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In-bed cycle ergometry is a safe, feasible, and reliable therapy option for patients mechanically ventilated in the ICU that improves physical function by ICU and hospital discharge15.
Applying the RTSS to in-bed cycle ergometry
Figure 2 summarizes examples of targets, mechanisms of action, ingredients, and potential measures for in-bed cycle ergometry. We developed our approach to implementing in-bed cycle ergometry based on details reported in the primary studies summarized in a systematic review15. As an intervention, in-bed cycle ergometry increases physical activity through passive, active, or resisted lower limb movements.
Targets of treatment
In-bed cycle ergometry in mechanically ventilated patients is primarily designed to target Organ Function. These targets could include increasing leg muscle activation, increasing leg muscle strength, increasing leg muscle endurance, or increasing joint range of motion. Example measures to quantify Organ Function treatment targets include measures of muscle activation on palpation (target: increased leg muscle activation), power output in Watts (target: increased leg muscle strength), and duration of cycle motor support (target: increase leg muscle endurance). In-bed cycle ergometry also includes Skill and Habit targets, such as increased ability to cycle independently or increased consistency of participation in the in-bed cycle ergometry session. Taken together, these targets work towards the overall aim of improving patients’ physical function.
Mechanisms of action—How treatments affect targets
The adverse effects of prolonged bed rest are well established41. Generally, the cohort of patients mechanically ventilated with critical illness performs little to no physical activity42,43. Patients may be sedated whilst mechanically ventilated, and have limited ability to actively participate in a session. Previous studies demonstrated leg muscle activation in sedated patients with a Richmond Agitation and Sedation Scale Score of -3 (moderate sedation) or -4 (deep sedation)44. These actions can increase physical activity and recruit muscle fibre units to preserve or maintain muscle mass and therefore muscle strength. Thus, in-bed cycle ergometry is an example of an intervention that can be used as either a non-volitional intervention in sedated or unconscious patients or a fully volitional intervention in awake and cooperative patients19.
For in-bed cycle ergometry, our hypothesized mechanisms are primarily related to neuromuscular activation of the lower limbs45. For non-volitional or passive in-bed cycle ergometry, the bike supports the neuromuscular system. We hypothesize that repeated limb movement generated by motor support from the bike provides afferent and efferent neurological stimulation to activate central pattern generators46. Once a patient can participate volitionally in active-assisted or active in-bed cycle ergometry, requiring less support from the cycle motor, our hypothesized mechanism of action is challenging the leg muscles.
Treatment ingredients—What the therapist does or provides
We assume that all clinicians will offer good clinical practice, including introducing themselves and explaining the intervention to the patient, regardless of sedation status. It is not necessary to specify ingredients that are part of good clinical practice, unless they are essential for that treatment target.
Before commencing in-bed cycle ergometry, the clinician identifies the appropriate patient, ensures that appropriate safety factors for in-bed cycle ergometry have been checked and considered, and coordinates the therapy with the multidisciplinary ICU team to find a suitable time. In-bed cycle ergometry is intended to reduce the impact of post-ICU physical impairments15. Therefore, patient selection for in-bed cycle ergometry should focus on patients most at risk of ICU-acquired weakness and subsequent long-term physical disability47. These typically include but are not limited to patients with acute respiratory distress syndrome (ARDS) or acute respiratory failure currently receiving mechanical ventilation in the ICU4, with the intention of commencing intervention early, that is, within the first four days of mechanical ventilation18. However, this is conditional on the patients being physiologically and metabolically stable prior to the commencement of the intervention48. Clinical assessment, particularly neurological assessments of conscious state is required to determine whether to select a passive, active, or resisted mode of in-bed cycle ergometry. Modifications and troubleshooting may be required to optimize in-bed cycle ergometry and individualize therapy for patients in the ICU. The use of functional electrical stimulation can be incorporated for patients with severe weakness or those unable to actively participate in therapy49. However, electrical stimulation with in-bed cycle ergometry is beyond the scope of the current article.
