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.
Oral Oncology
2016 Feb 27
Roopera LM, Gandhib M, Bishop JA, Westraa WH
PMID: - | DOI: 10.1016/j.oraloncology.2016.02.008
Evaluation of human papillomavirus (HPV) status in oropharyngeal squamous cell carcinoma (OPSCC) has become increasingly important for prognostication and clinical trial enrollment. This assessment is confounded in OPSCCs that are p16 positive by immunohistochemistry (IHC) but HPV negative by DNA in situ hybridization (DISH). This study evaluates whether E6/E7 mRNA in situ hybridization (RISH) can detect transcriptionally active HPV in these problematic cases.
Eighty-two head and neck squamous cell carcinoma cases that had previously undergone p16 IHC and HPV DISH were evaluated with two RISH platforms and a second-generation DISH probe. The study included 21 p16+/DISH+ concordant cases, 19 p16−/DISH− concordant cases, and 42 p16+/DISH− discordant cases.
RISH identified E6/E7 mRNA in 37 (88%) p16+/DISH− cases, 21 (100%) p16+/DISH+ cases, and 0 (0%) p16−/DISH− cases. RISH signals were clearly visible at low to medium magnification in 97% of positive cases, facilitating almost-perfect inter-observer reproducibility. The performance of the manual and automated RISH platforms were equivalent (kappa = 0.915). Only 29% of carcinomas that demonstrated E6/E7 mRNA transcriptional activity were positive using the 2nd generation DISH probe.
HPV RISH is a highly sensitive and specific platform that can clarify the HPV status of those perplexing OPSCCs that are p16 positive by IHC but HPV negative by DISH. Moreover, it is easy to interpret, readily adaptable to the clinical laboratory, and provides direct evidence of HPV transcriptional activity. E6/E7 RISH should be considered as a first-line platform for determination of HPV status in OPSCCs.
J Comp Neurol.
2018 Jul 17
Patrick Card J, Johnson AL, Llewellyn-Smith IJ, Zheng H, Anand R, Brierley DI, Trapp S, Rinaman L.
PMID: 30019398 | DOI: 10.1002/cne.24482
Glutamatergic neurons that express pre-proglucagon (PPG) and are immunopositive (+) for glucagon-like peptide-1 (i.e., GLP-1+ neurons) are located within the caudal nucleus of the solitary tract (cNTS) and medullary reticular formation in rats and mice. GLP-1 neurons give rise to an extensive central network in which GLP-1 receptor (R) signaling suppresses food intake, attenuates rewarding, increases avoidance, and stimulates stress responses, partly via . GLP-1R signaling within the cNTS. In mice, noradrenergic (A2) cNTS neurons express GLP-1R, whereas PPG neurons do not. In the present study, confocal microscopy in rats confirmed that prolactin-releasing peptide (PrRP)+ A2 neurons are closely apposed by GLP-1+ axonal varicosities. Surprisingly, GLP-1+ appositions were also observed on dendrites of PPG/GLP-1+ neurons in both species, and electron microscopy in rats revealed that GLP-1+ boutons form asymmetric synaptic contacts with GLP-1+ dendrites. However, RNAscope confirmed that rat GLP-1 neurons do not express GLP-1R mRNA. Similarly, Ca2+ imaging of somatic and dendritic responses in mouse ex vivo slices confirmed that PPG neurons do not respond directly to GLP-1, and a mouse cross-breeding strategy revealed that fewer than 1% of PPG neurons co-express GLP-1R. Collectively, these data suggest that GLP-1R signaling pathways modulate the activity of PrRP+ A2 neurons, and also reveal a local "feed-forward" synaptic network among GLP-1 neurons that apparently does not utilize GLP-1R signaling. This local GLP-1 network may instead use glutamatergic signaling to facilitate dynamic and potentially selective recruitment of GLP-1 neural populations that shape behavioral and physiological responses to internal and external challenges.
