| Literature DB >> 26215805 |
Klaus Pfurtscheller1, Stefan Ring, Elisabeth Beran, Erich Sorantin, Joachim Zobel, David Ganster, Alexander Avian, Gerfried Zobel.
Abstract
BACKGROUND: Lung failure after acute lung injury remains a challenge in different clinical settings. Various interventions for restoration of gas exchange have been investigated. Recruitment of collapsed alveoli by positive end expiratory pressure (PEEP) titration and optimization of ventilation-perfusion ratio by prone positioning have been extensively described in animal and clinical trials. This animal study was conducted to investigate the effects of PEEP and positioning by means of advanced respiratory monitoring including gas exchange, respiratory mechanics, volumetric capnography and electrical impedance tomography.Entities:
Year: 2015 PMID: 26215805 PMCID: PMC4513029 DOI: 10.1186/s40635-014-0038-6
Source DB: PubMed Journal: Intensive Care Med Exp ISSN: 2197-425X
Figure 1Schema of study protocol. Twelve animals were studied with measurement points at BASELINE, after positioning in supine or prone position (ALI_SP/PP) and at different incremental (PEEP 10, 20, 30) and decremental PEEP levels (PEEP 20d, 10d). Time frame and ventilator settings are illustrated on the x-axis.
Hemodynamic and ventilatory variables, data of gas exchange, dead space and EIT during PEEP trial
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| HR, beats/min | SP | 93 (76 to 122) | 135 (130 to 145) | 118 (115 to 124) | 124 (122 to 139) | 153 (124 to 160) | 143 (137 to 150) | 124 (122 to 157) |
| PP | 92 (90 to 106) | 117 (116 to 129) | 121 (110 to 147) | 126 (120 to 157) | 140 (135 to 184) | 146 (128 to 192) | 129 (109 to 184) | |
| MAP, mmHg | SP | 80 (67 to 84) | 101 (85 to 113) | 76 (32 to 108) | 89 (79 to 107) | 78 (67 to 82) | 96 (90 to 110) | 107 (95 to 121) |
| PP | 95 (72 to 107) | 81 (63 to 89) | 87 (77 to 99) | 72 (60 to 83) | 62 (55 to 67) | 85 (70 to 95) | 100 (90 to 108) | |
| RR, breaths/min | SP | 26 (26 to 28) | 31 (30 to 34) | 34 (34 to 35) | 34 (34 to 35) | 34 (34 to 35) | 34 (34 to 35) | 34 (34 to 35) |
| PP | 26 (26 to 28) | 33 (26 to 34) | 33 (30 to 34) | 33 (30 to 34) | 33 (30 to 34) | 33 (30 to 34) | 33 (30 to 34) | |
| PIP, cm H2O | SP | 16 (14 to 19) | 28 (26 to 29) | 28 (26 to 28) | 34 (34 to 35) | 49 (47 to 52) | 30 (30 to 31) | 25 (24 to 27) |
| PP | 19 (17 to 20) | 30 (25 to 32) | 28 (24 to 32) | 34 (32 to 37) | 52 (51 to 57) | 31 (30 to 33) | 21 (19 to 29) | |
| PAW, mbar | SP | 9 (8.3 to 9) | 16 (14 to 17) | 16 (16 to 17) | 26 (25 to 26) | 37 (36 to 38) | 24 (24 to 25) | 16 (16 to 18) |
| PP | 9 (9.1 to 9.6) | 14 (13 to 15) | 17 (15 to 19) | 26 (25 to 27) | 39 (37 to 41) | 24 (24 to 25) | 14 (14 to 18) | |
| Vte, ml | SP | 286 (277 to 360) | 212 (191 to 238) | 201 (191 to 211) | 202 (183 to 239) | 203 (182 to 234) | 201 (180 to 235) | 201 (183 to 235) |
| PP | 279 (275 to 324) | 213 (197 to 256) | 207 (187 to 251) | 212 (184 to 254) | 208 (192 to 233) | 207 (190 to 249) | 209 (190 to 251) | |
| PaCO2, Torr | SP | 39 (36 to 42) | 73 (62 to 82) | 65 (61 to 68)* | 65 (56 to 71)* | 60 (55 to 69) | 59 (56 to 64)* | 67 (66 to 79)* |
| PP | 36 (35 to 42) | 60 (56 to 63) | 52 (50 to 60) | 49 (45 to 53) | 53 (45 to 55) | 49 (47 to 52) | 52 (48 to 61) | |
| etCO2, Torr | SP | 40 (37 to 44) | 43 (39 to 51) | 49 (46 to 52) | 51 (49 to 59)* | 55 (50 to 60) | 57 (52 to 63) | 43 (39 to 50) |
| PP | 40 (37 to 44) | 49 (46 to 52) | 46 (46 to 48) | 46 (44 to 49) | 49 (46 to 53) | 50 (47 to 56) | 47 (41 to 50) | |
| PaO2/FiO2 | SP | 375 (333 to 450) | 48 (43 to 52)* | 69 (61 to 82)* | 332 (252 to 434) | 427 (387 to 445) | 433 (348 to 467) | 64 (47 to 72)** |
| PP | 400 (333 to 500) | 88 (69 to 122) | 248 (131 to 390) | 438 (353 to 476) | 458 (431 to 516) | 442 (393 to 463) | 310 (259 to 406) | |
| Cdyn, ml/mbar | SP | 28.4 (25.6 to 29.8) | 13.3 (8.4 to 14.2) | 13.4 (11.9 to 14.6) | 17.4 (15.7 to 18.9) | 12.6 (9.2 to 13.5) | 21.4 (20.9 to 25.1) | 14.5 (13.6 to 15.1) |
