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Journal Abstract Search


173 related items for PubMed ID: 10427632

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  • 4. Organization of the neural switching circuitry underlying reflex micturition.
    de Groat WC, Wickens C.
    Acta Physiol (Oxf); 2013 Jan; 207(1):66-84. PubMed ID: 23033877
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  • 7. A computer model for describing the effect of urethral afferents on simulated lower urinary tract function.
    van Duin F, Rosier PF, Bemelmans BL, Debruyne FM, Wijkstra H.
    Arch Physiol Biochem; 1999 Jul; 107(3):223-35. PubMed ID: 10650352
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  • 8. Integrative control of the lower urinary tract: preclinical perspective.
    de Groat WC.
    Br J Pharmacol; 2006 Feb; 147 Suppl 2(Suppl 2):S25-40. PubMed ID: 16465182
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  • 11. The neuronal control of the lower urinary tract: A model of architecture and control mechanisms.
    Kinder MV, Bastiaanssen EH, Janknegt RA, Marani E.
    Arch Physiol Biochem; 1999 Jul; 107(3):203-22. PubMed ID: 10650351
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  • 12. Two pontine micturition centers in the cat are not interconnected directly: implications for the central organization of micturition.
    Blok BF, Holstege G.
    J Comp Neurol; 1999 Jan 11; 403(2):209-18. PubMed ID: 9886044
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  • 14. Properties of the descending limb of the spinobulbospinal micturition reflex pathway in the cat.
    Kruse MN, Mallory BS, Noto H, Roppolo JR, de Groat WC.
    Brain Res; 1991 Aug 09; 556(1):6-12. PubMed ID: 1933354
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  • 19. Frequency-dependent selection of reflexes by pudendal afferents in the cat.
    Boggs JW, Wenzel BJ, Gustafson KJ, Grill WM.
    J Physiol; 2006 Nov 15; 577(Pt 1):115-26. PubMed ID: 16945977
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