The Molecular Signatures of Acute-immobilization-induced Antinociception and Chronic-immobilization-induced Antinociceptive Tolerance

논문상세정보
' The Molecular Signatures of Acute-immobilization-induced Antinociception and Chronic-immobilization-induced Antinociceptive Tolerance' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • Acute stress
  • Anti-nociception
  • Signal molecule
  • Tolerance
  • chronicstress
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
139 0

0.0%

' The Molecular Signatures of Acute-immobilization-induced Antinociception and Chronic-immobilization-induced Antinociceptive Tolerance' 의 참고문헌

  • mTOR, a new potential target for chronic pain and opioid-induced tolerance and hyperalgesia
    Lutz BM [2015]
  • mTOR pathway is involved in ADP-evoked astrocyte activation and ATP release in the spinal dorsal horn in a rat neuropathic pain model
    Cui J [2014]
  • mTOR kinase : a possible pharmacological target in the management of chronic pain
    Lisi L [2015]
  • mTOR and its downstream pathway are activated in the dorsal root ganglion and spinal cord after peripheral inflammation, but not after nerve injury
    Liang L [2013]
  • The role of MAPK and dopaminergic synapse signaling pathways in antidepressant effect of electroacupuncture pretreatment in chronic restraint stress rats
    Yang X [2017]
  • The formalin test in mice : dissociation between inflammatory and non-inflammatory pain
    Hunskaar S [1987]
  • The formalin test : an evaluation of the method
    Tjølsen A [1992]
  • The effects of acute and repeated restraint stress on the nociceptive response in rats
    Gamaro GD [1998]
  • Tests and models of nociception and pain in rodents
    Barrot M [2012]
  • Targeting AMPK for the alleviation of pathological pain
    Asiedu MN [2016]
  • Stress-induced oxidative changes in brain
    Madrigal JL [2006]
  • Stress-induced analgesia prevents the development of the tonic, late phase of pain produced by subcutaneous formalin
  • Stress-induced analgesia in frogs : evidence for the involvement of an opioid system
    Pezalla PD [1984]
  • Stress-induced analgesia : adaptive pain suppression
    Amit Z [1986]
  • Stress-induced analgesia
    Butler RK [2009]
  • Oxidative stress, inflammation, and cancer: how are they linked?
    Reuter S [2010]
  • Opioid receptor-triggered spinal mTORC1 activation contributes to morphine tolerance and hyperalgesia
    Xu JT [2014]
  • Injured nerve-derived COX2/PGE2 contributes to the maintenance of neuropathic pain in aged rats
    Ma W [2010]
  • Inhibition of mammalian target of rapamycin(mTOR)signaling in the insular cortex alleviates neuropathic pain after peripheral nerve injury
    Kwon M [2017]
  • Inhibition of acid sphingomyelinase by antidepressants counteracts stress-induced activation of P38-kinase in major depression
    Grassmé H [2015]
  • Immobilization and restraint effects on pain reactions in animals
    Porro CA [1988]
  • Hyperosmotic stressinduced caspase-3 activation is mediated by p38 MAPK in the hippocampus
  • Heat stress affects prostaglandin synthesis in bovine endometrial cells
    Sakai S [2018]
  • Formalin test in mice, a useful technique for evaluating mild analgesics
    Hunskaar S [1985]
  • Extremely long-lasting antagonistic actions of nor-binaltorphimine(nor-BNI)in the mouse tail-flick test
    Horan P [1992]
  • Expression levels of the hypothalamic AMPK gene determines the responsiveness of the rats to electroacupuncture-induced analgesia
    Kim SK [2014]
  • Enhanced oxidative stress in iNOS-deficient mice after traumatic brain injury : support for a neuroprotective role of iNOS
    Bayir H [2005]
  • Effects of metformin on the expression of AMPK and STAT3 in the spinal dorsal horn of rats with neuropathic pain
    Ge A [2018]
  • Effects of electroacupuncture on chronic unpredictable mild stress rats depression-like behavior and expression of p-ERK/ERK and p-P38/P38
    Xu J [2015]
  • Dopamine receptor mechanism(s)and antinociception and tolerance induced by swim stress in formalin test
  • Does COX2-dependent PGE2 play a role in neuropathic pain?
    Ma W [2008]
  • Differential Cross-tolerance Development between Single and Repeated Immobilization Stress on the Antinociceptive Effect Induced by β- Endorphin, 5-Hydroxytryptamine, Morphine, and WIN55,212-2 in the Inflammatory Mouse Pain Model
  • Dexmedetomidine Attenuates Neuropathic Pain by Inhibiting P2X7R Expression and ERK Phosphorylation in Rats
  • Development of antinociceptive tolerance and changes of opioid receptor ligand binding in central nervous system of the mouse forced to single and repeated swimming in the cold water
    Kim KW [2003]
  • Changes in pain behavior induced by formalin, substance P, glutamate and pro-inflammatory cytokines in immobilization-induced stress mouse model
    Seo YJ [2006]
  • Changes in oxidative stress, iNOS activity and neutrophil infiltration in severe transient focal cerebral ischemia in rats
    Lerouet D [2002]
  • COX2 in CNS neural cells mediates mechanical inflammatory pain hypersensitivity in mice
    Vardeh D [2009]
  • C/EBP{beta} and its binding element are required for NF{kappa}B-induced COX2 expression following hypertonic stress
    Chen J [2005]
  • Antinociceptive and hypothermic crosstolerance between continuous and intermittent cold-water swims in rats
    Pavlovic Z [1993]
  • Antagonism of orexin-1 receptors attenuates swim-and restraint stress-induced antinociceptive behaviors in formalin test
  • Activation of p38MAPK in primary afferent neurons by noxious stimulation and its involvement in the development of thermal hyperalgesia
    Mizushima T [2005]
  • Activation of mitogen-activated protein kinase in descending pain modulatory system
    Imbe H [2011]
  • Activation of mTOR in the spinal cord is required for pain hypersensitivity induced by chronic constriction injury in mice
    Zhang W [2013]
  • Activation of JNK pathway in persistent pain
    Gao YJ [2008]
  • Acetic acid for analgesic screening
    Koster R [1959]