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High Flow Tracheal Oxygen for Weaning of Tracheostomized Patients (HFTO-WEAN)

2026年5月29日 更新者:Zainab Alduhailib、King Faisal Specialist Hospital & Research Center

High Flow Tracheal Oxygen for Weaning of Tracheostomized Mechanically Ventilated Patients: A Pilot Randomised Controlled Trial (HFTO WEAN Trial)

In this pilot randomized controlled trial (RCT), the investigators aim to explore the feasibility of conducting a powered RCT that examines the efficacy and safety of high flow tracheal oxygen (HFTO) in weaning critically ill tracheostomy patients from mechanical ventilation.

Objective of the study

  1. To assess the feasibility of conducting a larger RCT as primary objective.
  2. To explore the effect of using HFTO in mechanically ventilated tracheostomized critically ill patients on ventilator-free days (VFD) compared to standard of care method using tracheal mask (TM) as secondary objective.

調査の概要

状態

募集

条件

介入・治療

詳細な説明

Background High Flow Nasal Cannula (HFNC) use has increased over the past decade in critically ill patients with acute hypoxic respiratory failure. HFNC involves the delivery of oxygen at a higher flow reaching up to 60 L/min, which is heated and humidified to enhance tolerability of the device. HFNC improves oxygenation and decrease work of breathing through several mechanisms including: (1) improving high oxygen delivery through decrease in the inspired fraction of inspired oxygen (FiO2) dilution, (2) decreasing the patient's work of breathing through matching of the patient's needed flow and the minimal amount of positive end-expiratory pressure (PEEP) exerted on the upper airway and alveoli caused by the constant flow, which could help in alveoli recruitment and improvement in oxygenation (up to 5 cm of end-expiratory pressure), (3) anatomical dead space washout leading to washout of carbon dioxide (CO2) and thus decreases the work of breathing by the continuous flow to the pharynx and upper part of the trachea.

Evidence on HFNC in critically ill patients Several randomized controlled trials (RCT) have assessed the role of HFNC in critically ill patients for different indications. In a systematic review of 9 RCTs, HFNC compared to conventional oxygen therapy, reduced the need for intubation (relative risk [RR] 0.85, 95% confidence interval [CI] 0.74-0.99, low certainty) or escalation of oxygen therapy to non-invasive positive pressure ventilation (NIPPV) (RR 0.71, 95% CI 0.51-0.98, low certainty) for patients with acute hypoxic respiratory failure without an increase in mortality. In addition, compared to NIPPV in acute hypoxic respiratory failure, HFNC showed similar risk for intubation (RR, 0.93; 95% CI 0.69-1.27, low certainty) without survival benefit. These results prompted a strong recommendation (moderate certainty) for the use of HFNC over conventional oxygen therapy in acute hypoxic respiratory failure from the European Society of Intensive Care Medicine. The use of HFNC was expanded to the peri-extubation period for patients at high-risk of extubation failure [5]. The high-risk population was defined as: age > 65, congestive heart failure, moderate-severe chronic obstructive pulmonary disease (COPD), APACHE II score > 12, body mass index > 30 Kg/m2, airway patency or secretion problems, difficulty weaning, ≥2 comorbidities, or duration of invasive mechanical ventilation >7 days. Evidence from four RCTs showed that HFNC use post-extubation reduced the need for intubation when compared to conventional oxygen therapy (RR 0.46, 95% CI 0.30-0.70), and it resulted in little to no difference in intubation rates when compared to NIPPV (RR 1.16, 95% CI 0.86-1.57). The utilization of HFNC for hypoxic respiratory failure has been extensively studied, but not for hypercapnic respiratory failure. Few observational studies and RCTs assessed the safety of HFNC in hypercapnic respiratory failure. When comparing HFNC to NIPPV for patients with hypercapnic respiratory failure, a systematic review of five RCTs showed no difference in intubation rates (odds ratio [OR]= 0.92, 95% CI 0.45-1.88) and mortality (OR 1.33, 95% CI 0.68-2.60). Similar results were obtained for patients with COPD. However, the evidence is limited by imprecision and heterogeneity and a conclusion about the safety of such an approach needs to be studied further.

