2020年3月12日
Pneumothorax is a common emergency and critical disease in newborn infants that needs rapid, clear diagnosis and timely treatment. Diagnosis and treatment based on chest X-rays are associated with delayed management and radiation damage. Lung ultrasound (US) provides useful guidance for rapid, accurate diagnosis and the precise thoracentesis of pneumothorax.
Lung ultrasound is more sensitive, accurate, and reliable for diagnosing of pneumothorax than chest x-ray. Ultrasonic guide to the thoracentesis is also safer and more convenient than traditional measures. Diagnosing neonatal pneumothorax by ultrasound is easy to learn, can be performed at the bedside without radiation.
It also can be used to precisely locate the puncture point for safer thoracentesis. Before beginning the ultrasound, select a high frequency linear probe and sterilize the transducer. Select the lung ultrasound preset.
To optimize the imaging settings for an examination when no lung ultrasound preset is available, select one of the small parts presets and use the depth button to adjust the depth to 45 centimeters. Use the focus zone button to select one or two focuses and adjust the focus close to the plural line. Click the speckle reduction imaging button and select a level of two to three to reduce the speckle noise.
Turn on cross beam reduction imaging and select a level of two to improve the contrast resolution. Then, select fundamental imaging for sharper A or B lines. Next, apply an appropriate volume of warm gel to the transducer to keep it in good contact with the skin surface and place the infant in a suitable position.
To partition the lung into six regions, divide each side of the lung into three regions along the anterior axillary and posterior axillary lines, with anterior, lateral, and posterior sections. To partition the lungs into 12 regions, further divide each lung into upper and lower lung fields by the nipple connection line. For B mode scanning of the infant lung, press the 2D button and place the transducer perpendicular to the ribs.
To identify the presence of plural A and B lines, use realtime ultrasound to observe whether there is lung sliding or lung point. Then, rotate the probe 90 degrees and starting at the highest part of the thorax, perform parallel scanning. For M mode scanning, press the M button and look for the presence of a stratosphere sign or lung point, both of which signify pneumothorax.
For lung ultrasound guided thoracentesis, select an appropriate puncture needle and puncture site based upon the ultrasound readings. In an infant model, the intracostal spaces can be used as a puncture point marker, where the disappearance of lung sliding, which represents this area, can be visualized in realtime. Place the calm, quiet infant in the appropriate position, allowing the air on the affected side to rise up, and wearing sterile gloves, disinfect the puncture site.
The puncture site of this infant is located between the fourth and fifth intracostal spaces, left of the mid axillary line. Holding the infant in a suitable position, evacuate the pleural air by needle aspiration at the selected puncture point. Normal neonatal lung appears as a bamboo sign on B mode ultrasound and as a seashore sign on M mode ultrasound, while lung sliding is evident under realtime ultrasound.
Pneumothorax is diagnosed as illustrated in the flowchart. If severe pneumothorax is present, the thoracentesis must be performed immediately. In moderate pneumothorax, if thoracentesis is indicated, the needle can be inserted anywhere in the field in which lung sliding is absent.
Bile pneumothorax generally does not require a thoracentesis. However, if the primary pulmonary disease of the infant is more severe and the infant presents with clinical deterioration, then thoracentesis may be indicated. When performing this procedure, it's important to identify the presence and the degree of pneumothorax and to locate the exact puncture point.
气胸是新生儿的一种危急病症,需要迅速诊断和治疗。肺部超声提供了一种无辐射、准确的气胸诊断方法,并可指导胸腔穿刺术。
肺部超声为新生儿气胸提供了一种无辐射、可在床旁进行的诊断方法,与胸部X光相比,能够更早地发现病情并进行干预。该方法可减少诊断延迟,并为胸腔穿刺提供实时引导,从而提高重症监护环境中的安全性和精确性。该技术增强了对气体积聚识别的机制性判断信心,并指导高危婴儿群体及时做出治疗决策。
肺部超声检查适用于从机制性假设验证到临床前确证的研究连续过程,为肺部病理生理学的长期监测提供了一种无创的影像学手段。