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Journal Abstract Search


821 related items for PubMed ID: 20627413

  • 21. Patterns of quantitative sensation testing of hypoesthesia and hyperalgesia are predictive of diabetic polyneuropathy: a study of three cohorts. Nerve growth factor study group.
    Dyck PJ, Dyck PJ, Larson TS, O'Brien PC, Velosa JA.
    Diabetes Care; 2000 Apr; 23(4):510-7. PubMed ID: 10857944
    [Abstract] [Full Text] [Related]

  • 22. Contralateral Sensory and Pain Perception Changes in Patients With Unilateral Neuropathy.
    Enax-Krumova E, Attal N, Bouhassira D, Freynhagen R, Gierthmühlen J, Hansson P, Kuehler BM, Maier C, Sachau J, Segerdahl M, Tölle T, Treede RD, Ventzel L, Baron R, Vollert J.
    Neurology; 2021 Jul 27; 97(4):e389-e402. PubMed ID: 34011572
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  • 23. Hand-arm vibration syndrome: clinical characteristics, conventional electrophysiology and quantitative sensory testing.
    Rolke R, Rolke S, Vogt T, Birklein F, Geber C, Treede RD, Letzel S, Voelter-Mahlknecht S.
    Clin Neurophysiol; 2013 Aug 27; 124(8):1680-8. PubMed ID: 23507585
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  • 24. Can self-reported pain characteristics and bedside test be used for the assessment of pain mechanisms? An analysis of results of neuropathic pain questionnaires and quantitative sensory testing.
    Gierthmühlen J, Schneider U, Seemann M, Freitag-Wolf S, Maihöfner C, Enax-Krumova EK, Azad SC, Üçeyler N, Birklein F, Maier C, Tölle T, Treede RD, Baron R.
    Pain; 2019 Sep 27; 160(9):2093-2104. PubMed ID: 31162335
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  • 25. Quantitative validation of sensory mapping in persistent postherniorrhaphy inguinal pain patients undergoing triple neurectomy.
    Bjurström MF, Álvarez R, Nicol AL, Olmstead R, Amid PK, Chen DC.
    Hernia; 2017 Apr 27; 21(2):207-214. PubMed ID: 28091815
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  • 26. Ipsilateral and contralateral sensory changes in healthy subjects after experimentally induced concomitant sensitization and hypoesthesia.
    Enax-Krumova EK, Pohl S, Westermann A, Maier C.
    BMC Neurol; 2017 Mar 23; 17(1):60. PubMed ID: 28335745
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  • 27. Continuum of sensory profiles in diabetes mellitus patients with and without neuropathy and pain.
    Raputova J, Rajdova A, Vollert J, Srotova I, Rebhorn C, Üçeyler N, Birklein F, Sommer C, Vlckova E, Bednarik J.
    Eur J Pain; 2022 Nov 23; 26(10):2198-2212. PubMed ID: 36069121
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  • 28. Quantitative sensory testing and mapping: a review of nonautomated quantitative methods for examination of the patient with neuropathic pain.
    Walk D, Sehgal N, Moeller-Bertram T, Edwards RR, Wasan A, Wallace M, Irving G, Argoff C, Backonja MM.
    Clin J Pain; 2009 Sep 23; 25(7):632-40. PubMed ID: 19692806
    [Abstract] [Full Text] [Related]

  • 29. Value of quantitative sensory testing in neurological and pain disorders: NeuPSIG consensus.
    Backonja MM, Attal N, Baron R, Bouhassira D, Drangholt M, Dyck PJ, Edwards RR, Freeman R, Gracely R, Haanpaa MH, Hansson P, Hatem SM, Krumova EK, Jensen TS, Maier C, Mick G, Rice AS, Rolke R, Treede RD, Serra J, Toelle T, Tugnoli V, Walk D, Walalce MS, Ware M, Yarnitsky D, Ziegler D.
    Pain; 2013 Sep 23; 154(9):1807-1819. PubMed ID: 23742795
    [Abstract] [Full Text] [Related]

  • 30. Pain mechanisms in complex regional pain syndrome: a systematic review and meta-analysis of quantitative sensory testing outcomes.
    Sobeeh MG, Hassan KA, da Silva AG, Youssef EF, Fayaz NA, Mohammed MM.
    J Orthop Surg Res; 2023 Jan 02; 18(1):2. PubMed ID: 36593515
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  • 31. Quantitative sensory testing profiles in children, adolescents and young adults (6-20 years) with cerebral palsy: Hints for a neuropathic genesis of pain syndromes.
    Blankenburg M, Junker J, Hirschfeld G, Michel E, Aksu F, Wager J, Zernikow B.
    Eur J Paediatr Neurol; 2018 May 02; 22(3):470-481. PubMed ID: 29337004
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  • 32. HCN3 ion channels: roles in sensory neuronal excitability and pain.
    Lainez S, Tsantoulas C, Biel M, McNaughton PA.
    J Physiol; 2019 Sep 02; 597(17):4661-4675. PubMed ID: 31290157
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  • 33. Quantitative sensory testing of patients with long lasting Patellofemoral pain syndrome.
    Jensen R, Hystad T, Kvale A, Baerheim A.
    Eur J Pain; 2007 Aug 02; 11(6):665-76. PubMed ID: 17204440
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  • 34. The relationship between sensory thresholds and mechanical hyperalgesia in nerve injury.
    Gottrup H, Nielsen J, Arendt-Nielsen L, Jensen TS.
    Pain; 1998 Apr 02; 75(2-3):321-9. PubMed ID: 9583768
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  • 35. Differences and similarities between atypical facial pain and trigeminal neuropathic pain.
    Forssell H, Tenovuo O, Silvoniemi P, Jääskeläinen SK.
    Neurology; 2007 Oct 02; 69(14):1451-9. PubMed ID: 17909158
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  • 36. Test-Retest and Inter-Examiner Reliability of a Novel Bedside Quantitative Sensory Testing Battery in Postherpetic Neuralgia Patients.
    Wasan AD, Alter BJ, Edwards RR, Argoff CE, Sehgal N, Walk D, Moeller-Bertram T, Wallace MS, Backonja M.
    J Pain; 2020 Oct 02; 21(7-8):858-868. PubMed ID: 31837446
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  • 37. Allodynia in patients with post-stroke central pain (CPSP) studied by statistical quantitative sensory testing within individuals.
    Greenspan DJ, Ohara S, Sarlani E, Lenz AF.
    Pain; 2004 Jun 02; 109(3):357-366. PubMed ID: 15157697
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  • 38. Quantitative sensory testing using DFNS protocol in Europe: an evaluation of heterogeneity across multiple centers in patients with peripheral neuropathic pain and healthy subjects.
    Vollert J, Attal N, Baron R, Freynhagen R, Haanpää M, Hansson P, Jensen TS, Rice ASC, Segerdahl M, Serra J, Sindrup SH, Tölle TR, Treede RD, Maier C.
    Pain; 2016 Mar 02; 157(3):750-758. PubMed ID: 26630440
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  • 39. Sensory correlates of pain in peripheral neuropathies.
    Ng Wing Tin S, Ciampi de Andrade D, Goujon C, Planté-Bordeneuve V, Créange A, Lefaucheur JP.
    Clin Neurophysiol; 2014 May 02; 125(5):1048-58. PubMed ID: 24176295
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  • 40. Pain ratings at the thresholds are necessary for interpretation of quantitative sensory testing.
    Kelly KG, Cook T, Backonja MM.
    Muscle Nerve; 2005 Aug 02; 32(2):179-84. PubMed ID: 15937874
    [Abstract] [Full Text] [Related]


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