Evidence of high-flow tracheal oxygen (HFTO) in tracheostomized patients Recently, HFTO has been used for weaning mechanical ventilation in tracheostomy patients at high risk of weaning failure. In a single-arm cross-over study, 14 mechanically ventilated patients through tracheostomy with prolonged weaning after more than 7 days from the first separation attempt according to Weaning according to a New Definition (WIND) study criteria were enrolled [16]. After a successful spontaneous breathing trial (SBT), the patients were placed on HFTO for 2 hours interrupted by 1-hour of conventional oxygen therapy through T-Piece to assess the physiological effect of HFTO. The study showed a lack of HFTO effect on the neuro-respiratory drive using electrical diaphragmatic activity measurement, work of breathing, and the ratio of peripheral arterial oxygen saturation to the inspired fraction of oxygen (PaO2:FiO2) ratio in comparison to conventional oxygen therapy. This study might suggest that HFTO works differently from HFNC. In contrast, another study of 26 tracheostomized patients who were weaned from mechanical ventilation and spontaneously breathing on conventional oxygen therapy for at least 24 hours, were randomly placed on different gas flow rates through HFTO for 30 minutes (10L /min, 30 L/min, or 50 L/min) with no washout period [17]. Compared to conventional oxygen therapy, HFTO improved the PaO2:FiO2 ratio but the CO2 remained stable. In addition, HFTO slightly reduced the respiratory rate and the negative swings in airway pressures during inspiration, and increase the mean and peak expiratory pressures at flows of 50 L/min. At a lower flow of 30 L/min, conventional oxygen therapy was similar to HFTO with regard to oxygenation and tracheal pressure. Of interest, although there was an increment in the measured tracheal expiratory pressure, it was lower than the pressures measured during HFNC. This could be explained by the limited resistance in tracheostomized patients in comparison to HFNC where the upper airway creates resistance and a higher expiratory pressure. A crossover RCT (n=20), in which tracheostomized patients were randomized to either HFTO at 50 L/min or T-piece and data was collected at 5 minutes and 15 minutes of each intervention. At 15 minutes, the patients on HFTO showed higher ratio of peripheral arterial oxygen saturation to the inspired fraction of oxygen (SPO2: FiO2) ratio and mean airway pressures with lower FiO2 requirements. However, respiratory rate and CO2 remained the same. Recently, a few case reports were also published about the utilization of HFTO for successful weaning, which showed that higher positive mean airway and tracheal pressures, improved PaO2: FiO2 ratio, and reduced inspiratory effort. Furthermore, a recent RCT (n=330) of tracheostomized critically ill patients who were weaned from mechanical ventilation and deemed ready for decannulation were randomized to either continuous HFTO with tracheostomy capping or capping with intermittent HFTO for 24 hours. Continuous HFTO utilization during the capping procedure was associated with shorter time to decannulation (median 6 [interquartile range (IQR) 5-7] days vs. 13 [IQR, 11-14] days) without decannulation failure.

Knowledge gap and aims of this study The evidence on the efficacy of using HFTO in patients with tracheostomy is limited. Such an approach might be costly due to the use of HFTO set and the need for a special interface to fit the HFTO through tracheostomy. If the use of HFTO proves to a safe and advantageous strategy, then the timing, population, dose, and average duration of weaning need to be addressed in controlled trials. In this pilot RCT, the investigators aim to explore the feasibility of conducting a powered RCT that examines the efficacy and safety of HFTO in weaning critically ill tracheostomy patients from mechanical ventilation.

研究の種類

介入

入学 (推定)

88

段階

  • 適用できない

連絡先と場所

このセクションには、調査を実施する担当者の連絡先の詳細と、この調査が実施されている場所に関する情報が記載されています。

研究連絡先

  • 名前:Zainab Al Duhailib, MBBS, MSc, EDIC
  • 電話番号:42817 00966112162919
  • メール:zainajd@gmail.com

研究連絡先のバックアップ

研究場所

      • Riyadh、サウジアラビア
        • 募集
        • King Faisal Specialist Hospital and Research Centre
        • コンタクト:

参加基準

研究者は、適格基準と呼ばれる特定の説明に適合する人を探します。これらの基準のいくつかの例は、人の一般的な健康状態または以前の治療です。

適格基準

就学可能な年齢

  • 大人
  • 高齢者

健康ボランティアの受け入れ

いいえ

説明

Inclusion Criteria:

  1. Adults ≥ 18 years of age
  2. Intensive care unit (ICU) patients with tracheostomy inserted during the index ICU admission.
  3. Mechanically ventilated for ≤60 days.
  4. Successful spontaneous breathing trial for 1 hour.

Exclusion Criteria:

  1. Planned tracheostomy post head and neck surgery with ICU stay less than 48 hours
  2. Patient transferred from another hospital only if the intubation and tracheostomy dates are unavailable, otherwise would be eligible.
  3. Patient with an imminent plan for palliation and comfort care.
  4. Patient or substitute decision-maker declines consent to the study.
  5. The treating physician declines consent to the study.

研究計画

このセクションでは、研究がどのように設計され、研究が何を測定しているかなど、研究計画の詳細を提供します。

研究はどのように設計されていますか?

デザインの詳細

  • 主な目的:処理
  • 割り当て:ランダム化
  • 介入モデル:並列代入
  • マスキング:なし(オープンラベル)

武器と介入

参加者グループ / アーム
介入・治療
アクティブコンパレータ:Standard of care
Standard of care method using tracheal mask (TM) for weaning tracheostomized mechanically ventilated patients
Standard of care using tracheal mask (TM) oxygen for weaning tracheostomized mechanically ventilated patients
他の名前:
  • tracheal mask
実験的:Intervention arm
High-flow tracheal oxygen therapy (HFTO) for weaning tracheostomized mechanically ventilated patients
High-flow tracheal oxygen for weaning tracheosstomized mechanically ventilated patients
他の名前:
  • HFTO

この研究は何を測定していますか?

