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Zinc deficiency primes the lung for ventilator-induced injury
Francis Boudreault, Miguel Pinilla-Vera, Joshua A. Englert, Alvin T. Kho, Colleen Isabelle, Antonio J. Arciniegas, Diana Barragan-Bradford, Carolina Quintana, Diana Amador-Munoz, Jiazhen Guan, Kyoung Moo Choi, MICU Registry, Lynette Sholl, Shelley Hurwitz, Daniel J. Tschumperlin, Rebecca M. Baron
Francis Boudreault, Miguel Pinilla-Vera, Joshua A. Englert, Alvin T. Kho, Colleen Isabelle, Antonio J. Arciniegas, Diana Barragan-Bradford, Carolina Quintana, Diana Amador-Munoz, Jiazhen Guan, Kyoung Moo Choi, MICU Registry, Lynette Sholl, Shelley Hurwitz, Daniel J. Tschumperlin, Rebecca M. Baron
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Research Article Inflammation Pulmonology

Zinc deficiency primes the lung for ventilator-induced injury

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Abstract

Mechanical ventilation is necessary to support patients with acute lung injury, but also exacerbates injury through mechanical stress–activated signaling pathways. We show that stretch applied to cultured human cells, and to mouse lungs in vivo, induces robust expression of metallothionein, a potent antioxidant and cytoprotective molecule critical for cellular zinc homeostasis. Furthermore, genetic deficiency of murine metallothionein genes exacerbated lung injury caused by high tidal volume mechanical ventilation, identifying an adaptive role for these genes in limiting lung injury. Stretch induction of metallothionein required zinc and the zinc-binding transcription factor MTF1. We further show that mouse dietary zinc deficiency potentiates ventilator-induced lung injury, and that plasma zinc levels are significantly reduced in human patients who go on to develop acute respiratory distress syndrome (ARDS) compared with healthy and non-ARDS intensive care unit (ICU) controls, as well as with other ICU patients without ARDS. Taken together, our findings identify a potentially novel adaptive response of the lung to stretch and a critical role for zinc in defining the lung’s tolerance for mechanical ventilation. These results demonstrate that failure of stretch-adaptive responses play an important role in exacerbating mechanical ventilator–induced lung injury, and identify zinc and metallothionein as targets for lung-protective interventions in patients requiring mechanical ventilation.

Authors

Francis Boudreault, Miguel Pinilla-Vera, Joshua A. Englert, Alvin T. Kho, Colleen Isabelle, Antonio J. Arciniegas, Diana Barragan-Bradford, Carolina Quintana, Diana Amador-Munoz, Jiazhen Guan, Kyoung Moo Choi, MICU Registry, Lynette Sholl, Shelley Hurwitz, Daniel J. Tschumperlin, Rebecca M. Baron

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Figure 7

Zinc levels are reduced in mice subjected to ventilator-induced lung injury (VILI) and in human plasma collected from acute respiratory distress syndrome (ARDS) subjects.

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Zinc levels are reduced in mice subjected to ventilator-induced lung inj...
(A) Plasma zinc levels were measured in mice at baseline and after 8 hours of VILI (15 ml/kg) (n = 4–6/group) using a commercially available colorimetric zinc assay kit. *P < 0.01 by 2-tailed Mann-Whitney U test; data presented as mean ± SEM. (B) Plasma zinc levels were measured from intensive care unit (ICU) subjects at admission who went on to develop ARDS (n = 21, all subjects mechanically ventilated), sepsis (n = 62), systemic inflammatory response syndrome (SIRS, n = 26), and control subjects (n = 3 ICU controls and 4 healthy subjects). Blood was collected in EDTA-free tubes, and zinc plasma levels were assayed using a commercially available colorimetric zinc assay kit. *P < 0.001 versus control by 1-way ANOVA with Newman-Keuls post-hoc test; data presented as mean ± SEM.

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