Action of substance P and PAMP(9-20) on different excitation sites of MRGPRX2 induces differences in mast cell activation

2021 ◽  
Vol 101 ◽  
pp. 108342
Author(s):  
Delu Che ◽  
Yi Zheng ◽  
Yajing Hou ◽  
Xueshan Du ◽  
Tao Jia ◽  
...  
2018 ◽  
Vol 142 (4) ◽  
pp. 1331-1333.e8 ◽  
Author(s):  
Laura Jadkauskaite ◽  
Rajia Bahri ◽  
Nilofer Farjo ◽  
Bessam Farjo ◽  
Gail Jenkins ◽  
...  

Blood ◽  
2018 ◽  
Vol 132 (Supplement 1) ◽  
pp. 857-857 ◽  
Author(s):  
Camila Albo ◽  
Sanjiv Kumar ◽  
Michael Pope ◽  
Kyle Michael Kidwell ◽  
Niren Patel ◽  
...  

Abstract A paradigm shift is occurring in our understanding of pain in patients with sickle cell disease (SCD). Vaso-occlusive episodes (VOEs) are crises of acute nociceptive pain, and have long been recognized as a hallmark of SCD (Brandow et al., 2017). While patients with SCD are traditionally considered to be at "steady state" and pain free between VOEs, recent studies have shown that a significant number of adults with SCD (~30%) experience daily chronic pain (>50% of the time in the past 6 months) (Smith et al., 2008). Although the precise mechanisms underlying this evolution from acute episodic to chronic pain are not well known, some contributing factors include age, chronic inflammation, organ damage, and opioid induced hyperalgesia (Stoicea et al., 2015; Rees et al., 2010). A recent study in a mouse model of SCD showed that mast cell activation was an important contributor to neurogenic inflammation and chronic pain (Vincent et al., 2013). We previously reported that SCD patients with chronic pain were older and had higher levels of mast cell activation markers, plasma tryptase and substance P, compared to those without chronic pain (Kuei et al., 2015). Recently, nerve growth factor (NGF) has been implicated in pathogenesis of some chronic pain syndromes (osteoarthritis), and clinical trials with anti-NGF monoclonal antibodies have been shown to result in superior pain control compared to placebo, opioids and NSAIDs. Here we report the results of our extended study of the evolution of chronic pain in SCD. A total of 72 subjects (age 15-66) were enrolled: 10 in the 15-19 age group, 19 in 20-29, 21 in 30-39, and 22 in ≥ 40. Patients transfused within the past 3 months and those who had an ED visit or hospitalization within the past 2 weeks were excluded. Information on the frequency of VOEs, presence or absence of chronic pain, HU therapy, opioid use (as mg morphine equivalents within the past 6 months), other medications and routine laboratory data (CBC, retics, chemistry panel, HbF) were collected. 4 mL of EDTA blood was collected at steady state and the plasma was separated by centrifugation and kept at -80 C. Plasma tryptase, substance P, and NGF levels were assayed by ELISA using kits from Biomatik inc (catalog# EKU07922), Enzo Life Sciences (catalog# ADI-900-018), and R&D Systems (catalog# DY256), respectively. Pressure pain threshold (PPTh) was measured using a hand-held digital algometer (AlgoMed, Medoc, Israel) four times at each of the following anatomic muscle groups on the left side of the body and then averaged for analysis: masseter, trapezius, and ulna in this consecutive order. Cutaneous mechanical pain was assessed using a Von Frey monofilament on the back of the subject's left hand. A baseline of one stimulus and then two separate series of 10 repeated stimuli each were conducted. The subject was asked to rate the pain on a scale of 0 to 10 (MFB, MF1 and MF2). Overall, 34 patients had chronic pain and 38 did not; there was an age dependent increase in the frequency of chronic pain, VOE frequency, opioid use and Von Frey MF values. Similarly, QST showed significantly lower pressure pain thresholds in subjects with chronic pain at ulna and trapezius (p=0.026 and 0.024 respectively). As expected, opioid use (daily morphine equivalents) was significantly higher in the chronic pain patients (52.8 mg vs 6.94 mg, p=0.009), suggesting a correlation between opioid use and hyperalgesia. Tryptase and substance P levels were higher in chronic pain patients, though the difference did not reach statistical significance. NGF levels were significantly higher in the chronic pain group (1126 pg/ml vs 473 pg/ml, p=0.051). Our results confirm previous observations that there is an age dependent increase in the proportion of patients with chronic pain (Table 1, Fig. 1-3). The trend towards higher levels of tryptase and substance P is in support of mast cell activation and neurogenic inflammation as a contributing factor to chronic pain (Vincent et al., 2013). To our knowledge, this is the first study of NGF as a possible contributing factor to chronic pain in SCD. If confirmed in larger multi-center studies, these observations could provide a rationale for novel interventions for chronic pain in SCD, via inhibition of mast cell activation/c-kit (tyrosine kinase inhibitors) or via repurposing of existing anti-NGF monoclonal antibodies as an alternative to opioids, whose inefficacy in chronic pain is well documented. Disclosures Kutlar: Novartis: Consultancy, Honoraria, Other: Personal fees, Research Funding; Bluebird Bio: Other: DSMB Member; Sancilio: Other: DSMB Chair.


