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Modality-Specific Heart Rate Differences at Ventilatory Thresholds During Unified Ramp Testing

2026년 7월 17일 업데이트: Tung-Chou Li, Cathay General Hospital

Evaluation of Heart Rate and Ventilatory Threshold Agreement Between Cycling and Running Under Strictly Standardized Ramp Conditions

The purpose of this study was to investigate the heart rate bias between cycling and treadmill exercise at ventilatory thresholds. This was a randomized crossover trial involving 23 healthy participants. Each participant performed both cycling and treadmill exercise tests in a randomized order. The primary outcome was to determine the difference in heart rate response at the first and second ventilatory thresholds between the two exercise modalities. We hypothesized that there is a fixed bias in heart rate response, which may have implications for exercise prescription in clinical and rehabilitation settings.

연구 개요

상태

완전한

정황

개입 / 치료

상세 설명

Participants Twenty-three healthy adults (12 men, 11 women; age 30.8 ± 5.6 years; BMI 21.8 ± 2.6 kg/m²) were recruited via institutional advertisements at a university hospital. Inclusion criteria were: age ≥ 20 years, familiarity with cycling and treadmill exercise, and a negative Physical Activity Readiness Questionnaire response. Exclusion criteria were: history of cardiovascular, pulmonary, or metabolic disease; musculoskeletal injuries limiting exercise range of motion; or medications affecting heart rate or ventilation. Participants fasted for 3 hours, abstained from vigorous exercise, alcohol, and caffeine for 24 hours prior to testing, and provided written informed consent. Data collection was conducted between February 2024 and November 2024. The protocol was approved by the Institutional Review Board of National Taiwan University Hospital (IRB Registration: 202311036RIND).

Experimental Design A randomized crossover design was employed. Participants completed two symptom-limited CPET sessions on a cycle ergometer (VIAsprint, Ergoline, Germany) and motorized treadmill (Ergosprint, Ergoline, Germany), separated by 7-14 days and conducted at the same time of day (±2 hours) to control for circadian effects. The randomized order minimized potential order effects and ensured that fatigue from the first test did not systematically bias results.

Cardiopulmonary Exercise Testing Protocol Gas Exchange Measurement and Safety Monitoring Breath-by-breath gas exchange was measured using a metabolic cart (Vmax Encore, CareFusion, USA), calibrated before each test with standard gases and a 3-L calibration syringe. Heart rate was monitored continuously via 12-lead electrocardiography (Cardiosoft, GE Healthcare, USA), providing greater temporal resolution than telemetric methods. Blood pressure was measured at rest and every 2 minutes during exercise to monitor safety and detect cardiovascular abnormalities.

Unified Ramp Protocol The central innovation was implementing a unified ramp protocol on both modalities to eliminate kinetic confounding.

Cycle Ergometer: Following a 3-minute unloaded warm-up (0 W), continuous ramp increases began at 20 W·min-¹ (men) or 15 W·min-¹ (women), targeting an 8-12 minute test duration to optimize threshold identification within a physiologically relevant window.

Treadmill: Using the Porszász algorithm, simultaneous adjustments to speed and grade produced metabolically equivalent work rate increases (20 or 15 W·min-¹), matched to cycling. Warm-up consisted of 3 minutes at 3-4 km/h, 0% grade. The Porszász protocol mathematically calculates the non-linear combination of speed and grade increases needed to produce a linear rise in metabolic demand, ensuring identical oxygen uptake kinetic demands despite different biomechanical constraints.

Maximal Effort Verification Participants exercised to volitional exhaustion or until safety criteria were met. Maximal effort was confirmed by meeting ≥2 of the following criteria: respiratory exchange ratio (RER) ≥ 1.10; heart rate within 10 bpm of age-predicted maximum (220 - age); rating of perceived exertion (RPE) ≥ 17 on the Borg 6-20 scale; or VO₂ plateau (≤150 mL·min-¹ increase despite increasing workload).

Threshold Determination Breath-by-breath gas exchange data were binned into 5-second moving averages to attenuate noise while preserving dynamic resolution at the threshold transition point. VT1 and VT2 were identified independently by two blinded, experienced raters using consensus criteria (V-slope method, ventilatory equivalents, end-tidal gas tensions). Blinding was maintained by removing all identifiers before threshold determination. Disagreements (2 cases) were adjudicated by a third blinded expert. Inter-rater reliability was excellent (ICC = 0.94 for VT1; ICC = 0.96 for VT2). Variables were extracted as 30-second averages centered on the identified threshold time point to ensure stability.

