Showing posts with label P2Y2 antibody. Show all posts
Showing posts with label P2Y2 antibody. Show all posts

Thursday, January 10, 2013

Pain and the Interplay Between P2Y Receptors with P2X3

P2Y2-P2X3 crosstalk in DRG neurons

Alfredo Ribeiro-da-Silva and his team use our Purinergic Receptor Antibodies to the study role of their expression in Nociceptive and Neuropathic Pain. They referenced their use in 8 publications.

Based on their research, they suspect changes in P2X3 function under pathological conditions are more complex than simple up- or down-regulation of expression at the protein level. This would have profound implications for the dicovery of drugs that target P2X3 expression levels: Gary Mo, Jennifer C. Peleshok, Chang-Qing Cao, Alfredo Ribeiro-da-Silva and Philippe Séguéla. Control of P2X3 channel function by metabotropic P2Y2 UTP receptors in primary sensory neurons. Molecular Pharmacology Fast Forward. Published on December 18, 2012 as doi:10.1124/mol.112.082099.
Images: P2X3 and P2Y2 receptors are co-expressed in rat DRG sensory neurons.(A) DRG sections labeled for P2Y2 (green) and P2X3 (red) and merged (yellow). P2Y2 immunoreactivity is broadly distributed in small-diameter neuronal somata and co-localized with P2X3 (arrows). P2Y2 immunoreactivity can be detected in cells negative for P2X3 (arrow heads). (B) P2Y2 (green) and P2X3 (red) are also colocalized (yellow) in peripheral nerve fibers.
The two receptors were found to be colocalized both in cell bodies and nerve fibers, indicating co-trafficking to peripheral and central terminals. The immunolocalization evidence presented here provides valuable information on the physiological relevance of crosstalks between ionotropic and metabotropic ATP receptors in sensory pathways, yet much work is still needed to fully comprehend the role of nucleotide signaling in pain, especially in pathological conditions. Changes in P2Y2 receptor expression in response to inflammation have been documented (Malin et al., 2008), therefore it will be worth investigating the functional impact of P2Y2-P2X3 interactions on ATP signaling under chronic pain conditions.

I will keep you posted on any new developments.

Friday, May 27, 2011

bradykinin B2 or purinergic P2Y receptors and SNs

Our Neurotransmission Research Antibodies are proving to be important tools in studying excitability and firing properties of sympathetic neurons (SNs).

In this study the authors probe the role of a particular nerve cell potassium current, called the M-current, in the control of neurotransmitter release, using the contraction rate of the co-cultured heart cells as a functional read-out of noradrenaline release. Using several drugs and receptor agonists, we manipulated the activity of M-current in the nerve cells, which were stimulated by nicotine, and monitored its effect on heart cell beating. We find that the M-type potassium current has a robust role in the control of noradrenaline release from the nerve cells, and in the response of the heart cells to increased beating frequency as a result:

Oleg Zaika, Jie Zhang, and Mark S. Shapiro. Functional role of M-type (KCNQ) K+ channels in adrenergic control of cardiomyocyte contraction rate by sympathetic neurons. J. Physiol., May 2011; 589: 2559 - 2568.
Abstract: M-type (KCNQ) K+ channels are known to regulate excitability and firing properties of sympathetic neurons (SNs), but their role in regulating neurotransmitter release is unclear, requiring further study. We sought to use a physiological preparation in which SNs innervate primary cardiomyocytes to evaluate the direct role of M-channels in the release of noradrenaline (NA) from SNs. Co-cultures of rat SNs and mouse cardiomyocytes were prepared, and the contraction rate (CR) of the cardiomyocyte syncytium monitored by video microscopy. We excited the SNs with nicotine, acting on nicotinic acetylcholine receptors, and monitored the increase in CR in the presence or absence of the specific M-channel opener retigabine, or agonists of bradykinin B2 or purinergic P2Y receptors on the SNs. The maximal adrenergic effect on the CR was determined by application of isoproterenol (isoprenaline). To isolate the actions of B2 or P2Y receptor stimulation to the neurons, we prepared cardiomyocytes from B2 receptor or P2Y2 receptor knock-out mice, respectively. We found that co-application of retigabine strongly decreased the nicotine-induced increase in CR. Conversely, co-application of bradykinin or the P2Y-receptor agonist UTP augmented the nicotine-induced increase in CR to about half of the level produced by isoproterenol. All effects on the CR were wholly blocked by propranolol. Our data support the role of M-type K+ channels in the control of NA release by SNs at functional adrenergic synapses on cardiomyocytes. We conclude that physiological receptor agonists control the heart rate via the regulation of M-current in SNs.


This research has implications for forwarding the understanding of heart pacing.

Sunday, June 14, 2009

Potent Stem Cell Markers

The potency of our Stem Cell Research Reagents is confirmed by the growng list of publication referencing them.

Here're the latest:

Saishu Yoshida, Takako Kato, Takao Susa, Li-yi Cai, Michie Nakayama, Yukio Kato. PROP1 coexists with SOX2 and induces PIT1-commitment cells. Biochemical and Biophysical Research Communications, Volume 385, Issue 1, 17 July 2009, Pages 11-15
... SOX2 (1:500 dilution, Neuromics, Edina, MN, USA)...

Saravanan Karumbayaram, Bennett G. Novitchb, Michaela Patterson, Joy A. Umbach, Laura Richter, Anne Lindgren, Anne E. Conway, Amander T. Clark, Steve A. Goldman, Kathrin Plath, Martina Wiedau-pazos, Harley I. Kornblum, William E. Lowry. Directed Differentiation of Human-Induced Pluripotent Stem Cells Generates Active Motor Neurons. Stem Cells Vol. 27 No. 4 April 2009, pp. 806 -811. doi:10.1002.
... mouse anti-Nestin (Neuromics)...

Patrizia Rubini, Javorina Milosevic, Johannes Engelhardt, Mahmoud Al-Khrasani, Heike Franke, Attilla Heinrich, Beata Sperlagh, Sigrid C. Schwarz, Johannes Schwarz, Wolfgang Nörenberg and Peter Illes. Increase of intracellular Ca2+ by adenine and uracil nucleotides in human midbrain-derived neuronal progenitor cells. Cell Calcium. Volume 45, Issue 5, May 2009, Pages 485-498.
...rabbit anti-P2Y2 (1:1000; Neuromics, Edina, MN, USA...