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Published on: December 11, 2013
Adjustability and Adaptability Are Critical Characteristics of Pediatric Support Surfaces
Ayelet Levy1, Kara Kopplin2, Amit Gefen1
1Department of Biomedical Engineering, Faculty of Engineering, Tel Aviv University , Tel Aviv, Israel .
Insights
Newborns and children are more vulnerable to pressure ulcers (PUs) due to softer tissues and medical device risks. Air-cell mattresses offer superior protection by conforming around potential obstructions, minimizing tissue deformation.
Area of Science:
- Biomedical Engineering
- Pediatric Critical Care Medicine
Background:
- Pressure ulcers (PUs) in neonates and children differ significantly from adults in etiology and biomechanics.
- Pediatric tissues are softer, increasing susceptibility to deformation-induced injuries.
- Neonatal and pediatric intensive care units (NICUs/PICUs) present unique risks due to medical devices causing sustained soft tissue deformations.
Approach:
- Computer simulations modeled a tube trapped under a preterm neonate's arm.
- The study evaluated the adaptability of support surfaces in preventing device-related PUs.
- Simulations focused on minimizing tissue deformation caused by external objects.
Key Points:
- Air-cell-based mattress technology demonstrated superior protection against PUs in simulated scenarios.
- Air-cells locally buckle and conform around stiffer objects like wires and tubes.
- This adaptability minimizes sustained soft tissue deformations in vulnerable pediatric patients.
Conclusions:
- Current NICU/PICU mattresses require enhanced adaptability to accommodate medical devices.
- Air-cell technology shows promise for preventing device-related PUs in neonates and children.
- Innovative support surfaces are crucial for mitigating unique pediatric pressure ulcer risks.
Abstract:
Significance: Pressure ulcers (PUs) in newborns and children are remarkably different from those in adults, both in their possible causal factors and in the etiology and biomechanical pathways for tissue damage. Recent Advances: Pediatric muscle and fat tissue structures are overall softer than those of adults, making newborns and young children more susceptible to deformation-inflicted injuries at their weight-bearing soft tissues. Critical Issues: The unique medical environment of neonatal and pediatric intensive care units, which is overloaded with medical devices, wiring, tubing, electrodes, and so on, is, in fact, an extrinsic risk factor for device-related PUs, since accidently misplaced tubes, wires, or electrodes can become trapped between the skin and the mattress, causing large sustained soft tissue deformations around them. Future Directions: Mattresses that are being used in neonatal and pediatric intensive care units must be able to respond to frequent movements and changing positions and also be able to effectively adapt and conform around such misplaced tubing or wires, which might contact the body and deform soft tissues. We used computer simulations of a tube caught under a preterm neonate's arm in a supine position to illustrate what adaptability of the support surface means in such cases. Our present simulations indicate that an air-cell-based technology provides considerably better protection against PUs in such cases, as the air-cells are able to locally buckle and conform around objects that are stiffer than the pediatric tissues (e.g., wires, tubes, electrodes), which minimizes exposure to tissue deformations.
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