AIRCHILL Translational & Human Performance Development Pipeline
Development pipeline · Version 1.0 · 23 August 2026
From heat-transfer physics to human neurological benefit.
A stage-gated AIRCHILL development pipeline that separates engineering verification, preclinical validation, human factors, human performance, first-in-patient safety, randomized thermal-performance testing and confirmatory clinical efficacy. The programme is designed so that each stage answers one question well enough to justify the next, while keeping helium carrier-gas development distinct from any pharmacological gas-efficacy claim.
Programme logic
Do not ask efficacy before proving exposure.
Prove heat removal
Bench and preclinical stages must establish that AIRCHILL creates a reproducible, quantifiable thermal exposure under realistic ventilation conditions.
Prove the device can deliver it
Human studies first establish usability, ventilation continuity, measurement validity, gas-path performance and achievable thermal separation—not neurological efficacy.
Then estimate benefit
Once exposure is reproducible and safe, randomized patient studies can estimate biomarker and patient-outcome effects in a prespecified phenotype.
Only then power the pivotal trial
The confirmatory effect size comes from AIRCHILL-specific phase-2 data and current control rates, not from external cooling or gas studies.
Stage-gated roadmap
The complete evidence ladder.
| Stage | Question | Population / setting | Primary output | Indicative scale | Gate to next stage |
|---|---|---|---|---|---|
| 0 Intended-use & jurisdiction freeze | What exactly is AIRCHILL claiming, and is helium a device-performance constituent, medicinal gas, or combination-product element? | Regulatory / engineering programme | Frozen intended purpose, gas architecture, claims matrix, risk classification hypothesis, FDA Pre-Sub / EU classification questions. | No subjects | Regulatory route is sufficiently defined to design nonclinical and human evidence without creating avoidable rework. |
| 1 Bench metrology | Does the system deliver the intended gas temperature, flow, pressure and FiO₂ accurately? | Test lung, thermal lung, environmental chamber | Calibration, repeatability, condensation, alarm behavior, sensor accuracy, gas consumption, heat-removal curves. | Dozens–hundreds of repeated runs | Stable performance across the intended operating envelope and worst-case conditions. |
| 2 Ex-vivo / airway model | What happens at the airway and lung interface before live-animal testing? | Validated airway / lung models, ex-vivo tissue where appropriate | Mucosal temperature gradients, condensation, resistance, humidity, local thermal load, gas-path deposition/icing risk. | Design-driven | No unresolved local thermal or circuit hazard that requires live-animal discovery. |
| 3 Acute large-animal thermal study | Can AIRCHILL reproducibly cool brain / target-organ temperature while maintaining ventilation? | Randomized porcine physiology model | Direct brain temperature, core temperature, cooling rate, gas exchange, airway pressure, haemodynamics, histology/safety. | ~20–30 evaluable animals after variance-based justification | Prespecified thermal advantage plus ventilation and safety gates. |
| 4 Disease-model replication | Does the selected configuration perform in cardiac arrest / ROSC conditions? | Randomized porcine arrest model | Thermal separation during CPR/after ROSC, ROSC performance, haemodynamics, early biomarkers and pathology. | Variance-based | Reproducible exposure and no material resuscitation penalty. |
| 5 Formative human factors | Can intended users deploy the system correctly in realistic EMS conditions? | Paramedics, emergency physicians, ICU staff; manikin/simulation | Critical-task failures, setup time, alarm handling, circuit changes, transport/handover errors, training needs. | Iterative cohorts | Critical use errors reduced to acceptable residual risk. |
| 6 Summative usability validation | Does the near-final interface support safe use by representative users without coaching? | Representative users; simulated use environments | Human-factors validation against critical tasks and hazard-related use scenarios. | Risk-based representative sample | No unacceptable unresolved use-related risk; design sufficiently frozen for clinical use. |
| 7 Human performance feasibility | Can the near-final system deliver stable ventilation and controlled respiratory cooling in humans who already require invasive ventilation? | Stable, already-intubated adults in a controlled hospital environment; no intubation solely for research | Device functionality, delivered gas variables, ventilation stability, airway/gas-exchange safety, modest reversible thermal response, workflow. | ~10–20 subjects, staged/sentinel | No device-related serious safety signal; prespecified ventilation and performance success rate met. |
| 8 First-in-patient early feasibility | Can AIRCHILL be started early in the intended emergency population and create meaningful thermal separation? | Selected intubated OHCA patients; narrow phenotype | Time-to-start, brain/core surrogate trajectory, ventilation continuity, safety, protocol adherence, handover, device deficiencies. | ~10–30 patients | Thermal separation and safety/adherence gates justify randomized performance testing. |
| 9 Randomized clinical performance trial | Does AIRCHILL reliably produce earlier / greater thermal exposure than standard care? | Multicentre OHCA; same downstream guideline-based care | Prespecified thermal-performance endpoint; key safety endpoints; blinded neurological follow-up as secondary. | ~40–120, depending variability | Clear exposure contrast with acceptable safety; variance and control rates adequate for phase-2 design. |
| 10 Phase-2 dose / timing / phenotype study | Which timing, thermal dose and phenotype should enter pivotal testing? | Randomized multicentre intended-use population | Thermal dose-response, biomarkers, safety, 90-day neurological signal, event rates, recruitment/adherence. | ~100–300 | Prospectively selected regimen/phenotype, clinically credible effect estimate and acceptable benefit-risk. |
| 11 Confirmatory efficacy trial | Does AIRCHILL improve a patient-relevant endpoint? | Multicentre randomized intended-use population | Blinded 90-day neurological outcome (e.g. ordinal mRS or prespecified favourable outcome), mortality and safety; health economics alongside. | Likely several hundred to >1,000; final n from phase-2 data | Predefined statistical success and acceptable benefit-risk support claim expansion / market authorization. |
| 12 Post-market clinical follow-up | Does performance persist in broader real-world use? | Registries / PMCF / implementation cohorts | Rare safety events, subgroup performance, workflow, utilization, long-term outcomes and economics. | Ongoing | Feeds CER, risk management, labeling and future indication expansion. |
Human performance programme
Three human-performance studies before a pivotal efficacy question.