| PP | 24.9 (19.8 to 25.5) | 9.0 (7.5 to 10.5) | 13.2 (10.2 to 16.6) | 16.6 (13.7 to 19.1) | 9.8 (8.8 to 12.4) | 20.5 (18.4 to 25.5) | 19.4 (15.0 to 24.7) | |
| Vdaw/Vte | SP | 0.40 (0.39 to 0.41) | 0.49 (0.47 to 0.54) | 0.54 (0.50 to 0.55) | 0.59 (0.59 to 0.62) | 0.65 (0.63 to 0.67) | 0.56 (0.55 to 0.57) | 0.52 (0.44 to 0.54) |
| PP | 0.40 (0.35 to 0.42) | 0.47 (0.46 to 0.50) | 0.47 (0.43 to 0.51) | 0.57 (0.51 to 0.60) | 0.63 (0.60 to 0.64) | 0.56 (0.53 to 0.59) | 0.47 (0.44 to 0.51) | |
| Vdalv/Vte | SP | 0.16 (0.14 to 0.17) | 0.31 (0.29 to 0.34) | 0.28 (0.27 to 0.29) | 0.23 (0.22 to 0.24) | 0.23 (0.20 to 0.24) | 0.20 (0.17 to 0.21) | 0.30 (0.28 to 0.33)* |
| PP | 0.13 (0.12 to 0.18) | 0.24 (0.20 to 0.26) | 0.23 (0.20 to 0.28) | 0.19 (0.16 to 0.24) | 0.21 (0.18 to 0.22) | 0.14 (0.11 to 0.20) | 0.20 (0.15 to 0.27) | |
| Vdphys/Vte | SP | 0.54 (0.53 to 0.58) | 0.79 (0.76 to 0.86) | 0.82 (0.80 to 0.83) | 0.81 (0.79 to 0.86) | 0.89 (0.87 to 0.93) | 0.74 (0.70 to 0.78) | 0.83 (0.75 to 0.85)* |
| PP | 0.51 (0.49 to 0.62) | 0.70 (0.66 to 0.81) | 0.70 (0.63 to 0.80) | 0.76 (0.74 to 0.79) | 0.84 (0.82 to 0.88) | 0.74 (0.67 to 0.76) | 0.69 (0.59 to 0.75) | |
| ROI 1–2, non-dep | SP | 24.0 (23.0 to 25.0) | 28.5 (24.5 to 32.5) | 25.5 (24.5 to 30.0) | 18.0 (16.0 to 21.0)*** | 21.5 (19.5 to 22.5)*** | 18.8 (17.0 to 21.0)*** | 25.0 (24.0 to 27.5) |
| ROI 3–4, dep | SP | 23.8 (22.5 to 25.5) | 20.0 (15.5 to 24.0) | 22.5 (18.0 to 24.0) | 30.5 (28.0 to 33.0) | 28.0 (27.0 to 29.0) | 30.8 (29.0 to 32.5) | 23.5 (21.5 to 24.5) |
| ROI 3–4, non-dep | PP | 22.5 (21.5 to 23.5) | 39.0 (30.0 to 40.5)*** | 35.8 (32.5 to 37.0)*** | 26.3 (24.0 to 27.0) | 24.8 (23.5 to 26.5) | 23.3 (23.0 to 24.5) | 32.3 (29.5 to 33.5)*** |
| ROI 1–2, dep | PP | 25.0 (24.0 to 26.5) | 10.0 (8.5 to 19.0) | 13.0 (11.5 to 16.5) | 22.5 (22.0 to 25.0) | 24.3 (22.5 to 25.0) | 26.0 (24.5 to 26.0) | 16.5 (16.0 to 19.5) |
HR, heart rate; MAP, mean arterial pressure; RR, respiratory rate; PIP, peak inspiratory pressure; PAW, mean airway pressure; Vte, expiratory tidal volume; PaCO2: partial pressure of arterial carbon dioxide; etCO2, end-tidal partial pressure of carbon dioxide; PaO2/FiO2, partial pressure of arterial oxygen/inspiratory fraction of oxygen; Cdyn, dynamic compliance; Vdaw/Vte, airway dead-space fraction; Vdalv/Vte, alveolar dead-space fraction; Vdphys/Vte, physiologic dead-space fraction; ROI, region of interest; non-dep, non-dependent; dep, dependent. Values are medians and interquartile range (IQR). *Significant group differences p < 0.05; **significant group differences p < 0.01; ***significant inner-group differences p < 0.05.
Figure 2Advanced respiratory monitoring during the PEEP trial in a porcine ALI model. Illustrated are the changes of paCO2 (A) and PaO2/FiO2 (B) reflecting ventilation and oxygenation, respectively, and dynamic lung compliance, Cdyn (C). Dead space (DS) is presented as fractions of expiratory tidal volume; illustrated are airway DS (D), physiologic DS (E) and alveolar DS (F). Measurement points are before ALI induction at BASELINE, after randomly positioning in either supine or prone position at ALI_SP/PP; at incremental PEEP 10, 20 and 30; and at decremental PEEP 20d and 10d. Full lines represent supine and broken lines prone position. Values are medians and interquartile range (IQR); *significant group differences p < 0.05; **significant group differences p < 0.01.
Figure 3Electrical impedance tomography reflecting regional ventilation distribution of dependent and non-dependent lung regions during PEEP trial. Illustrated are the supine group in (A) and prone group in (B). Dotted lines represent the non-dependent and broken lines the dependent lung regions. In (A), significant inner-group differences between non-dependent and dependent regions are marked by an asterisk at PEEP 20, 30 and 20d reflecting inhomogenous ventilation distribution. In the prone group (B), ventilation distribution is significantly different within the group at ALI_SP/PP and PEEP 10 and 10d, whereas it is homogenized at PEEP 20, 30 and 20d. *Significant inner-group differences p < 0.05.