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Search

Probes for MC4R

ACD can configure probes for the various manual and automated assays for MC4R for RNAscope Assay, or for Basescope Assay compatible for your species of interest.

  • Probes for Mc4r (0)
  • Kits & Accessories (0)
  • Support & Documents (0)
  • Publications (3)
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Refine Probe List

Content for comparison

Gene

  • Mc4r (12) Apply Mc4r filter
  • Mc3r (3) Apply Mc3r filter
  • GLP1R (2) Apply GLP1R filter
  • (-) Remove SLC32A1 filter SLC32A1 (2)
  • Pomc (2) Apply Pomc filter
  • CALCR (2) Apply CALCR filter
  • CHRM5 (1) Apply CHRM5 filter
  • DRD2 (1) Apply DRD2 filter
  • Prkcd (1) Apply Prkcd filter
  • Gfral (1) Apply Gfral filter
  • FOS (1) Apply FOS filter
  • (-) Remove GCG filter GCG (1)
  • GIPR (1) Apply GIPR filter
  • AGRP (1) Apply AGRP filter
  • Sst (1) Apply Sst filter
  • HTR1A (1) Apply HTR1A filter
  • UCN3 (1) Apply UCN3 filter
  • LEPR (1) Apply LEPR filter
  • TACR1 (1) Apply TACR1 filter
  • Bdnf (1) Apply Bdnf filter
  • Crh (1) Apply Crh filter
  • GFP (1) Apply GFP filter
  • Tac2 (1) Apply Tac2 filter
  • Grpr (1) Apply Grpr filter
  • Slc17a6 (1) Apply Slc17a6 filter
  • Npy2r (1) Apply Npy2r filter
  • Pax5 (1) Apply Pax5 filter
  • CASR (1) Apply CASR filter
  • Grin1 (1) Apply Grin1 filter
  • Ghrh (1) Apply Ghrh filter
  • Asb4 (1) Apply Asb4 filter
  • Olfr78 (1) Apply Olfr78 filter
  • Brs3 (1) Apply Brs3 filter
  • vGlut2 (1) Apply vGlut2 filter
  • VGAT (1) Apply VGAT filter
  • Kir7.1 (1) Apply Kir7.1 filter
  • Cre (1) Apply Cre filter
  • Calcrl (1) Apply Calcrl filter
  • C-fos (1) Apply C-fos filter
  • Kiss1 (1) Apply Kiss1 filter
  • Ramp3 (1) Apply Ramp3 filter
  • Tacr3 (1) Apply Tacr3 filter
  • vGluT3 (1) Apply vGluT3 filter
  • Ccbe1 (1) Apply Ccbe1 filter
  • Avpr1 (1) Apply Avpr1 filter
  • Cre-C2 (1) Apply Cre-C2 filter
  • Mc4r-C3 (1) Apply Mc4r-C3 filter

Product

  • RNAscope 2.5 VS Assay (1) Apply RNAscope 2.5 VS Assay filter
  • RNAscope HiPlex v2 assay (1) Apply RNAscope HiPlex v2 assay filter
  • RNAscope Multiplex Fluorescent Assay (1) Apply RNAscope Multiplex Fluorescent Assay filter

Research area

  • (-) Remove Neuroscience filter Neuroscience (3)

Category

  • Publications (3) Apply Publications filter
Lateral septum as a melanocortin downstream site in obesity development

Cell reports

2023 May 11

Xu, Y;Jiang, Z;Li, H;Cai, J;Jiang, Y;Otiz-Guzman, J;Xu, Y;Arenkiel, BR;Tong, Q;
PMID: 37171957 | DOI: 10.1016/j.celrep.2023.112502

The melanocortin pathway is well established to be critical for body-weight regulation in both rodents and humans. Despite extensive studies focusing on this pathway, the downstream brain sites that mediate its action are not clear. Here, we found that, among the known paraventricular hypothalamic (PVH) neuron groups, those expressing melanocortin receptors 4 (PVHMc4R) preferably project to the ventral part of the lateral septum (LSv), a brain region known to be involved in emotional behaviors. Photostimulation of PVHMc4R neuron terminals in the LSv reduces feeding and causes aversion, whereas deletion of Mc4Rs or disruption of glutamate release from LSv-projecting PVH neurons causes obesity. In addition, disruption of AMPA receptor function in PVH-projected LSv neurons causes obesity. Importantly, chronic inhibition of PVH- or PVHMc4R-projected LSv neurons causes obesity associated with reduced energy expenditure. Thus, the LSv functions as an important node in mediating melanocortin action on body-weight regulation.
Topographic representation of current and future threats in the mouse nociceptive amygdala

Nature communications

2023 Jan 13

Bowen, AJ;Huang, YW;Chen, JY;Pauli, JL;Campos, CA;Palmiter, RD;
PMID: 36639374 | DOI: 10.1038/s41467-023-35826-4

Adaptive behaviors arise from an integration of current sensory context and internal representations of past experiences. The central amygdala (CeA) is positioned as a key integrator of cognitive and affective signals, yet it remains unknown whether individual populations simultaneously carry current- and future-state representations. We find that a primary nociceptive population within the CeA of mice, defined by CGRP-receptor (Calcrl) expression, receives topographic sensory information, with spatially defined representations of internal and external stimuli. While Calcrl+ neurons in both the rostral and caudal CeA respond to noxious stimuli, rostral neurons promote locomotor responses to externally sourced threats, while caudal CeA Calcrl+ neurons are activated by internal threats and promote passive coping behaviors and associative valence coding. During associative fear learning, rostral CeA Calcrl+ neurons stably encode noxious stimulus occurrence, while caudal CeA Calcrl+ neurons acquire predictive responses. This arrangement supports valence-aligned representations of current and future threats for the generation of adaptive behaviors.
A genetic map of the mouse dorsal vagal complex and its role in obesity

Nature metabolism

2021 Apr 01

Ludwig, MQ;Cheng, W;Gordian, D;Lee, J;Paulsen, SJ;Hansen, SN;Egerod, KL;Barkholt, P;Rhodes, CJ;Secher, A;Knudsen, LB;Pyke, C;Myers, MG;Pers, TH;
PMID: 33767443 | DOI: 10.1038/s42255-021-00363-1

The brainstem dorsal vagal complex (DVC) is known to regulate energy balance and is the target of appetite-suppressing hormones, such as glucagon-like peptide 1 (GLP-1). Here we provide a comprehensive genetic map of the DVC and identify neuronal populations that control feeding. Combining bulk and single-nucleus gene expression and chromatin profiling of DVC cells, we reveal 25 neuronal populations with unique transcriptional and chromatin accessibility landscapes and peptide receptor expression profiles. GLP-1 receptor (GLP-1R) agonist administration induces gene expression alterations specific to two distinct sets of Glp1r neurons-one population in the area postrema and one in the nucleus of the solitary tract that also expresses calcitonin receptor (Calcr). Transcripts and regions of accessible chromatin near obesity-associated genetic variants are enriched in the area postrema and the nucleus of the solitary tract neurons that express Glp1r and/or Calcr, and activating several of these neuronal populations decreases feeding in rodents. Thus, DVC neuronal populations associated with obesity predisposition suppress feeding and may represent therapeutic targets for obesity.
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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