主要な結果の測定

結果測定
メジャーの説明
時間枠
Consent Rate
時間枠:1 Year

A successful consent rate will be defined as ≥70% of SDMs or patients approached to consent, agreeing to participate in the trial.

This will be calculated as the proportion of substitute decision makers (SDMs) or patients who consent to participate out of those approached.

1 Year
Recruitment Rate
時間枠:1 Year

A successful recruitment rate will be defined as achieving our target enrolment of 88 patients or recruiting at least 2 patients per month throughout the duration of the trial.

The number of patients recruited per month will be tracked to ensure the target of 2 patients per month is met.

1 Year
Protocol Adherence
時間枠:1 Year

A successful adherence will be defined as ≥ 75% of patients receiving HFTO in the intervention arm and ≥ 75% of patients receiving TM in the control arm (crossover in the control arm <25%).

This would be calculated as the proportion of patients assigned to the intervention arm that received HFTO, and the proportion of those patients assigned to the control arm receiving TM.

1 Year

二次結果の測定

結果測定
メジャーの説明
時間枠
Ventilator-free days (VFDs) at day-30 from enrollment.
時間枠:30 days from enrollment
The number of days free from mechanical ventilation within the first 30 days post-enrollment will be recorded.
30 days from enrollment
Successful liberation from mechanical ventilation at 30-days from enrollment
時間枠:30 days from enrollment
Defined as spontaneous ventilation through tracheostomy without any mechanical ventilation during 7 consecutive days or discharged with spontaneous breathing, whichever comes first
30 days from enrollment
Mortality at 30 days.
時間枠:30 days from enrollment
30 days from enrollment
ICU length of stay at 30-days.
時間枠:30 days from enrollment
30 days from enrollment
Hospital length of stay at 30-days.
時間枠:30 days from enrollment
30 days from enrollment
Discharge on mechanical ventilation at 30 days (home, long-term facility, another hospital).
時間枠:30 days from enrollment
30 days from enrollment
Physiological outcomes (Vital Signs Measurements)
時間枠:7 days from enrollment
The difference between respiratory rate (measured as breaths per minute), heart rate (measured as beats per minute) before and 1-2 hours after the intervention or control in the first 7 days in both groups.
7 days from enrollment
Physiological outcomes (Oxygenation and Ventilation Measurements from Arterial Blood Gas)
時間枠:7 days from enrollment
The difference between pH, PaCo2: partial pressure of arterial carbon dioxide (measured in kPa), PaO2: partial pressure of oxygen in arterial blood gas (measured in kPa), SaO2: arterial oxygen saturation (measured as %), FiO2 (measured as %), and PaO2:FiO2: the ratio of arterial oxygen partial pressure to the fractional inspired oxygen (measured in mmHg) before and 1-2 hours after the intervention or control in the first 7 days in both groups.
7 days from enrollment
Physiological outcomes (Oxygenation Parameters from Vital Signs)
時間枠:7 days from enrollment
The difference between SpO2:FiO2: the ratio of oxygen saturation from pulse oximetry to the fraction of inspired oxygen before and 1-2 hours after the intervention or control in the first 7 days in both groups.
7 days from enrollment

協力者と研究者

ここでは、この調査に関係する人々や組織を見つけることができます。

スポンサー

捜査官

  • 主任研究者:Zainab Al Duhailib, MBBS, MSc, EDIC、King Faisal Specialist Hospital and Research Centre, Riyadh, Saudi Arabia

出版物と役立つリンク

研究に関する情報を入力する責任者は、自発的にこれらの出版物を提供します。これらは、研究に関連するあらゆるものに関するものである可能性があります。

研究記録日

これらの日付は、ClinicalTrials.gov への研究記録と要約結果の提出の進捗状況を追跡します。研究記録と報告された結果は、国立医学図書館 (NLM) によって審査され、公開 Web サイトに掲載される前に、特定の品質管理基準を満たしていることが確認されます。

主要日程の研究

研究開始 (実際)

2026年5月17日

一次修了 (推定)

2027年5月1日

研究の完了 (推定)

2027年5月1日

試験登録日

最初に提出

2026年4月7日

QC基準を満たした最初の提出物

2026年4月24日

最初の投稿 (実際)

2026年4月30日

学習記録の更新

投稿された最後の更新 (実際)

2026年6月2日

QC基準を満たした最後の更新が送信されました

2026年5月29日

最終確認日

2026年5月1日

詳しくは

本研究に関する用語

その他の研究ID番号

  • RAC# 2251192

個々の参加者データ (IPD) の計画

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いいえ

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