2010 ◽  
Vol 213 (1) ◽  
pp. e13
Author(s):  
I. Bot ◽  
S.C.A. de Jager ◽  
M. Bot ◽  
S.H. van Heiningen ◽  
T.J.C. Van Berkel ◽  
...  

Blood ◽  
2015 ◽  
Vol 126 (23) ◽  
pp. 986-986 ◽  
Author(s):  
Nina Kuei ◽  
Niren Patel ◽  
Hongyan Xu ◽  
Leigh Wells ◽  
Latanya Bowman ◽  
...  

Abstract Vaso-occlusive episodes (VOE) or pain crises are a hallmark of sickle cell disease (SCD), with increasing recognition that a significant portion of SCD patients develop chronic pain. In the landmark PiSCES study (Smith et al), patients reported pain on 55% days, with ~30% reporting pain on >90% days. Thus, the episodic, nociceptive pain (VOE) in younger patients, evolves into a chronic pain syndrome, with neuropathic and centralized components in some adults. Kutlar et al (Blood, 2014), reported on the association of different pain related phenotypes (pain diaries, frequency of hospitalizations/ED visits, pressure pain threshold) with polymorphisms in candidate genes in 167 SCD patients, providing evidence that multiple signaling pathways and mechanisms are likely involved. In this study, 12 SCD subjects with "chronic pain", defined by reported pain >50% of days in pain diaries collected over 6 months, were enrolled (SCD-CP). 17 SCD patients who did not have chronic pain (SCD-NCP), and 9 non-SCD African-Americans (C) were enrolled as controls. Informed consent was obtained. Age, gender, Hb F levels, HU usage, and pressure pain algometer readings were recorded from SCD subjects. 8 ml of blood (EDTA) was collected from subjects at "steady state" and from normal controls. Plasma was separated and kept at -80 C until the assay. Plasma tryptase and Substance P levels were assayed by ELISA using kits from Biomatik, Inc. (catalog # EKU07922) and Enzo Life Sciences (Catalog #ADI-900-018), respectively. SCD-CP patients were significantly older than SCD-NCP: mean age 41 vs 32.2 (p=0.033). The pressure pain algometer readings did not differ significantly between SCD-CP and SCD-NCP at three sites (trapezius, ulna, masseter, p= 0.67-0.74). There were 12/17 patients on HU (70.6%) among SCD-NCP, and 6/12 (50%) among SCD-CP (p=0.435). Similarly, Hb F levels were not significantly different (14.7% in SCD-CP, vs 11.7% in SCD-NCP, p=0.446). Opioid use (average morphine equivalent as mg/day) was significantly higher in the chronic pain group (11.45 mg/day, vs 2.92 mg/day, p=0.015). Plasma tryptase and substance-P levels are shown in the table: Table 1. Tryptase (pg/ml) Substance-P (pg/ml) SCD-CP 1388.6 ±519.8 7221.1±7742.7 SCD-NCP 1023.64±221.04 5983.1±3473.0 Control 768.9±416.16 3939.7±1350.1 The difference in substance-P levels did not reach significance across groups by ANOVA (p=0.337) or in pairwise comparison between groups. However, tryptase levels were significantly different across groups by ANOVA (p=0.00615). Pairwise comparisons between two groups showed that tryptase levels were significantly different between SCD-CP and controls (p=0.0053). These results highlight characteristics of SCD patients with chronic pain: they are older, have a higher use of opioids, and have significantly higher tryptase levels. These observations support previous findings that age is a significant factor in transition to chronic pain in SCD. Higher dose of opioid use in SCD-CP could result from dose escalation to control pain; conversely, it could be argued that higher opioid use itself could be a factor in development of chronic pain through opioid-induced hyperalgesia. To our knowledge, this is the first study of plasma tryptase levels in SCD, in relation to different pain phenotypes. Tryptase is released into plasma with degranulation of mast cells and leads to inflammation, anaphylaxis, urticaria, and neuropathic pain. It binds PAR2 (protease activated receptor 2), releasing inflammatory mediators and substance P, inducing neurogenic inflammation. Elevated tryptase levels are found in systemic mastocytosis, and the newly recognized Mast Cell Activation Syndrome (MCAS). Vincent et al (Blood, 2013) showed that mast cell activation played an important role in neurogenic inflammation and chronic pain in a mouse model of SCD. They also demonstrated that inhibition of mast cell activation, via c-kit knockout or with imatinib or cromolyn sodium improved neurogenic inflammation and chronic pain. Two recent case reports (Murphy et al, Stankovic et al) document significant improvement in pain in SCD patients who developed CML, during treatment with imatinib. These observations, and the findings of our pilot study, not only suggest a novel mechanism and biomarker for chronic pain in SCD, but also a potential therapeutic target by inhibition of mast cell activation via c-kit pathway, or stabilization with cromolyn. Disclosures No relevant conflicts of interest to declare.


