Vasopressin: Mechanisms of action on the vasculature in health and in septic shock

Вазопрессин: механизмы действия на сосудистую систему в норме и при септическом шоке
Lucinda Barrett, Mervyn Singer, Lucie H. Clapp
2006-11-28

nitric oxide signalingseptic shockvascular smooth muscle tonevasopressinvasopressin receptors
BACKGROUND: Vasopressin is essential for cardiovascular homeostasis, acting via the kidney to regulate water resorption, on the vasculature to regulate smooth muscle tone, and as a central neurotransmitter, modulating brainstem autonomic function. Although it is released in response to stress or shock states, a relative deficiency of vasopressin has been found in prolonged vasodilatory shock, such as is seen in severe sepsis. In this circumstance, exogenous vasopressin has marked vasopressor effects, even at doses that would not affect blood pressure in healthy individuals. These two findings provide the rationale for the use of vasopressin in the treatment of septic shock. However, despite considerable research attention, the mechanisms for vasopressin deficiency and hypersensitivity in vasodilatory shock remain unclear. OBJECTIVE: To summarize vasopressin's synthesis, physiologic roles, and regulation and then review the literature describing its vascular receptors and downstream signaling pathways. A discussion of potential mechanisms underlying vasopressin hypersensitivity in septic shock follows, with reference to relevant clinical, in vivo, and in vitro experimental evidence. DATA SOURCE: Search of the PubMed database (keywords: vasopressin and receptors and/or sepsis or septic shock) for articles published in English before May 2006 and manual review of article bibliographies. DATA SYNTHESIS AND CONCLUSIONS: The pathophysiologic mechanism underlying vasopressin hypersensitivity in septic shock is probably multifactorial. It is doubtful that this phenomenon is merely the consequence of replacing a deficiency. Changes in vascular receptors or their signaling and/or interactions between vasopressin, nitric oxide, and adenosine triphosphate-dependent potassium channels are likely to be relevant. Further translational research is required to improve our understanding and direct appropriate educated clinical use of vasopressin.
1
Alterations in vascular vasopressin receptors or downstream signaling, together with interactions involving nitric oxide and ATP-dependent potassium channels, may contribute to hypersensitivity.
2
Prolonged vasodilatory shock in severe sepsis is associated with relative vasopressin deficiency, while exogenous vasopressin produces strong vasopressor effects at otherwise ineffective doses.
3
The mechanisms of vasopressin deficiency and hypersensitivity remain uncertain, requiring further translational research to guide clinical use.
4
Vasopressin hypersensitivity during septic shock is unlikely to result solely from correcting hormone deficiency.
5
Vasopressin regulates cardiovascular homeostasis through renal water resorption, vascular smooth-muscle tone, and central autonomic neurotransmission.

Vasopressin action on the vasculature in health and septic shock

Vascular receptor regulation and downstream signaling mechanisms underlying vasopressin-mediated smooth muscle tone, vasopressor effects, and hypersensitivity in septic shock

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2006-11-28
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Lucinda Barrett
Mervyn Singer
Lucie H. Clapp
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