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Original Research

A virtual reality-based endurance training program for COPD patients: acceptability and user experience

ORCID Icon, , , &
Pages 1590-1599 | Received 28 Feb 2023, Accepted 25 May 2023, Published online: 05 Jun 2023

References

  • Spruit MA, Singh SJ, Garvey C, et al. An official american thoracic society/european respiratory society statement: key concepts and advances in pulmonary rehabilitation. Am J Respir Crit Care Med. 2013;188(8):e13–e64.
  • Griffiths TL, Burr ML, Campbell IA, et al. Results at 1 year of outpatient multidisciplinary pulmonary rehabilitation: a randomised controlled trial. Lancet. 2000;355(9201):362–368.
  • World Health Organization. Chronic respiratory diseases (asthma, copd) in western pacific. 2020. https://www.who.int/westernpacific/health-topics/chronic-respiratory-diseases
  • Statista. Prevalence of chronic obstructive pulmonary disease (copd) in italy from 2012 to 2019. 2022. https://www.statista.com/statistics/936762/prevalence-of-copd-in-italy
  • Benjafield A, Tellez D, Barrett M, et al. An estimate of the European prevalence of COPD in 2050. 2021.
  • Qaseem A, Wilt TJ, Weinberger SE, et al. Diagnosis and management of stable chronic obstructive pulmonary disease: a clinical practice guideline update from the American college of physicians, American college of chest physicians, American thoracic society, and European respiratory society. Ann Intern Med. 2011;155(3):179–191.
  • Lozano R, Naghavi M, Foreman K, et al. Global and regional mortality from 235 causes of death for 20 age groups in 1990 and 2010: a systematic analysis for the global burden of disease study 2010. Lancet. 2012;380(9859):2095–2128.
  • Landi F, Pistelli R, Abbatecola AM, et al. Common geriatric conditions and disabilities in older persons with chronic obstructive pulmonary disease. Curr Opin Pulmon Med. 2011;17(Supplement 1):S29–S34.
  • Jang SM, Kim KU, Na HJ, et al. Depression is a major determinant of both disease-specific and generic health-related quality of life in people with severe copd. Chron Respir Dis. 2018;16:1479972318775422.
  • Troosters T, Casaburi R, Gosselink R, et al. Pulmonary rehabilitation in chronic obstructive pulmonary disease. Am J Respir Crit Care Med. 2005;172(1):19–38.
  • Beauchamp MK, Janaudis-Ferreira T, Goldstein RS, et al. Optimal duration of pulmonary rehabilitation for individuals with chronic obstructive pulmonary disease-a systematic review. Chron Respir Dis. 2011;8(2):129–140.
  • Rochester CL, Spanevello A. Heterogeneity of pulmonary rehabilitation: like apples and oranges–both healthy fruit. 2014.
  • Balbi B, Ambrosino N, Lazzeri M, et al. Pulmonary rehabilitation in Italy: professional barriers to overcome. 2014.
  • Vasilopoulou M, Papaioannou AI, Kaltsakas G, et al. Home-based maintenance tele-rehabilitation reduces the risk for acute exacerbations of copd, hospitalisations and emergency department visits. Eur Respir J. 2017;49(5):1602129.
  • Holland AE, Cox NS, Houchen-Wolloff L, et al. Defining modern pulmonary rehabilitation. an official american thoracic society workshop report. Ann Am Thorac Soc. 2021;18(5):e12–e29.
  • Troosters T, Gosselink R, Janssens W, et al. Exercise training and pulmonary rehabilitation: new insights and remaining challenges. Eur Respir Rev. 2010;19(115):24–29.
  • Garber CE, Blissmer B, Deschenes MR, et al. American college of sports medicine position stand. quantity and quality of exercise for developing and maintaining cardiorespiratory, musculoskeletal, and neuromotor fitness in apparently healthy adults: guidance for prescribing exercise. Med Sci Sports Exerc. 2011;43(7):1334–1359.
  • Bolton CE, Bevan-Smith EF, Blakey JD, et al. British thoracic society guideline on pulmonary rehabilitation in adults: accredited by nice. Thorax. 2013;68(Suppl 2):ii1–ii30.
  • Østergaard EB, Sritharan SS, Kristiansen AD, et al. Barriers and motivational factors towards physical activity in daily life living with copd – an interview based pilot study. Eur Clin Respir J. 2018;5(1):1484654.
  • Stewart KF, Meis JJ, van de Bool C, et al. Maintenance of a physically active lifestyle after pulmonary rehabilitation in patients with copd: a qualitative study toward motivational factors. J Am Med Dir Assoc. 2014;15(9):655–664.
  • Vieira DS, Maltais F, Bourbeau J. Home-based pulmonary rehabilitation in chronic obstructive pulmonary disease patients. Curr Opin Pulm Med. 2010;16(2):134–143.
  • Alsawaier RS. The effect of gamification on motivation and engagement. IJILT. 2018;35(1):56–79.
  • Burgers C, Eden A, van Engelenburg MD, et al. How feedback boosts motivation and play in a brain-training game. Comp Hum Behav. 2015;48:94–103.