Statistical Analysis Primary and Secondary Outcomes Primary outcome: heart rate difference at VT1 and VT2 between modalities. Secondary outcomes: absolute and relative VO₂, EqO₂, EqCO₂, and O₂ pulse.

Data Analysis Methods Data normality was assessed using the Shapiro-Wilk test. Paired t-tests compared variables between modalities, with two-tailed significance testing at α = 0.05. Intraclass correlation coefficients (ICC; two-way mixed-effects, absolute agreement) assessed measurement reliability. Measurement error was quantified using the coefficient of variation (CV = SD of differences/mean), which normalizes variability to enable comparison across variables with different scales.

Bland-Altman Regression Analysis for Proportional Bias Bland-Altman analysis with linear regression tested for fixed versus proportional bias-the core statistical innovation distinguishing this study. The difference between modalities (Cycling - Treadmill) was regressed against the mean of the two measurements. A non-significant regression slope (p > 0.05) indicated fixed bias, whereas a significant slope (p < 0.05) indicated proportional bias. This approach directly tests whether correction factors should be constant across participants or adjusted based on individual physiological capacity.

All statistical analyses were performed using SPSS Statistics Version 20 (IBM Corp., Armonk, NY) for ICC and t-tests, and GraphPad Prism Version 10 (GraphPad Software, San Diego, CA) for Bland-Altman plots.

연구 유형

중재적

등록 (실제)

23

단계

  • 해당 없음

연락처 및 위치

이 섹션에서는 연구를 수행하는 사람들의 연락처 정보와 이 연구가 수행되는 장소에 대한 정보를 제공합니다.

연구 장소

    • Taipei City
      • Taipei, Taipei City, 대만, 10630
        • Cathay General Hospitla

참여기준

연구원은 적격성 기준이라는 특정 설명에 맞는 사람을 찾습니다. 이러한 기준의 몇 가지 예는 개인의 일반적인 건강 상태 또는 이전 치료입니다.

자격 기준

공부할 수 있는 나이

  • 성인
  • 고령자

건강한 자원 봉사자를 받아들입니다

예

설명

Inclusion Criteria:

  1. Age ≥ 20 years.
  2. Familiarity with both cycling and treadmill exercise.
  3. Negative response on the Physical Activity Readiness Questionnaire (PAR-Q).

Exclusion Criteria:

  1. History of cardiovascular, pulmonary, or metabolic disease.
  2. Musculoskeletal injuries limiting exercise range of motion.
  3. Use of medications known to affect heart rate or ventilation.

공부 계획

이 섹션에서는 연구 설계 방법과 연구가 측정하는 내용을 포함하여 연구 계획에 대한 세부 정보를 제공합니다.

연구는 어떻게 설계됩니까?

디자인 세부사항

  • 주 목적: 기초 과학
  • 할당: 무작위
  • 중재 모델: 크로스오버 할당
  • 마스킹: 하나의

무기와 개입

참가자 그룹 / 팔
개입 / 치료
실험적: Cycling-First Sequence
Participants in this arm are randomized to perform the continuous ramp cardiopulmonary exercise testing (CPET) on a cycle ergometer first. After a washout period of 7 to 14 days, they cross over to perform the standardized treadmill ramp testing.
Following a 3-minute unloaded warm-up (0 W), continuous ramp increases began at 20 W/min for men or 15 W/min for women, targeting an 8-12 minute test duration to volitional exhaustion.
Standardized ramp testing utilizing the Porszász algorithm. Simultaneous adjustments to speed and grade mathematically produce a linear rise in metabolic demand (matched to 20 or 15 W/min based on sex), ensuring identical oxygen uptake kinetic demands to the cycling protocol.
실험적: Treadmill-First Sequence
Participants in this arm are randomized to perform the standardized treadmill ramp cardiopulmonary exercise testing (CPET) using the Porszász algorithm first. After a washout period of 7 to 14 days, they cross over to perform the cycle ergometer ramp testing.
Following a 3-minute unloaded warm-up (0 W), continuous ramp increases began at 20 W/min for men or 15 W/min for women, targeting an 8-12 minute test duration to volitional exhaustion.
Standardized ramp testing utilizing the Porszász algorithm. Simultaneous adjustments to speed and grade mathematically produce a linear rise in metabolic demand (matched to 20 or 15 W/min based on sex), ensuring identical oxygen uptake kinetic demands to the cycling protocol.

