ACD can configure probes for the various manual and automated assays for INS for RNAscope Assay, or for Basescope Assay compatible for your species of interest.
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.
Sci Rep.
2019 Jan 29
Mourao L, Jacquemin G, Huyghe M, Nawrocki WJ, Menssouri N, Servant N, Fre S.
PMID: 30696875 | DOI: 10.1038/s41598-018-37301-3
Colon tumours are hierarchically organized and contain multipotent self-renewing cells, called Cancer Stem Cells (CSCs). We have previously shown that the Notch1 receptor is expressed in Intestinal Stem Cells (ISCs); given the critical role played by Notch signalling in promoting intestinal tumourigenesis, we explored Notch1 expression in tumours. Combining lineage tracing in two tumour models with transcriptomic analyses, we found that Notch1+ tumour cells are undifferentiated, proliferative and capable of indefinite self-renewal and of generating a heterogeneous clonal progeny. Molecularly, the transcriptional signature of Notch1+ tumour cells highly correlates with ISCs, suggestive of their origin from normal crypt cells. Surprisingly, Notch1+ expression labels a subset of CSCs that shows reduced levels of Lgr5, a reported CSCs marker. The existence of distinct stem cell populations within intestinal tumours highlights the necessity of better understanding their hierarchy and behaviour, to identify the correct cellular targets for therapy.
Scientific reports
2022 Jun 01
Polkoff, KM;Gupta, NK;Green, AJ;Murphy, Y;Chung, J;Gleason, KL;Simpson, SG;Walker, DM;Collins, B;Piedrahita, JA;
PMID: 35650234 | DOI: 10.1038/s41598-022-13056-w
Nature cancer
2022 Apr 01
Herpers, B;Eppink, B;James, MI;Cortina, C;Cañellas-Socias, A;Boj, SF;Hernando-Momblona, X;Glodzik, D;Roovers, RC;van de Wetering, M;Bartelink-Clements, C;Zondag-van der Zande, V;Mateos, JG;Yan, K;Salinaro, L;Basmeleh, A;Fatrai, S;Maussang, D;Lammerts van Bueren, JJ;Chicote, I;Serna, G;Cabellos, L;Ramírez, L;Nuciforo, P;Salazar, R;Santos, C;Villanueva, A;Stephan-Otto Attolini, C;Sancho, E;Palmer, HG;Tabernero, J;Stratton, MR;de Kruif, J;Logtenberg, T;Clevers, H;Price, LS;Vries, RGJ;Batlle, E;Throsby, M;
PMID: 35469014 | DOI: 10.1038/s43018-022-00359-0
Cell Stem Cell
2016 May 12
Dominguez-Brauer C, Hao Z, Elia AJ, Fortin JM, Nechanitzky R, Brauer PM, Sheng Y, Mana MD, Chio II, Haight J, Pollett A, Cairns R, Tworzyanski L, Inoue S, Reardon C, Marques A, Silvester J, Cox MA, Wakeham A, Yilmaz OH, Sabatini DM, van Es JH, Clevers H,
PMID: 27184401 | DOI: 10.1016/j.stem.2016.04.002
The E3 ubiquitin ligase Mule is often overexpressed in human colorectal cancers, but its role in gut tumorigenesis is unknown. Here, we show in vivo that Mule controls murine intestinal stem and progenitor cell proliferation by modulating Wnt signaling via c-Myc. Mule also regulates protein levels of the receptor tyrosine kinase EphB3 by targeting it for proteasomal and lysosomal degradation. In the intestine, EphB/ephrinB interactions position cells along the crypt-villus axis and compartmentalize incipient colorectal tumors. Our study thus unveils an important new avenue by which Mule acts as an intestinal tumor suppressor by regulation of the intestinal stem cell niche.
bioRxiv
2017 Mar 18
Dame MK, Attili D, McClintock SD, Dedhia PH, Ouilette P, Hardt O, Chin AM, Xue X, Laliberte J, Katz EL, Newsome GM, Hill D, Miller A, Agorku D, Altheim CH, Bosio A, Simon B, Samuelson LC, Stoerker JA, Appelman HD, Varani J, Wicha MS, Brenner DE, Shah YM,
PMID: - | DOI: 10.1101/118034
The intestine is maintained by stem cells, marked by LGR5 expression, located at the base of crypts. Genetically engineered mouse models have provided information about marker genes and stem cell pathways. Less is known about human intestinal stem cells due to difficulty detecting and isolating these cells. We established an organoid repository from patient-derived adenomas, adenocarcinomas, and normal colon, which we analyzed for variants in 71 colorectal cancer (CRC) associated genes. Normal and neoplastic colon tissue organoids were analyzed for LGR5 expression by immunohistochemistry. LGR5-positive cells were isolated from 4 adenoma organoid lines and analyzed by RNA-sequencing. LGR5 expression in epithelium and stroma was associated with tumor stage. Integrating functional experiments with RNA-seq data from LGR5-positive adenoma organoid cells and normal colon, we associated expression of CRC-specific genes, including DKK4, with LGR5 expression. This system can be used to study LGR5-expressing cells in human tissue homeostasis and carcinogenesis.