  • Mouatt B, Smith AE, Mellow ML, et al. The use of virtual reality to influence motivation, affect, enjoyment, and engagement during exercise: a scoping review. Front Virtual Real. 2020;1:564664.
  • Slater M, Wilbur S. A framework for immersive virtual environments (five): speculations on the role of presence in virtual environments. Presence Teleoperators Virtual Environ. 1997;6(6):603–616.
  • Faria AL, Andrade A, Soares L, et al. Benefits of virtual reality based cognitive rehabilitation through simulated activities of daily living: a randomized controlled trial with stroke patients. J NeuroEngineering Rehabil. 2016;13(1):1–12.
  • Levin MF, Weiss PL, Keshner EA. Emergence of virtual reality as a tool for upper limb rehabilitation: incorporation of motor control and motor learning principles. Phys Ther. 2015;95(3):415–425.
  • Laver KE, Lange B, George S, et al. Virtual reality for stroke rehabilitation. Cochrane Database Syst Rev. 2017;11(11):CD008349.
  • Meyerbröker K, Morina N. The use of virtual reality in assessment and treatment of anxiety and related disorders. Clin Psychol Psychother. 2021;28(3):466–476.
  • Freeman D, Reeve S, Robinson A, et al. Virtual reality in the assessment, understanding, and treatment of mental health disorders. Psychol Med. 2017;47(14):2393–2400.
  • Torres SI, Megias SY, Lopez LL, et al. Videogames in the treatment of obstructive respiratory diseases: a systematic review. Games Health J. 2019;8(4):237–249.
  • Butler SJ, Lee AL, Goldstein RS, et al. Active video games as a training tool for individuals with chronic respiratory diseases: a systematic review. J Cardiopulm Rehabil Prev. 2019;39(2):85–90.
  • Simmich J, Deacon AJ, Russell TG. Active video games for rehabilitation in respiratory conditions: systematic review and meta-analysis. JMIR Serious Games. 2019;7(1):e10116.
  • Wang YQ, Liu X, Ma RC, et al. Active video games as an adjunct to pulmonary rehabilitation of patients with chronic obstructive pulmonary disease: a systematic review and meta-analysis. Am J Phys Med Rehabil. 2020;99(5):372–380.
  • Colombo V, Aliverti A, Sacco M. Virtual reality for copd rehabilitation: a technological perspective. Pulmonology. 2020;28(2):119–133.
  • Kim G, Biocca F. Immersion in virtual reality can increase exercise motivation and physical performance In: International conference on virtual, augmented and mixed reality. Springer; 2018. p. 94–102.
  • Farrow M, Lutteroth C, Rouse PC, et al. Virtual-reality exergaming improves performance during high-intensity interval training. Eur J Sport Sci. 2019;19(6):719–727.
  • Wender CL, Tomporowski PD, Ahn SJG, et al. Virtual reality-based distraction on pain, performance, and anxiety during and after moderate-vigorous intensity cycling. Physiol Behav. 2022;250:113779.
  • Colombo V, Bocca G, Mondellini M, et al. Evaluating the effects of virtual reality on perceived effort during cycling: preliminary results on healthy young adults. In: 2022 IEEE International Symposium on Medical Measurements and Applications (MeMeA); IEEE; 2022. p. 1–6.
  • Zeng N, Pope Z, Gao Z. Acute effect of virtual reality exercise bike games on college students’ physiological and psychological outcomes. Cyberpsychol Behav Soc Netw. 2017;20(7):453–457.
  • Arlati S, Colombo V, Spoladore D, et al. A social virtual reality-based application for the physical and cognitive training of the elderly at home. Sensors. 2019;19(2):261.
  • Pedroli E, Greci L, Colombo D, et al. Characteristics, usability, and users experience of a system combining cognitive and physical therapy in a virtual environment: positive bike. Sensors. 2018;18(7):2343.
  • Chen YH, Chen CL, Huang YZ, et al. Augmented efficacy of intermittent theta burst stimulation on the virtual reality-based cycling training for upper limb function in patients with stroke: a double-blinded, randomized controlled trial. J NeuroEngineering Rehabil. 2021;18(1):1–14.
  • Kashif M, Ahmad A, Bandpei MAM, et al. Effects of virtual reality with motor imagery techniques in patients with parkinson’s disease: study protocol for a randomized controlled trial. Neurodegener Dis. 2020;20(2-3):90–96.
  • Mrakic-Sposta S, Di Santo SG, Franchini F, et al. Effects of combined physical and cognitive virtual reality-based training on cognitive impairment and oxidative stress in mci patients: a pilot study. Front Aging Neurosci. 2018;10:282.
  • O'Donnell DE, Webb KA. The major limitation to exercise performance in copd is dynamic hyperinflation. J Appl Physiol (1985). 2008;105(2):753–755.
  • Dikken JB, Beijnum B, Hofs DH. An integrated virtual group training system for copd patients at home In International Joint Conference on Biomedical Engineering Systems and Technologies; Springer; 2014. p. 346–359.