Ingredient—In-bed cycle ergometer
The first essential ingredient for in-bed cycle ergometry is access to an in-bed cycle ergometer device (Table 2) and training in its use. An in-bed cycle ergometer is a specialized device to allow patients to perform passive, assisted, active, or resisted cycling exercise while remaining in bed. The main frame and base support the device securely over and beside the patient’s bed. Typically, these devices include mechanisms for adjustable height and width to accommodate different ICU bed types. The base features lockable casters or wheels for easy movement and positioning, whilst ensuring stability during ergometer use. The device may have additional straps to secure the frame to the bed.
The pedal mechanism supplies the cycling interface for the patient’s legs. The pedals often include straps to secure the feet with padded cushioning for comfort. The pedals are attached to crank arms, which are connected to a central axle, the motor, and resistance system. The resistance system can be adjusted to provide different levels of resistance for strengthening. The motor can move the pedals automatically to enable passive cycling if the patient is sedated and/or unable to voluntarily drive the pedals.
A computerized console, generally in tablet form, serves as the interface for clinicians to adjust settings and monitor performance. Typical features include speed control in revolutions per minute (RPM), and resistance control. Patient monitoring includes duration, distance, cadence, power output, and proportion of active versus passive input.
Positioning of the patient onto and off the cycle ergometer
Once the patient is identified, the ICU team is aware of the plan, and the equipment is available, clinicians set up the in-bed cycle ergometer at the bedside and adjust the height, width, and position to permit cycling motion and ensure patient comfort. The patient is in a semi-recumbent position, with the pelvis at the level of the anterior superior iliac spines (ASIS). The in-bed cycle ergometer is then positioned to align with the patient. The patient’s feet are positioned in the pedals to ensure that when the pedals are furthest from the pelvis, a small amount of knee flexion is maintained to avoid knee hyperextension or heel migration away from the pedals. Additionally, the pedals are positioned to avoid excessive hip flexion and external rotation when the pedals are closest to the pelvis. The in-bed cycle ergometer brakes and straps are fastened to maintain both the machine and patient throughout the intervention. Prior to starting the ergometer, clinicians confirm positioning by moving the ergometer through a full cycle.
Active monitoring of the patient for safety events and intervention if needed
Continuous reassessment and evaluation are warranted to monitor patients' response to the intervention including vital signs, fatigue, discomfort, or pain amongst others. Criteria for commencing in-bed cycle ergometry are provided in Table 1, with criteria for ceasing therapy listed in Table 2. These criteria are adapted from protocols of contemporary clinical trials of in-bed cycle ergometry and with consensus from the authors form the basis for monitoring therapy throughout50,51,52.
Safety responses
Immediately cease activity if stopping criteria are met. Remove the patient’s feet from the pedals. Reassess vital signs immediately. Notify the ICU team if instability persists.
Opportunities to practice
As patients progress from non-volitional (passive) to volitional (active-assisted or active) in-bed cycle ergometry, they require opportunities to practice to develop the skills to use the in-bed cycle ergometer for the activities planned by the therapist.
Instructions, feedback, knowledge of results, and motivation ingredients
As with any other therapy, providing verbal encouragement and feedback is important for optimal participation. The patient is provided with positive reinforcement regarding the benefits of participation in therapy throughout.
Increasing resistance duration of session
Once a patient has sufficient leg muscle strength to move the pedals without motor support and is consistently participating in the session, the clinician challenges the patient by adding resistance from the bike or extending the session time. If patients can complete in-bed cycle ergometry with resistance independently, they are considered for higher-level functional activity beyond in-bed cycle ergometry alone.
Whilst mobilization and in-bed cycle ergometry are relatively safe interventions, with an adverse event rate of 3%53 and 1%15, respectively, no serious adverse events have been reported with in-bed cycle ergometry, although mobilization is more common15. Importantly, in-bed cycle ergometry can be provided for patients who are unable to actively participate in mobilization (e.g., sedated patients) or those who are unable to tolerate a postural challenge to their haemodynamics, which are common issues present in the ICU.
