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Probes for LONG

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

ACD’s data images for Long gene.

  • RNA expression of long gene in Human Colorectal cancer sample using RNAscope™ 2.5 HD Assay Brown

  • RNA expression of long gene in Human Gastric cancer sample using RNAscope™ 2.5 HD Assay Brown

  • RNA expression of long gene in Human Glioma sample using RNAscope™ 2.5 HD Assay Brown

  • RNA expression of long gene in Human Lung cancer sample using RNAscope™ 2.5 HD Assay Brown

  • RNA expression of long gene in Human ovarian cancer sample using RNAscope™ 2.5 HD Assay Brown

  • Expression of long in Human Prostate cancer sample using RNAscope™ 2.5 HD Assay Brown

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

Content for comparison

Gene

  • MEG3 (1) Apply MEG3 filter
  • lhb (1) Apply lhb filter
  • TLR4 (1) Apply TLR4 filter
  • Ghrh (1) Apply Ghrh filter
  • Gh (1) Apply Gh filter
  • Kcnq1 (1) Apply Kcnq1 filter
  • Gsdmd (1) Apply Gsdmd filter

Product

  • (-) Remove RNAscope 2.5 HD Duplex filter RNAscope 2.5 HD Duplex (3)

Research area

  • Inflammation (1) Apply Inflammation filter
  • Injury (1) Apply Injury filter
  • Kidney (1) Apply Kidney filter
  • LncRNAs (1) Apply LncRNAs filter
  • Neuroscience (1) Apply Neuroscience filter
  • Other: Kidney (1) Apply Other: Kidney filter
  • Regeneration (1) Apply Regeneration filter

Category

  • Publications (3) Apply Publications filter
The long noncoding RNA Meg3 mediates TLR4-induced inflammation in experimental obstructive nephropathy

Clinical science (London, England : 1979)

2023 Jan 27

Yiu, WH;Lok, SW;Xue, R;Chen, J;Lai, KN;Lan, HY;Tang, SC;
PMID: 36705251 | DOI: 10.1042/CS20220537

Kidney inflammation contributes to the progression of chronic kidney disease (CKD). Modulation of Toll-like receptor 4 (TLR4) signaling is a potential therapeutic strategy for this pathology, but the regulatory mechanisms of TLR4 signaling in kidney tubular inflammation remains unclear. Here, we demonstrated that tubule-specific deletion of TLR4 in mice conferred protection against obstruction-induced kidney injury, with reduction in inflammatory cytokine production, macrophage infiltration and kidney fibrosis. Transcriptome analysis revealed a marked downregulation of long noncoding RNA (lncRNA) Meg3 in the obstructed kidney from tubule-specific TLR4 knockout mice compared to wild type control. Meg3 was also induced by LPS in tubular epithelial cells via a p53-dependent signaling pathway. Silencing of Meg3 suppressed LPS-induced cytokine production of CCL-2 and CXCL-2 and the activation of p38 MAPK pathway in vitro and ameliorated kidney fibrosis in mice with obstructive nephropathy. Together, these findings identify a proinflammatory role of lncRNA Meg3 in CKD and suggest a novel regulatory pathway in TLR4-driven inflammatory responses in tubular epithelial cells.
Two missense mutations in KCNQ1 cause pituitary hormone deficiency and maternally inherited gingival fibromatosis.

Nat Commun.

2017 Nov 03

Tommiska J, Känsäkoski J, Skibsbye L, Vaaralahti K, Liu X, Lodge EJ, Tang C, Yuan L, Fagerholm R, Kanters JK, Lahermo P, Kaunisto M, Keski-Filppula R, Vuoristo S, Pulli K, Ebeling T, Valanne L, Sankila EM, Kivirikko S, Lääperi M, Casoni F, Giacobini P, Ph
PMID: 29097701 | DOI: 10.1038/s41467-017-01429-z

Familial growth hormone deficiency provides an opportunity to identify new genetic causes of short stature. Here we combine linkage analysis with whole-genome resequencing in patients with growth hormone deficiency and maternally inherited gingival fibromatosis. We report that patients from three unrelated families harbor either of two missense mutations, c.347G>T p.(Arg116Leu) or c.1106C>T p.(Pro369Leu), in KCNQ1, a gene previously implicated in the long QT interval syndrome. Kcnq1 is expressed in hypothalamic GHRH neurons and pituitary somatotropes. Co-expressing KCNQ1 with the KCNE2 β-subunit shows that both KCNQ1 mutants increase current levels in patch clamp analyses and are associated with reduced pituitary hormone secretion from AtT-20 cells. In conclusion, our results reveal a role for the KCNQ1 potassium channel in the regulation of human growth, and show that growth hormone deficiency associated with maternally inherited gingival fibromatosis is an allelic disorder with cardiac arrhythmia syndromes caused by KCNQ1 mutations.

Single-cell analysis highlights differences in druggable pathways underlying adaptive or fibrotic kidney regeneration

Nature communications

2022 Jul 11

Balzer, MS;Doke, T;Yang, YW;Aldridge, DL;Hu, H;Mai, H;Mukhi, D;Ma, Z;Shrestha, R;Palmer, MB;Hunter, CA;Susztak, K;
PMID: 35821371 | DOI: 10.1038/s41467-022-31772-9

The kidney has tremendous capacity to repair after acute injury, however, pathways guiding adaptive and fibrotic repair are poorly understood. We developed a model of adaptive and fibrotic kidney regeneration by titrating ischemic injury dose. We performed detailed biochemical and histological analysis and profiled transcriptomic changes at bulk and single-cell level (> 110,000 cells) over time. Our analysis highlights kidney proximal tubule cells as key susceptible cells to injury. Adaptive proximal tubule repair correlated with fatty acid oxidation and oxidative phosphorylation. We identify a specific maladaptive/profibrotic proximal tubule cluster after long ischemia, which expresses proinflammatory and profibrotic cytokines and myeloid cell chemotactic factors. Druggability analysis highlights pyroptosis/ferroptosis as vulnerable pathways in these profibrotic cells. Pharmacological targeting of pyroptosis/ferroptosis in vivo pushed cells towards adaptive repair and ameliorates fibrosis. In summary, our single-cell analysis defines key differences in adaptive and fibrotic repair and identifies druggable pathways for pharmacological intervention to prevent kidney fibrosis.
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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