2017 ◽  
Vol 14 (2) ◽  
pp. 124-124 ◽  
Author(s):  
Guo-Ping Shi ◽  
Ilze Bot ◽  
Petri T. Kovanen

Blood ◽  
2015 ◽  
Vol 126 (23) ◽  
pp. 2169-2169
Author(s):  
Ying Wang ◽  
Jianxun Lei ◽  
Yann Y Lamarre ◽  
Ritu Jha ◽  
Fei Peng ◽  
...  

Abstract Background: Inflammation, neurogenic inflammation and pain remain challenging to treat in sickle cell disease (SCD). Alternative therapies including acupuncture have been used for centuries to reduce pain and ameliorate underlying pathobiology of many disorders. We examined the mechanisms underlying acupuncture therapy in sickle mice. To prevent the influence of anesthetics and constraint on the pathobiology we developed electroacupuncture (EA) treatment for awake/conscious freely moving mice to simulate treatment conditions in patients, and then examined the peripheral and central mechanisms of neuroinflammation and nociception. Methods: HbSS-BERK sickle and HbAA-BERK control mice were treated with four EA treatments (every 3rd day, frequency: 4 or 10 Hz, pulse width: 100 microsecond, duration: 30 min) at acupoint GB30. Untreated and sham-EA treated (acupuncture without electrical stimulation) were used as controls. Hyperalgesia was evaluated daily by determining mechanical threshold, deep tissue hyperalgesia and thermal hyperalgesia using von Frey filaments, grip force, and cold plate, respectively. Blood and tissues were collected for analysis after four sessions of treatment. Skin biopsies were incubated overnight and culture medium was analyzed for mast cell activation marker tryptase, and neuromodulatory marker substance P. Results: Varied analgesic response to EA treatment was observed in sickle mice. About 86% treated mice equally showed positive (>50% pain relief) or moderate (20-30% pain relief) response and 14% were non-responsive (<20% pain relief) to EA. In positive responders, EA significantly reduced white blood cells (p<.001 Vs moderate- and non-responders), serum amyloid protein (p<.01 Vs untreated), IL-1beta (p<.05 Vs untreated, p<.01 Vs non-responders), and substance P (p<.05 Vs untreated and p<.001 Vs non-responders and p<.05 Vs moderate-responders). Concurrently, spinal cord analysis of EA treated positive-responders showed reduced substance P (p<.05 Vs untreated and non-responders), IL-1 beta (p<.01 Vs untreated), TNF alpha (p<.05 and p<.01 Vs moderate- and non-responders, respectively). Consistent with this central and peripheral anti-inflammatory response, culture medium from skin biopsies of positive responders demonstrated reduced substance P (p<.01 Vs moderate- and non-responders) and tryptase (p<.01 Vs untreated, moderate- and non-responders), and significantly less toluidine blue stained degranulating mast cells in the skin (p<.05 Vs untreated and non-responders) suggestive of attenuation of mast cell and peripheral nervous system activation. Functionally, capsaicin and substance P-induced neurogenic inflammation were significantly attenuated in positive-responders vs non-responders (p<.05) or untreated (p<.05). Peripheral and central attenuation of inflammatory and neurogenic response to EA was accompanied by inhibition of nociceptive signaling in the spinal cord. Spinal phosphorylation of p38 MAPK decreased in EA treated mice (p<.05 Vs sham-EA and untreated control; and positive-responders Vs non-responders). Conclusions: EA treatment on conscious free-moving mice simulates clinical conditions in patients and excludes the potential influence due to restraint or anesthetics. EA leads to peripheral and central neuromodulation and anti-inflammatory response by attenuating mast cell activation, substance P, and cytokine release in the periphery and by abrogating spinal nociceptive signaling of p38MAPK and inflammation. Together, these molecular and cellular effects lead to EA-induced attenuation of neurogenic inflammation and hyperalgesia in sickle mice. Importantly, these data explain the cause of variable effectiveness of EA in SCD. Disclosures No relevant conflicts of interest to declare.


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