Clinician / EMS usability
Representative users run the complete workflow in ambulance, transfer and ICU simulations. Primary outputs: successful setup, time-to-therapy, critical-task failure, alarm recovery, cylinder/gas change, condensation handling, transport fixation and handover.
Already-intubated stable adults
Short, reversible exposure in subjects already requiring invasive ventilation for clinical reasons. The study should not intubate healthy volunteers solely for research. Primary aim: confirm delivered temperature/flow/FiO₂, airway pressures, PaCO₂/PaO₂, humidification and device stability under real human respiratory loads.
Emergency workflow + thermal separation
Selected OHCA patients test whether the system can be started early enough and maintained through transport/handover to generate the intended exposure. The neurological endpoint remains exploratory at this stage.
Clinical performance to efficacy
Human patient trials should separate exposure, signal and benefit.
| Study | Primary question | Illustrative primary endpoint | Key secondary endpoints | Decision use |
|---|---|---|---|---|
| FIH / EFS | Can the device be used safely and early enough? | Composite performance success: protocol start achieved + stable ventilation + no device-related serious safety event. | Time-to-start, thermal trajectory, airway/circuit events, haemodynamics, gas exchange, interruptions, handover. | Device and protocol iteration. |
| Randomized performance | Does AIRCHILL create a reproducible treatment contrast? | Difference in prespecified thermal exposure metric within the early treatment window. | Time below/above target, cooling rate, ventilation metrics, safety, biomarkers, exploratory 90-day mRS/CPC. | Proves the intervention is biologically distinct from standard care. |
| Phase 2 | Which dose/timing/phenotype should be tested? | Protocol-specific biomarker or intermediate clinical endpoint plus safety, with neurological outcome prespecified. | 90-day ordinal mRS/CPC, mortality, adverse events, ICU/resource use, treatment interactions. | Locks pivotal regimen, phenotype and effect-size prior. |
| Pivotal | Does treatment improve patient-relevant outcome? | Blinded 90-day neurological outcome using a prespecified estimand and analysis model. | Mortality, safety, ICU/hospital use, QoL, EQ-5D, long-term care and cost-effectiveness. | Clinical claim / regulatory submission. |
Helium branch
Carrier-gas engineering first; therapeutic-gas claims later.
Helium selected for heat transfer
Development claim: gas composition improves the physical performance of respiratory cooling. Evidence focuses on heat-transfer efficiency, ventilation, sensor accuracy and safety. Regulatory classification still requires authority confirmation because administered helium is a regulated medical gas in major jurisdictions.
Helium claimed as biologically neuroprotective
This is a materially different programme. It would require a pharmacological rationale, dose/exposure justification, gas-quality controls and a dedicated clinical efficacy strategy, potentially invoking medicinal-gas / combination-product requirements.
Do not mix the hypotheses
Until human data justify otherwise, the AIRCHILL helium programme should test whether helium improves device heat-transfer performance. Any independent neuroprotective claim should remain a separate protocol and regulatory workstream.
Regulatory & ethics gates
Human studies begin only after a frozen risk-based evidence package.
MDR clinical investigations
Human device investigations should be designed under MDR Annex XV and ISO 14155:2026, with a plan capable of confirming or refuting safety/performance claims and scientifically valid observations.
Pre-Sub → IDE / EFS
Use FDA Q-Submission interaction early. A significant-risk early-feasibility study requires appropriate IRB approval and, where applicable, an approved IDE before enrolment.
Resolve before HP-2 / FIH
Helium is a designated medical gas under US law; if device and gas are jointly required for the intended effect, combination-product questions may arise. EU medicinal-gas implications likewise require explicit authority/NB assessment rather than assumption.
Staged exposure
Sentinel enrolment, stopping rules, independent safety review where appropriate, prespecified rescue/reversion to standard ventilation and no research-only intubation of healthy volunteers.
Submission-ready evidence architecture
Every stage should produce a reusable dossier component.
Engineering evidence
Requirements, hazard analysis, verification, gas-path characterization, environmental testing, alarm verification, software/controls and human-factors traceability.
Biological & performance evidence
Bench thermal performance, airway/lung safety, animal thermal dose, pathology, gas exchange, haemodynamics and disease-model replication.
Performance → efficacy
Human factors validation, human device-performance report, EFS report, randomized performance trial, phase-2 dose/phenotype decision record and pivotal clinical investigation report.
Collect once, reuse later
EMS time, consumables, gas consumption, ICU/ward days, ventilation days, complications, rehabilitation, EQ-5D, discharge destination and long-term care should be built into later randomized studies.
Development planning document, Version 1.0. Indicative sample-size ranges are planning envelopes, not protocol commitments. Final numbers, endpoints and regulatory route must be frozen from stage-specific variance, current control rates, device configuration and competent-authority / ethics feedback. Related protocol: AIRCHILL Helium Carrier-Gas Translational Study Protocol · Clinical Study Planner · Therapeutic-gas decision records.