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Search

Probes for LGR4

ACD can configure probes for the various manual and automated assays for LGR4 for RNAscope Assay, or for Basescope Assay compatible for your species of interest.

  • Probes for LGR4 (0)
  • Kits & Accessories (0)
  • Support & Documents (0)
  • Publications (3)
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Refine Probe List

Content for comparison

Gene

  • Lgr5 (10) Apply Lgr5 filter
  • Lgr4 (10) Apply Lgr4 filter
  • Rspo2 (4) Apply Rspo2 filter
  • Lgr6 (4) Apply Lgr6 filter
  • (-) Remove Axin2 filter Axin2 (3)
  • Rspo1 (3) Apply Rspo1 filter
  • Rspo3 (3) Apply Rspo3 filter
  • RNF43 (3) Apply RNF43 filter
  • Wnt4 (2) Apply Wnt4 filter
  • Wnt7a (2) Apply Wnt7a filter
  • Wnt7b (2) Apply Wnt7b filter
  • Rspo4 (2) Apply Rspo4 filter
  • Wnt5a (2) Apply Wnt5a filter
  • WNT2 (2) Apply WNT2 filter
  • Wnt3 (2) Apply Wnt3 filter
  • Znrf3 (2) Apply Znrf3 filter
  • Dkk3 (1) Apply Dkk3 filter
  • Wnt10a (1) Apply Wnt10a filter
  • Wnt10b (1) Apply Wnt10b filter
  • Wnt16 (1) Apply Wnt16 filter
  • Wnt1 (1) Apply Wnt1 filter
  • Wnt6 (1) Apply Wnt6 filter
  • Sox9 (1) Apply Sox9 filter
  • Bmp4 (1) Apply Bmp4 filter
  • Dkk1 (1) Apply Dkk1 filter
  • EGR1 (1) Apply EGR1 filter
  • Agtr2 (1) Apply Agtr2 filter
  • Dkk2 (1) Apply Dkk2 filter
  • Dkk4 (1) Apply Dkk4 filter
  • Porcn (1) Apply Porcn filter
  • Wnt11 (1) Apply Wnt11 filter
  • Wnt2b (1) Apply Wnt2b filter
  • Wnt3a (1) Apply Wnt3a filter
  • Wnt5b (1) Apply Wnt5b filter
  • Wnt8a (1) Apply Wnt8a filter
  • Wnt8b (1) Apply Wnt8b filter
  • Wnt9a (1) Apply Wnt9a filter
  • Wnt9b (1) Apply Wnt9b filter
  • PECAM1 (1) Apply PECAM1 filter
  • FGFR4 (1) Apply FGFR4 filter
  • PDGFRA (1) Apply PDGFRA filter
  • Serpinf1 (1) Apply Serpinf1 filter
  • CD45 (1) Apply CD45 filter
  • SMA (1) Apply SMA filter
  • Fz1 (1) Apply Fz1 filter
  • Fz2 (1) Apply Fz2 filter
  • Fz3 (1) Apply Fz3 filter
  • Fz4 (1) Apply Fz4 filter
  • Fz5 (1) Apply Fz5 filter
  • Fz6 (1) Apply Fz6 filter

Product

  • RNAscope 2.5 HD Red assay (2) Apply RNAscope 2.5 HD Red assay filter
  • RNAscope Multiplex Fluorescent Assay (1) Apply RNAscope Multiplex Fluorescent Assay filter

Research area

  • Development (1) Apply Development filter
  • Stem Cells (1) Apply Stem Cells filter

Category

  • Publications (3) Apply Publications filter
A Wnt-producing niche drives proliferative potential and progression in lung adenocarcinoma.