  • Tekerlek H, Yagli NV, Saglam M, et al. Short-term effects of virtual reality and music with exercise training on affective responses and satisfaction level in patients with chronic respiratory disease. Eur Respiratory Soc. 2017;50:PA2537.
  • Høeg ER, Bruun-Pedersen JR, Serafin S. Virtual reality-based high-intensity interval training for pulmonary rehabilitation: a feasibility and acceptability study. In 2021 IEEE Conference on Virtual Reality and 3D User Interfaces Abstracts and Workshops (VRW); IEEE; 2021. p. 242–249.
  • Kakkera K, Atchley WT, Kodali M, et al. Ageing and chronic obstructive pulmonary disease: interrelationships. Curr Opin Pulmon Med. 2023;29(2):90–95.
  • Agustí A, Celli BR, Criner GJ, et al. Global initiative for chronic obstructive lung disease 2023 report: gold executive summary. Archivos de Bronconeumologia. 2023;61(4):2300239.
  • Luxton N, Alison JA, Wu J, et al. Relationship between field walking tests and incremental cycle ergometry in copd. Respirology. 2008;13(6):856–862.
  • Torriani-Pasin C, Domingues VL, de Freitas TB, et al. Adherence rate, barriers to attend, safety and overall experience of a physical exercise program via telemonitoring during covid-19 pandemic for individuals with parkinson’s disease: a feasibility study. Physiother Res Int. 2022;27(4):e1959.
  • Williams MT, Lewis LK, McKeough Z, et al. Reporting of exercise attendance rates for people with chronic obstructive pulmonary disease: a systematic review. Respirology. 2014;19(1):30–37.
  • Nici L, Donner C, Wouters E, et al. American thoracic society/european respiratory society statement on pulmonary rehabilitation. Am J Respir Crit Care Med. 2006;173(12):1390–1413.
  • Cote CG, Casanova C, Marin J, et al. Validation and comparison of reference equations for the 6-min walk distance test. Eur Respir J. 2008;31(3):571–578.
  • Ries AL. Minimally clinically important difference for the ucsd shortness of breath questionnaire, borg scale, and visual analog scale. COPD: journal of Chronic Obstructive Pulmonary Disease. 2005;2(1):105–110.
  • Khair RM, Nwaneri C, Damico RL, et al. The minimal important difference in borg dyspnea score in pulmonary arterial hypertension. Ann Am Thorac Soc. 2016;13(6):842–849.
  • Laugwitz B, Held T, Schrepp M. Construction and evaluation of a user experience questionnaire In: Symposium of the Austrian HCI and usability engineering group; Springer; 2008. p. 63–76.
  • Jackson SA, Marsh HW. Development and validation of a scale to measure optimal experience: the flow state scale. J Sport Exerc Psychol. 1996;18(1):17–35.
  • Diana B, Villani D, Muzio M, et al. validazione italiana della flow state scale–fss. Flow, benessere e prestazione eccellente Dai modelli teorici alle applicazioni nello sport e in azienda. 2012. 127–141.
  • Woo J, Chan W, Yeung F, et al. A community model of group therapy for the older patients with chronic obstructive pulmonary disease: a pilot study. J Eval Clin Pract. 2006;12(5):523–531.
  • Moorhouse N, Jung T, Shi X, et al. Pulmonary rehabilitation in virtual reality for COPD patients. In: Augmented reality and virtual reality. Springer; 2019. p. 277–290.
  • Wardini R, Dajczman E, Yang N, et al. Using a virtual game system to innovate pulmonary rehabilitation: safety, adherence and enjoyment in severe chronic obstructive pulmonary disease. Can Respir J. 2013;20(5):357–361.
  • Cox NS, McDonald CF, Alison JA, et al. Telerehabilitation versus traditional Centre-based pulmonary rehabilitation for people with chronic respiratory disease: protocol for a randomised controlled trial. BMC Pulm Med. 2018;18(1):1–9.
  • Selzler AM, Simmonds L, Rodgers WM, et al. Pulmonary rehabilitation in chronic obstructive pulmonary disease: predictors of program completion and success. COPD J Chron Obstr Pulmon Dis. 2012;9(5):538–545.
  • Hayton C, Clark A, Olive S, et al. Barriers to pulmonary rehabilitation: characteristics that predict patient attendance and adherence. Respir Med. 2013;107(3):401–407.
  • Albores J, Normandin E, Marolda C, et al. Physiologic variables observed in copd patients while exercising with an interactive activity-promoting video game. In: b 109. Physical activity, walking and pulmonary rehabilitation for COPD. American Thoracic Society; 2011. p. A3969–A3969.
  • Berry MJ, Sheilds KL, Adair NE. Comparison of effects of endurance and strength training programs in patients with copd. COPD J Chron Obstruct Pulmon Dis. 2018;15(2):192–199.
  • Jung T, Moorhouse N, Shi X, et al. A virtual reality–supported intervention for pulmonary rehabilitation of patients with chronic obstructive pulmonary disease: mixed methods study. J Med Internet Res. 2020;22(7):e14178.

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