연구는 무엇을 측정합니까?

주요 결과 측정

결과 측정
측정값 설명
기간
Modality-Specific Heart Rate Differences at Ventilatory Thresholds (VT1 and VT2)
기간: Identified during each 8 to 12-minute cardiopulmonary exercise test session (Sessions separated by 7 to 14 days).
The absolute difference in heart rate (measured in beats per minute, bpm) recorded at the first ventilatory threshold (VT1) and second ventilatory threshold (VT2) between cycle ergometry and treadmill running.
Identified during each 8 to 12-minute cardiopulmonary exercise test session (Sessions separated by 7 to 14 days).

2차 결과 측정

결과 측정
측정값 설명
기간
Oxygen Consumption (VO2) at Thresholds and Peak
기간: Extracted as 30-second averages centered on the threshold time points and peak during each exercise test session.
Absolute and relative oxygen consumption (mL/kg/min) at VT1, VT2, and peak exercise.
Extracted as 30-second averages centered on the threshold time points and peak during each exercise test session.
Ventilatory Equivalent for Carbon Dioxide (EqCO2)
기간: immediately after exercise test
VE/VCO2 ratio at VT1 and VT2 to assess cross-modal reliability.
immediately after exercise test
Oxygen Pulse (O2 pulse)
기간: immediately after exercise test
Calculated as VO2 divided by heart rate (mL/beat) at VT1 and VT2 to evaluate stroke volume and tissue extraction markers across modalities.
immediately after exercise test

공동 작업자 및 조사자

여기에서 이 연구와 관련된 사람과 조직을 찾을 수 있습니다.

스폰서

연구 기록 날짜

이 날짜는 ClinicalTrials.gov에 대한 연구 기록 및 요약 결과 제출의 진행 상황을 추적합니다. 연구 기록 및 보고된 결과는 공개 웹사이트에 게시되기 전에 특정 품질 관리 기준을 충족하는지 확인하기 위해 국립 의학 도서관(NLM)에서 검토합니다.

연구 주요 날짜

연구 시작 (실제)

2024년 2월 1일

기본 완료 (실제)

2024년 11월 30일

연구 완료 (실제)

2024년 11월 30일

연구 등록 날짜

최초 제출

2026년 7월 14일

QC 기준을 충족하는 최초 제출

2026년 7월 17일

처음 게시됨 (실제)

2026년 7월 22일

연구 기록 업데이트

마지막 업데이트 게시됨 (실제)

2026년 7월 22일

QC 기준을 충족하는 마지막 업데이트 제출

2026년 7월 17일

마지막으로 확인됨

2026년 7월 1일

추가 정보

이 연구와 관련된 용어

추가 관련 MeSH 약관

기타 연구 ID 번호

  • 202311036RIND

개별 참가자 데이터(IPD) 계획

개별 참가자 데이터(IPD)를 공유할 계획입니까?

예

IPD 계획 설명

The de-identified individual participant data that underlie the results reported in this article will be available to other researchers who provide a methodologically sound proposal. Proposals may be submitted to the corresponding author twdoggy@yahoo.com.tw for review. Data access will be granted upon signature of a data access agreement and ethical approval.

IPD 공유 기간

The data and supporting documents will be available immediately following the publication of the article and will remain available for 5 years after publication.

IPD 공유 액세스 기준

Researchers interested in accessing the IPD or supporting documentation must submit a methodologically sound research proposal to the corresponding author for review. The proposal should clearly state the research question and the intended use of the data. Access to the de-identified data will be granted to researchers who meet the criteria after signing a data access agreement and demonstrating institutional ethical approval. Requests will be evaluated on a case-by-case basis to ensure participant privacy and data security.

IPD 공유 지원 정보 유형

  • 연구_프로토콜
  • 수액
  • ANALYTIC_CODE

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