.
PMID: - | DOI: 10.1016/j.kint.2016.01.017

Activated Wnt signaling is critical in the pathogenesis of renal fibrosis, a final common pathway for most forms of chronic kidney disease. Therapeutic intervention by inhibition of individual Wnts or downstream Wnt/β-catenin signaling has been proposed, but these approaches do not interrupt the functions of all Wnts nor block non-canonical Wnt signaling pathways. Alternatively, an orally bioavailable small molecule, Wnt-C59, blocks the catalytic activity of the Wnt-acyl transferase porcupine, and thereby prevents secretion of all Wnt isoforms. We found that inhibiting porcupine dramatically attenuates kidney fibrosis in the murine unilateral ureteral obstruction model. Wnt-C59 treatment similarly blunts collagen mRNA expression in the obstructed kidney. Consistent with its actions to broadly arrest Wnt signaling, porcupine inhibition reduces expression of Wnt target genes and bolsters nuclear exclusion of β-catenin in the kidney following ureteral obstruction. Importantly, prevention of Wnt secretion by Wnt-C59 blunts expression of inflammatory cytokines in the obstructed kidney that otherwise provoke a positive feedback loop of Wnt expression in collagen-producing fibroblasts and epithelial cells. Thus, therapeutic targeting of porcupine abrogates kidney fibrosis not only by overcoming the redundancy of individual Wnt isoforms but also by preventing upstream cytokine-induced Wnt generation. These findings reveal a novel therapeutic maneuver to protect the kidney from fibrosis by interrupting a pathogenic crosstalk loop between locally generated inflammatory cytokines and the Wnt/β-catenin signaling pathway.

X
Description
sense
Example: Hs-LAG3-sense
Standard probes for RNA detection are in antisense. Sense probe is reverse complent to the corresponding antisense probe.
Intron#
Example: Mm-Htt-intron2
Probe targets the indicated intron in the target gene, commonly used for pre-mRNA detection
Pool/Pan
Example: Hs-CD3-pool (Hs-CD3D, Hs-CD3E, Hs-CD3G)
A mixture of multiple probe sets targeting multiple genes or transcripts
No-XSp
Example: Hs-PDGFB-No-XMm
Does not cross detect with the species (Sp)
XSp
Example: Rn-Pde9a-XMm
designed to cross detect with the species (Sp)
O#
Example: Mm-Islr-O1
Alternative design targeting different regions of the same transcript or isoforms
CDS
Example: Hs-SLC31A-CDS
Probe targets the protein-coding sequence only
EnEmProbe targets exons n and m
En-EmProbe targets region from exon n to exon m
Retired Nomenclature
tvn
Example: Hs-LEPR-tv1
Designed to target transcript variant n
ORF
Example: Hs-ACVRL1-ORF
Probe targets open reading frame
UTR
Example: Hs-HTT-UTR-C3
Probe targets the untranslated region (non-protein-coding region) only
5UTR
Example: Hs-GNRHR-5UTR
Probe targets the 5' untranslated region only
3UTR
Example: Rn-Npy1r-3UTR
Probe targets the 3' untranslated region only
Pan
Example: Pool
A mixture of multiple probe sets targeting multiple genes or transcripts

Enabling research, drug development (CDx) and diagnostics

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