Nature

2017 May 10

Tammela T, Sanchez-Rivera FJ, Cetinbas NM, Wu K, Joshi NS, Helenius K, Park Y, Azimi R, Kerper NR, Wesselhoeft RA, Gu X, Schmidt L, Cornwall-Brady M, Yilmaz ÖH, Xue W, Katajisto P, Bhutkar A, Jacks T.
PMID: 28489818 | DOI: 10.1038/nature22334

The heterogeneity of cellular states in cancer has been linked to drug resistance, cancer progression and the presence of cancer cells with properties of normal tissue stem cells. Secreted Wnt signals maintain stem cells in various epithelial tissues, including in lung development and regeneration. Here we show that mouse and human lung adenocarcinomas display hierarchical features with two distinct subpopulations, one with high Wnt signalling activity and another forming a niche that provides the Wnt ligand. The Wnt responder cells showed increased tumour propagation ability, suggesting that these cells have features of normal tissue stem cells. Genetic perturbation of Wnt production or signalling suppressed tumour progression. Small-molecule inhibitors targeting essential posttranslational modification of Wnt reduced tumour growth and markedly decreased the proliferative potential of lung cancer cells, leading to improved survival of tumour-bearing mice. These results indicate that strategies for disrupting pathways that maintain stem-like and niche cell phenotypes can translate into effective anti-cancer therapies.

R-SPONDIN2+ mesenchymal cells form the bud tip progenitor niche during human lung development

Developmental cell

2022 Jun 07

Hein, RFC;Wu, JH;Holloway, EM;Frum, T;Conchola, AS;Tsai, YH;Wu, A;Fine, AS;Miller, AJ;Szenker-Ravi, E;Yan, KS;Kuo, CJ;Glass, I;Reversade, B;Spence, JR;
PMID: 35679862 | DOI: 10.1016/j.devcel.2022.05.010

The human respiratory epithelium is derived from a progenitor cell in the distal buds of the developing lung. These "bud tip progenitors" are regulated by reciprocal signaling with surrounding mesenchyme; however, mesenchymal heterogeneity and function in the developing human lung are poorly understood. We interrogated single-cell RNA sequencing data from multiple human lung specimens and identified a mesenchymal cell population present during development that is highly enriched for expression of the WNT agonist RSPO2, and we found that the adjacent bud tip progenitors are enriched for the RSPO2 receptor LGR5. Functional experiments using organoid models, explant cultures, and FACS-isolated RSPO2+ mesenchyme show that RSPO2 is a critical niche cue that potentiates WNT signaling in bud tip progenitors to support their maintenance and multipotency.
Stromal R-spondin orchestrates gastric epithelial stem cells and gland homeostasis.

Nature

2017 Aug 16

Sigal M, Logan CY, Kapalczynska M, Mollenkopf HJ, Berger H, Wiedenmann B, Nusse R, Amieva MR, Meyer TF.
PMID: 28813421 | DOI: 10.1038/nature23642

The constant regeneration of stomach epithelium is driven by long-lived stem cells, but the mechanism that regulates their turnover is not well understood. We have recently found that the gastric pathogen Helicobacter pylori can activate gastric stem cells and increase epithelial turnover, while Wnt signalling is known to be important for stem cell identity and epithelial regeneration in several tissues. Here we find that antral Wnt signalling, marked by the classic Wnt target gene Axin2, is limited to the base and lower isthmus of gastric glands, where the stem cells reside. Axin2 is expressed by Lgr5+ cells, as well as adjacent, highly proliferative Lgr5- cells that are able to repopulate entire glands, including the base, upon depletion of the Lgr5+ population. Expression of both Axin2 and Lgr5 requires stroma-derived R-spondin 3 produced by gastric myofibroblasts proximal to the stem cell compartment. Exogenous R-spondin administration expands and accelerates proliferation of Axin2+/Lgr5- but not Lgr5+ cells. Consistent with these observations, H. pylori infection increases stromal R-spondin 3 expression and expands the Axin2+ cell pool to cause hyperproliferation and gland hyperplasia. The ability of stromal niche cells to control and adapt epithelial stem cell dynamics constitutes a sophisticated mechanism that orchestrates epithelial regeneration and maintenance of tissue integrity.

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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