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A Bersten

Publications and source records attributed to A Bersten.

4 recordsLinked to original sources

PEEP increases non-pulmonary microvascular fluid flux in healthy and septic sheep.

The potential for significant interaction between PEEP and the peripheral microcirculations is not as well appreciated as are its central circulatory effects. Therefore, we studied the effects of PEEP, 15 mm Hg, on microvascular fluid flux in the hindlimb of ten mature sheep. Changes in prefemoral lymph flow (QL) and in lymph to plasma [L/P] total protein (TP) ratios were measured following the application of PEEP for 2 h, before and during hyperdynamic sepsis. Sepsis was induced by cecal ligation and perforation (CLP). Although the onset of sepsis was not associated with an increase in prefemoral QL, the [L/P] ratio of iodinated 125I human serum albumin (125I-HSA) was significantly greater 72 h after CLP than during the nonseptic baseline study. Histologic examination of gastrocnemius muscle also demonstrated an increase in protein-rich interstitial edema during the septic studies. During the 2 h of PEEP, prefemoral QL increased equally (p less than 0.05) in three study periods: (1) baseline nonseptic, delta QL = +1.2 +/- 1.4 ml/h; (2) septic period 1, 24 to 48 h after CLP, delta QL = +1.3 +/- 1.2 ml/h; and, (3) septic period 2, 72 h after CLP, delta QL = 1.0 +/- 0.6 ml/h. Calculated microvascular hydrostatic pressures also rose significantly during PEEP therapy in all three study periods. We conclude that PEEP, 15 mm Hg, increased hindlimb microvascular fluid flux and may thereby increase interstitial fluid content in tissues drained by the prefemoral lymph node. These effects of PEEP were not aggravated by hyperdynamic sepsis, despite a presumed increase in systemic microvascular permeability at this time.

Animals

Acute lung injury in septic shock.

Over the past 20 years, substantial information has been gained concerning sepsis-associated ALI. Although the mortality from ARDS remains unchanged, the spectrum of disease has altered. Patients rarely die acutely from the direct sequelae of ALI, including hypoxemia, but most commonly demonstrate a protracted clinical course that eventuates in MSOF. Further, with improved resuscitation of medical and surgical emergencies, the profile of patients who develop ARDS has changed and now reflects an older and more complex patient. While the pathophysiology and mediators of tissue injury in septic ARDS is now better understood, effective therapeutic interventions have not yet resulted from early multicenter trials. It is clear from the recent multicenter trials on the effects of methylprednisolone dose that apparently useful therapies in animal models must undergo this form of investigation before widespread clinical dissemination. Without an effective and singular "golden bullet" for the treatment of the varied presentation of ARDS, it remains our contention that basic management principles of ARDS must continue to emphasize an aggressive approach to the identification and treatment of the septic focus while all efforts are concurrently exploited to reduce the potentially aggravating effects of secondary injury on microvascular function. Currently research into the diagnosis, prevention, and treatment of nosocomial pneumonia is an example of how secondary injury may be minimized in ALI. Further, it is important to recognize the potentially detrimental effects of various therapies on the microvascular membrane in ARDS.

Animals

Circulatory disturbances in multiple systems organ failure.

Circulatory disturbances in MSOF disturb normal metabolic autoregulation, the ability to continuously couple tissue oxygen delivery with oxygen need. These may occur at three levels of the circulation: the heart; the regional circulations; and the microcirculation. This article will summarize evidence demonstrating that MSOF is associated with reduced tissue oxygen delivery by virtue of changes in all three circulatory components governing the inadequacy of metabolic autoregulation in sepsis.

Cardiovascular System