Nature
2017 May 11
Shimokawa M, Ohta Y, Nishikori S, Matano M, Takano A, Fujii M, Date S, Sugimoto S, Kanai T, Sato T.
PMID: 28355176 | DOI: 10.1038/nature22081
The cancer stem cell (CSC) theory highlights a self-renewing subpopulation of cancer cells that fuels tumour growth. The existence of human CSCs is mainly supported by xenotransplantation of prospectively isolated cells, but their clonal dynamics and plasticity remain unclear. Here, we show that human LGR5+ colorectal cancer cells serve as CSCs in growing cancer tissues. Lineage-tracing experiments with a tamoxifen-inducible Cre knock-in allele of LGR5 reveal the self-renewal and differentiation capacity of LGR5+ tumour cells. Selective ablation of LGR5+CSCs in LGR5-iCaspase9 knock-in organoids leads to tumour regression, followed by tumour regrowth driven by re-emerging LGR5+ CSCs. KRT20 knock-in reporter marks differentiated cancer cells that constantly diminish in tumour tissues, while reverting to LGR5+ CSCs and contributing to tumour regrowth after LGR5+ CSC ablation. We also show that combined chemotherapy potentiates targeting of LGR5+CSCs. These data provide insights into the plasticity of CSCs and their potential as a therapeutic target in human colorectal cancer.
Communications biology
2022 Nov 19
An, SY;Kim, HS;Kim, SY;Van, SY;Kim, HJ;Lee, JH;Han, SW;Kwon, IK;Lee, CK;Do, SH;Hwang, YS;
PMID: 36402892 | DOI: 10.1038/s42003-022-04232-9
Cell reports
2022 Sep 06
Wei, X;Zhang, L;Zhang, Y;Cooper, C;Brewer, C;Tsai, CF;Wang, YT;Glaz, M;Wessells, HB;Que, J;Titus, MA;Cirulli, V;Glaser, A;Liu, T;Reder, NP;Creighton, CJ;Xin, L;
PMID: 36070687 | DOI: 10.1016/j.celrep.2022.111313
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
Nature
2022 Nov 01
Cañellas-Socias, A;Cortina, C;Hernando-Momblona, X;Palomo-Ponce, S;Mulholland, EJ;Turon, G;Mateo, L;Conti, S;Roman, O;Sevillano, M;Slebe, F;Stork, D;Caballé-Mestres, A;Berenguer-Llergo, A;Álvarez-Varela, A;Fenderico, N;Novellasdemunt, L;Jiménez-Gracia, L;Sipka, T;Bardia, L;Lorden, P;Colombelli, J;Heyn, H;Trepat, X;Tejpar, S;Sancho, E;Tauriello, DVF;Leedham, S;Attolini, CS;Batlle, E;
PMID: 36352230 | DOI: 10.1038/s41586-022-05402-9
Nature.
2018 Nov 28
Turco MY, Gardner L, Kay RG, Hamilton RS, Prater M, Hollinshead MS, McWhinnie A, Esposito L, Fernando R, Skelton H, Reimann F, Gribble FM, Sharkey A, Marsh SGE, O’Rahilly S, Hemberger M, Burton GJ, Moffett A.
PMID: 30487605 | DOI: 10.1038/s41586-018-0753-3
The placenta is the extraembryonic organ that supports the fetus during intrauterine life. Although placental dysfunction results in major disorders of pregnancy with immediate and lifelong consequences for the mother and child, our knowledge of the human placenta is limited owing to a lack of functional experimental models1. After implantation, the trophectoderm of the blastocyst rapidly proliferates and generates the trophoblast, the unique cell type of the placenta. In vivo, proliferative villous cytotrophoblast cells differentiate into two main sub-populations: syncytiotrophoblast, the multinucleated epithelium of the villi responsible for nutrient exchange and hormone production, and extravillous trophoblast cells, which anchor the placenta to the maternal decidua and transform the maternal spiral arteries2. Here we describe the generation of long-term, genetically stable organoid cultures of trophoblast that can differentiate into both syncytiotrophoblast and extravillous trophoblast. We used human leukocyte antigen (HLA) typing to confirm that the organoids were derived from the fetus, and verified their identities against four trophoblast-specific criteria3. The cultures organize into villous-like structures, and we detected the secretion of placental-specific peptides and hormones, including human chorionic gonadotropin (hCG), growth differentiation factor 15 (GDF15) and pregnancy-specific glycoprotein (PSG) by mass spectrometry. The organoids also differentiate into HLA-G+ extravillous trophoblast cells, which vigorously invade in three-dimensional cultures. Analysis of the methylome reveals that the organoids closely resemble normal first trimester placentas. This organoid model will be transformative for studying human placental development and for investigating trophoblast interactions with the local and systemic maternal environment.
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 | |
EnEm | Probe targets exons n and m | |
En-Em | Probe 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 |
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