| Literature DB >> 29769547 |
Maxime Perez1,2, Bertrand Décaudin3,4, Wadih Abou Chahla5, Brigitte Nelken5, Laurent Storme6,7, Morgane Masse3,4, Christine Barthélémy3, Gilles Lebuffe3,8, Pascal Odou3,4.
Abstract
The large number of drugs administered simultaneously to neonates and children in hospital results in the formation of particles that are potentially infused. We have investigated the ability of IV in-line filters to eliminate particulate matter from multidrug infusion lines and so prevent contamination. The impact on particle occurrence of the internal volume of the IV line below the in-line filter was then evaluated. The multidrug therapy given to children was reproduced with and without in-line filtration. Three combinations with a filter were tested to vary the internal volume (V) between the filter and the catheter egress. The catheter was then connected to a dynamic particle count to evaluate the particulate matter potentially administered to children during infusion. The introduction of in-line filters led to a significant reduction in overall particulate matter, from 416,974 [208,479-880,229] to 7,551 [1,985-11,287] particles (p < 0.001). Larger particles of ≥10 and 25 µm were also significantly reduced. Adding an extension set to the egress of the in-line filter (V = 1.7 mL) caused a significant increase in particulate contamination for both. This study showed that in-line filtration is an effective tool in preventing particle administration to patients. Their position in the infusion in-line is therefore important because of its impact on internal volume and drug particle formation.Entities:
Mesh:
Substances:
Year: 2018 PMID: 29769547 PMCID: PMC5955886 DOI: 10.1038/s41598-018-25602-6
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Visible precipitate observed at the egress of the 3-way stopcock of the IV infusion line due to physical drug-drug incompatibility. It was noted that drug flocculates are not visible to the human eye at the catheter site.
Comparison of particulate matter between infusion combinations with and without IV in-line filtration.
| Infusion combinations | Combination 1 “Without filter and with CVC” | Combination 2 “With filter and CVC” | Adjusted |
|---|---|---|---|
| Total number of particles at T24 | 416,974 (208,479–880,229) | 7,551 (1,985–11,287) | <0.0001 |
| Particulate matter ≥10 µm | 29,340 (9,921–51,097) | 43 (7–150) | <0.0001 |
| Particulate matter ≥25 µm | 3,458 (1,201–6,927) | 3 (0–11) | <0.0001 |
The total number of particles was assessed after 24-hour multidrug administration (N = 10).
Figure 2Number of particles measured at the egress of the catheter without and with the in-line filter: overall particulate matter (Fig. 3A), particles ≥10 µm (Fig. 3B) and 25 µm (Fig. 3C). The Y-axis is plotted on a logarithmic scale for all histograms.
Figure 3Comparison of quantified particulate matter between the 3 combinations with in-line filtration, focusing on overall particulate matter (Fig. 4A), particles ≥10 µm (Fig. 4B) and 25 µm (Fig. 4C). The Y-axis is plotted on a logarithmic scale for all histograms.
Comparison of particulate matter in all infusion combinations including the addition of IV in-line filtration.
| Infusion set combination* | Particulate contamination analysis | Mean difference | 95% confidence interval of difference | Adjusted |
|---|---|---|---|---|
| Combination 2 “with filter and CVC” | Overall particulate matter | 6,887 | −6,761 to 20,536 | 0.4343 |
| Particulate matter size ≥10 µm | 29 | −1,240 to 1,298 | 0.9982 | |
| Particulate matter size ≥25 µm | 2 | −11 to 14 | 0.9495 | |
| Combination 3 “with filter + extension line” | Overall particulate matter | 43,442 | 29,793 to 57,090 | <0.0001 |
| Particulate matter size ≥10 µm | −3,513 | −4,782 to −2,244 | <0.0001 | |
| Particulate matter size ≥25 µm | 22 | 10 to 34 | 0.0004 | |
| Combination 2 “with filter and CVC” | Overall particulate matter | −36,554 | −50,203 to −22,906 | <0.0001 |
| Particulate matter size ≥10 µm | 3,513 | 2,244 to 4,782 | <0.0001 | |
| Particulate matter size ≥25 µm | −20 | −33 to −8 | 0.0008 |
*Infusion set combinations are represented by the volume V, corresponding to the internal volume of the IV tubing between the in-line filter and the Qicpic particle counter, i.e. V = 0.8 mL, 1.7 mL and 0 mL for combinations 2, 3 and 4, respectively.
Figure 4Trend in particulate contamination below the in-line filter over a 24-hour period. Peaks observed in the figures are based on discontinuous administrations of drugs during the pediatric multidrug protocol.
Description of tested drugs.
| Drug | Dosage (per 24 h) | Solvent for reconstitution/dilution | Final concentration (mg/mL) | Infusion flow rate (mL/h) | Time of infusion (duration) |
|---|---|---|---|---|---|
| Vancomycin HCl (Sandoz) | 2 g | Water for injection | 41.67 | 2 | Over 24 h |
| Piperacillin Na – Tazobactam (Mylan) | 14 g | Water for injection/5% glucose | 116.67 | 5 | Over 24 h |
| Cyclosporin-A (Sandimmun, Novartis) | 60 mg | Saline solution | 1.25 | 2 | Over 24 h |
| Acetaminophen (BBraun) | 600 mg | Water for injection | 10.00 | 120 | T0 + 2 h (30 min) |
| Omeprazole (Mylan) | 40 mg | Saline solution | 2.00 | 20 | T0 + 5.5 h (30 min) |
| Acyclovir* (Zovirax, GlaxoSmithKline) | 400 mg | Water for injection/saline solution | 8.00 | 80 | T0 + 16 h (1 h) |
|
| — | 40 | Over 24 h | ||
| Glucose | 5 g/dL | 0.5 | |||
| Saline solution | 3 g/L | 0.03 | |||
| Potassium chloride | 2 g/L | 0.02 | |||
| Magnesium chloride | 3 g/L | 0.03 |
*Saline rinsing was performed before (11.25 min) and after (11.25 min) the infusion of acyclovir (2 × 15 mL) at the same infusion flow rate as the drug (80 mL/h).
Figure 5Schematic representation of the infusion line used in the pediatric department. The carrier fluid (i.e. 5% dextrose with electrolytes) was infused through a first 4-stopcock set dedicated to discontinuous drug infusions (acyclovir, acetaminophen and omeprazole). The infusion set was connected to a 150-cm extension line, connected to a second 4-stopcock set for continuous drug infusions (i.e. piperacillin/tazobactam, vancomycin and cyclosporin). A 350-cm extension line was then added to the infusion line (V = 11.00 mL). The infusion line was finally connected to the Qicpic instrument, with or without the central venous catheter (CVC). For all experiments, the infusion flow rate of the carrier fluid was 40 mL.h−1.