Critical steps in implementation
Successful implementation of in-bed cycle ergometry in the ICU relies on several key considerations. Careful patient selection is essential to ensure safety and maximize benefit, with factors such as level of consciousness, haemodynamic stability, and the absence of contraindications guiding suitability19. Continuous patient monitoring and regular assessment are crucial for clinicians to tailor exercise intensity, detect any adverse responses, and adjust treatment according to the patient’s condition. Further, carefully maintained equipment and adequate staffing are vital to facilitate safe and effective delivery of the intervention, ideally requiring trained physiotherapists familiar with in-bed cycle ergometry protocols, infection control procedures, and equipment setup. Rehabilitation in the ICU is often challenging to deliver with adequate fidelity54. In-bed cycle ergometry has advantages in this regard, as frequency and duration are easily recorded, intensity and resistance may be controlled, and patient participation can be captured. Overall, this improves the reproducibility of the intervention and makes progression easier to adjust, modify, and control.
Common troubleshooting issues
Agitation, which may interfere with participation, should be carefully managed through calm reassurance, appropriate timing of sessions, or collaboration with the multidisciplinary team to adjust sedation or analgesia as required. Additionally, variations in body habitus may require adjustments in patient positioning or equipment setup to ensure safety and comfort throughout the intervention, or may contraindicate the use of in-bed cycle ergometry due to breaches in safe working loads of the devices.
Limitations
Despite the promise of in-bed cycle ergometry, limitations do exist. One key challenge is determining the appropriate exercise dose for patients mechanically ventilated in critical illness. Clinical trials to date have prescribed doses of interventions ranging from 20 min18 through to 60 min of activity48. Applying exercise prescription principles in critically ill patients is complex, and delivering higher doses or durations of activity may be limited by patient fatigue, medical instability, or clinician time constraints. Indeed, higher target doses of mobilization therapy have been difficult to achieve55, with low levels of physical activity recorded even in patients known to be participating in rehabilitation in the ICU43. In-bed cycle ergometry may provide a better opportunity to deliver a higher duration (dose) of physical activity than mobilization alone. The selection and timing of outcome assessment remain uncertain. Clinical trials have generally timed outcome assessment appropriately close to the cessation of the intervention, typically around ICU discharge18. The evolution of core outcome sets for rehabilitation trials in the ICU aims to address this heterogeneity to improve the ability to compare outcomes across trials56.
Comparisons with alternative rehabilitation strategies
Applying the RTSS to in-bed cycle ergometry, a specific mode of ICU rehabilitation, provides a structured framework for describing and analysing this complex intervention in the ICU environment. Whilst in-bed cycle ergometry has the highest fidelity of reporting (85% using CERT) compared with other modes of physical rehabilitation, physical rehabilitation requires improvement in the reporting of interventions in both intervention and comparator groups in clinical trials9. The RTSS requires clear designations of the clinician ingredients, mechanisms, and intended targets, which may facilitate improvements in consistency in the design of intervention delivery and reporting. Specifically, using the RTSS may help to distinguish between interventions that address muscle strength and endurance (body functions) and those that address physical function, with a description of the linking mechanism. By explicitly requiring the definition of these components, the use of the RTSS may strengthen the design of future clinical trials in physical rehabilitation.
Potential applications and future directions
Future directions for in-bed cycle ergometry in the ICU should focus on refining its application and expanding its potential beyond the lower limbs. Upper limb (arm) ergometry offers an opportunity to engage other muscle groups that may also contribute to physical function and improve cardiovascular fitness16. Determining the optimal timing of commencement remains an important topic of investigation. Advances in automated and artificial intelligence (AI)-driven patient monitoring may facilitate enhanced individualization of treatment by continuously tracking patient response and adjusting workload in real time. Continued innovation in the technology and application of these devices through research will improve the potential of exercise-based rehabilitation in the ICU. For example, virtual reality (VR) may be combined with in-bed cycle ergometry as an adjunct to improve cognitive stimulation and reduce the incidence of delirium57. These approaches are safe, feasible, and may improve the patient experience within the ICU58,59.
Conclusions
In-bed cycle ergometry is a safe, feasible, reproducible, and acceptable intervention in the ICU when delivered according to this standardized protocol and with appropriate patient selection and monitoring19. Evidence to date suggests that it improves physical function and contributes to reduced length of stay in the ICU and hospital15. As part of a structured rehabilitation program that includes early mobilization, in-bed cycle ergometry offers a practical alternative to increase physical activity, deliver a higher dose of exercise therapy, and counter the negative effects of prolonged bed rest. Ultimately, it may support physical recovery following critical illness and reduce the burden of physical disability for the increasing number of survivors of critical illness.