Diagnostics (Basel, Switzerland)
2023 Mar 13
Bumrungthai, S;Ekalaksananan, T;Kleebkaow, P;Pongsawatkul, K;Phatnithikul, P;Jaikan, J;Raumsuk, P;Duangjit, S;Chuenchai, D;Pientong, C;
PMID: 36980391 | DOI: 10.3390/diagnostics13061084
Head and neck pathology
2022 Jul 08
Lewis, JS;Smith, MH;Wang, X;Tong, F;Mehrad, M;Lang-Kuhs, KA;
PMID: 35802245 | DOI: 10.1007/s12105-022-01467-0
Vectorology for Optogenetics and Chemogenetics
2023 Feb 07
Lin, J;Dimidschstein, J;
| DOI: 10.1007/978-1-0716-2918-5_9
Diagnostic Histopathology
Moutasim KA, Robinson M, Thavaraj S.
PMID: 10.1016/j.mpdhp.2015.02.002
Oral oncology, 50(1):1–9.
Mirghani H1, Amen F2, Moreau F3, Guigay J4, Ferchiou M5, Melkane AE6, Hartl DM7, Lacau St Guily J (2014).
PMID: 24169585 | DOI: 10.1016/j.oraloncology.2013.10.008.
Head and neck pathology, 1–7.
Chernock RD, Nussenbaum B, Thorstad WL, Luo Y, Ma XJ, El-Mofty SK, Lewis JS Jr (2013).
PMID: 24151062.
The Journal of Molecular Diagnostics, 14(1), 22–29.
Wang, F, Flanagan, J, Su N, Wang LC, Bui S, Nielson A, Wu X, Vo HT, Ma XJ, Luo Y. (2012).
PMID: 22166544 | DOI: 10.1016/j.jmoldx.2011.08.002.
Case Reports in Otolaryngology
2016 May 25
Brobst T, García J, Rowe Price KA, Gao G, Smith DI, Price D.
PMID: - | DOI: -
Abstract
Background:
Although alcohol and tobacco use are known risk factors for development of squamous cell carcinoma in the head and neck, human papillomavirus (HPV) has been increasingly associated with this group of cancers. We describe the case of a married couple who presented with HPV-positive oropharynx squamous cell carcinoma within two months of each other.
Methods:
Tumor biopsies were positive for p16 and high-risk HPV in both patients. Sanger sequencing showed a nearly identical HPV16 strain in both patients. Both patients received chemoradiation, and one patient also underwent transoral robotic tongue base resection with bilateral neck dissection.
Results:
Both patients showed no evidence of recurrent disease on follow-up PET imaging.
Conclusions:
New head and neck symptoms should be promptly evaluated in the partner of a patient with known HPV-positive oropharynx cancer. This case expands the limited current literature on concurrent presentation of HPV-positive oropharynx squamous cell carcinoma in couples.
Nat Neurosci.
2017 Dec 11
Hrvatin S, Hochbaum DR, Nagy MA, Cicconet M, Robertson K, Cheadle L, Zilionis R, Ratner A, Borges-Monroy R, Klein AM, Sabatini BL, Greenberg ME.
PMID: 29230054 | DOI: 10.1038/s41593-017-0029-5
Activity-dependent transcriptional responses shape cortical function. However, a comprehensive understanding of the diversity of these responses across the full range of cortical cell types, and how these changes contribute to neuronal plasticity and disease, is lacking. To investigate the breadth of transcriptional changes that occur across cell types in the mouse visual cortex after exposure to light, we applied high-throughput single-cell RNA sequencing. We identified significant and divergent transcriptional responses to stimulation in each of the 30 cell types characterized, thus revealing 611 stimulus-responsive genes. Excitatory pyramidal neurons exhibited inter- and intralaminar heterogeneity in the induction of stimulus-responsive genes. Non-neuronal cells showed clear transcriptional responses that may regulate experience-dependent changes in neurovascular coupling and myelination. Together, these results reveal the dynamic landscape of the stimulus-dependent transcriptional changes occurring across cell types in the visual cortex; these changes are probably critical for cortical function and may be sites of deregulation in developmental brain disorders.
Cell reports
2022 Sep 20
Kim, S;Oh, H;Choi, SH;Yoo, YE;Noh, YW;Cho, Y;Im, GH;Lee, C;Oh, Y;Yang, E;Kim, G;Chung, WS;Kim, H;Kang, H;Bae, Y;Kim, SG;Kim, E;
PMID: 36130507 | DOI: 10.1016/j.celrep.2022.111398
Description | ||
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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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