# Situation: A 24-year-old tall, thin man who smokes arrives with sudden right-sided chest pain and breathlessness. He has no known lung disease and no history of injury. A chest X-ray shows a large right pneumothorax, and a chest tube is planned. While preparing for the chest tube, the nurse gives supplemental oxygen. Apart from treating hypoxemia, how does oxygen help the pneumothorax resolve?

> source: MyMerci (mymerci.kr)  
> url: https://mymerci.kr/pages/nclex_q.php?qn_id=630216  
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> subject: Nursing Practice V — Care of Clients with Maladaptive Patterns of Behavior; Care of Clients with Life-Threatening Conditions, Acute Multi-Organ Problems, High Acuity and Emergency Situations

## 문제

Situation: A 24-year-old tall, thin man who smokes arrives with sudden right-sided chest pain and breathlessness. He has no known lung disease and no history of injury. A chest X-ray shows a large right pneumothorax, and a chest tube is planned.

While preparing for the chest tube, the nurse gives supplemental oxygen. Apart from treating hypoxemia, how does oxygen help the pneumothorax resolve?

## 보기

1. It dilates the bronchioles, so the collapsed lung reinflates
2. It slows breathing, giving the ruptured bleb time to seal
3. It lowers blood nitrogen, so pleural gas is absorbed faster **✔ 정답**
4. It raises pleural pressure, pushing the air back out through the leak

**정답: 3**

## 해설

Pleural air is mostly nitrogen. Breathing supplemental oxygen lowers the nitrogen content of the blood, which increases the gradient for nitrogen to move from the pleural space into the blood, so the pleural air is reabsorbed faster.

## 심화 해설

Why oxygen speeds pneumothorax resolution

A spontaneous pneumothorax traps gas in the pleural space. That trapped gas is not just “air” in a general sense — its dominant component is nitrogen, which normally makes up about 79% of atmospheric air. Oxygen makes up only about 21%, and carbon dioxide is negligible. Because nitrogen is the most abundant gas, it is also the slowest to be reabsorbed across the pleural membrane.

When a patient breathes room air, the partial pressure of nitrogen in venous blood is already close to that in the pleural space, so the diffusion gradient driving nitrogen out of the pleura is small. Pleural air therefore resolves slowly — often only about 1.25% to 2.2% of the pleural gas volume per day under room-air conditions.

Administering high-flow supplemental oxygen changes this physiology. As the inspired oxygen concentration rises, nitrogen is progressively washed out of the alveoli and the blood. The partial pressure of nitrogen in the pulmonary capillary blood falls toward zero. This creates a much larger nitrogen gradient between the pleural space and the blood. The pleural nitrogen now diffuses into the bloodstream much faster, accelerating reabsorption of the pneumothorax. Reported absorption rates with oxygen therapy can increase roughly 4-fold compared with room air, although the exact figure varies with the inspired oxygen fraction and the patient’s perfusion status.

Oxygen does not mechanically reinflate the lung by dilating bronchioles, does not slow respiratory drive to seal a bleb, and does not raise pleural pressure to push gas back out through the leak. Its benefit is purely a matter of diffusion physiology: lowering blood nitrogen increases the gradient for pleural nitrogen absorption.

Watch out! The key gas here is nitrogen, not oxygen. The therapeutic effect comes from removing nitrogen from the blood, not from adding oxygen to the pleural space.

Key point! Supplemental oxygen accelerates pneumothorax resolution by increasing the nitrogen diffusion gradient from the pleural space into the blood. This mechanism is distinct from correcting hypoxemia.

In the context of conservative management, oxygen therapy is part of a symptom-based, observation-oriented approach for stable primary spontaneous pneumothorax. The review by Vyas et al. notes that conservative strategies — including observation and oxygen therapy — can provide outcomes comparable to invasive procedures in stable primary spontaneous pneumothorax, with fewer complications and shorter hospital stays [1]. However, this patient has a large pneumothorax and is planned for a chest tube, so oxygen is an adjunct while definitive drainage is prepared, not a replacement for the intervention.

| Mechanism | Effect on pleural air | Primary gas involved |
| --- | --- | --- |
| Room air breathing | Slow reabsorption (small nitrogen gradient) | Nitrogen |
| Supplemental oxygen | Faster reabsorption (large nitrogen gradient) | Nitrogen washout from blood |
| Bronchodilation | No direct effect on trapped pleural gas | Not applicable |
| Raising pleural pressure | Does not push gas out through the leak | Not applicable |

The correct option is therefore the one describing a reduction in blood nitrogen, which increases the gradient for pleural gas absorption.References (research sources)

- [1]Conservative management of spontaneous pneumothorax: A review of evidence and guidelines.GuidelineK Vyas Y, Mansuriya J, Patel KA, Jani YB, Anushika. (2025) · DOI: 10.6026/973206300210471

## 임상 시나리오

Oxygen for Pneumothorax ResolutionWhy high-flow O2 speeds pleural air absorption
Pleural air is mostly nitrogen (about 79%). On room air, absorption is slow—roughly 1.25–2.2% of pleural gas volume per day—because blood nitrogen is already near equilibrium with pleural gas.

High-flow supplemental oxygen washes nitrogen out of alveoli and blood, lowering blood nitrogen partial pressure toward zero. This widens the nitrogen gradient between pleural space and blood, accelerating gas reabsorption up to 4-fold.

CautionOxygen does not mechanically reinflate the lung or push air out through the leak. Chest tube placement remains the definitive treatment for a large pneumothorax; oxygen is an adjunct to speed resolution.

## 핵심 개념

- **Pneumothorax** — Presence of air in the pleural space causing lung collapse
- **Nitrogen gradient** — Difference in nitrogen partial pressure between pleural space and blood driving gas absorption
- **Pleural gas absorption** — Process by which trapped pleural air diffuses into the bloodstream
- **Supplemental oxygen** — High inspired oxygen concentration that washes out blood nitrogen to accelerate pneumothorax resolution
- **Spontaneous pneumothorax** — Pneumothorax occurring without trauma, often in tall thin young smokers

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