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Polfuss M, Smith K, Hopson B, Moosreiner A, Huang CC, Ravelli MN, Ding D, Huang Z, Rocque BG, White-Traut R, Van Speybroeck A, Sawin KJ. Body Composition and Energy Expenditure in Youth With Spina Bifida: Protocol for a Multisite, Cross-Sectional Study. JMIR Res Protoc 2024; 13:e52779. [PMID: 38954458 PMCID: PMC11252625 DOI: 10.2196/52779] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 09/14/2023] [Revised: 05/09/2024] [Accepted: 05/10/2024] [Indexed: 07/04/2024] Open
Abstract
BACKGROUND Obesity prevalence in youth with spina bifida is higher than in their typically developing peers. Obesity is associated with lifelong medical, psychological, and economic burdens. Successful prevention or treatment of obesity in individuals with spina bifida is compromised by (1) the lack of valid and reliable methods to identify body fat in a clinical setting and (2) limited data on energy expenditure that are necessary to provide daily caloric recommendations. OBJECTIVE The objectives of this study will be to develop 2 algorithms for use in youth with spina bifida in a clinical setting, one to model body fat and one to predict total daily energy expenditure. In addition, physical activity and dietary intake will be described for the sample. METHODS This multisite, prospective, national clinical study will enroll 232 youth with myelomeningocele aged 5 to 18 years (stratified by age and mobility). Participants will be enrolled for 1 week. Data obtained include 4 measures of body composition, up to 5 height measures, a ramped activity protocol, and a nutrition and physical activity screener. Participants will wear an accelerometer for the week. On the final study day, 2 samples of urine or saliva, which complete the doubly labeled water protocol, will be obtained. The analysis will include descriptive statistics, Bland-Altman plots, concordance correlation, and regression analysis. RESULTS The study received extramural federal funding in July 2019. Data collection was initiated in March 2020. As of April 2024, a total of 143 (female participants: n=76, 53.1%; male participants: n=67, 46.9%) out of 232 participants have been enrolled. Data collection is expected to continue throughout 2024. A no-cost extension until November 2025 will be requested for data analysis and dissemination of findings. CONCLUSIONS This study furthers previous pilot work that confirmed the acceptability and feasibility of obtaining alternate height, body composition, and energy expenditure measures. The findings from this study will enhance screening, prevention, and treatment of abnormal weight status by facilitating the accurate identification of youths' weight status category and recommendations of daily caloric needs for this population that is at higher risk of obesity. Furthermore, the findings have the potential to impact outcomes for youth diagnosed with disabilities other than spina bifida who experience similar challenges related to alterations in body composition or fat distribution or measurement challenges secondary to mobility issues or musculoskeletal problems. INTERNATIONAL REGISTERED REPORT IDENTIFIER (IRRID) DERR1-10.2196/52779.
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Affiliation(s)
- Michele Polfuss
- School of Nursing, College of Health Professions and Sciences, University of Wisconsin - Milwaukee, Milwaukee, WI, United States
- Department of Nursing Research and Evidence-Based Practice, Children's Wisconsin, Milwaukee, WI, United States
| | - Kathryn Smith
- Department of Pediatrics, USC Keck School of Medicine, Children's Hospital of Los Angeles, Los Angeles, CA, United States
| | - Betsy Hopson
- Department of Mediciine, University of Alabama at Birmingham, Birmingham, AL, United States
| | - Andrea Moosreiner
- Clinical and Translational Science Institute, Medical College of Wisconsin, Milwaukee, WI, United States
| | - Chiang-Ching Huang
- Zilber College of Public Health, University of Wisconsin - Milwaukee, Milwaukee, WI, United States
| | - Michele N Ravelli
- Biotechnology Center, University of Wisconsin - Madison, Madison, WI, United States
| | - Dan Ding
- Department of Rehabilitation Science and Technology, University of Pittsburgh, Pittsburgh, PA, United States
| | - Zijian Huang
- Department of Rehabilitation Science and Technology, University of Pittsburgh, Pittsburgh, PA, United States
| | - Brandon G Rocque
- Department of Neurosurgery, University of Alabama at Birmingham, Birmingham, AL, United States
| | - Rosemary White-Traut
- Department of Nursing Research and Evidence-Based Practice, Children's Wisconsin, Milwaukee, WI, United States
- College of Nursing, University of Illinois at Chicago, Chicago, IL, United States
| | - Alexander Van Speybroeck
- Division of General Pediatrics, USC Keck School of Medicine, Children's Hospital of Los Angeles, Los Angeles, CA, United States
| | - Kathleen J Sawin
- School of Nursing, College of Health Professions and Sciences, University of Wisconsin - Milwaukee, Milwaukee, WI, United States
- Department of Nursing Research and Evidence-Based Practice, Children's Wisconsin, Milwaukee, WI, United States
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Tao G, Charm G, Kabacińska K, Miller WC, Robillard JM. Evaluation Tools for Assistive Technologies: A Scoping Review. Arch Phys Med Rehabil 2020; 101:1025-1040. [PMID: 32059944 DOI: 10.1016/j.apmr.2020.01.008] [Citation(s) in RCA: 9] [Impact Index Per Article: 1.8] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 12/12/2019] [Accepted: 01/02/2020] [Indexed: 11/28/2022]
Abstract
OBJECTIVE Assistive technologies (ATs) support independence and well-being in people with cognitive, perceptual, and physical limitations. Given the increasing availability and diversity of ATs, evaluating the usefulness of current and emerging ATs is crucial for informed comparison. We aimed to chart the landscape and development of AT evaluation tools (ETs; ATETs) across disparate fields in order to improve the process of AT evaluation and development. DATA SOURCES We performed a scoping review of ATETs through database searching of MEDLINE, Embase, CINAHL, HaPI, PsycINFO, Cochrane Reviews, and Compendex as well as citation mining. STUDY SELECTION Articles explicitly referencing ATETs were retained for screening. We included ETs if they were designed to specifically evaluate ATs. DATA EXTRACTION We extracted 5 attributes of ATETs: AT category, construct evaluated, conceptual frameworks, type of end user input used for ATET development, and presence of validity testing. DATA SYNTHESIS From screening 23,434 records, we included 159 ATETs. Specificity of tools ranged from single to general ATs across 40 AT categories. Satisfaction, functional performance, and usage were the most common constructs of 103 identified. We identified 34 conceptual frameworks across 53 ETs. Finally, 36% incorporated end user input and 80% showed validation testing. CONCLUSIONS We characterized a wide range of AT categories with diverse approaches to their evaluation based on varied conceptual frameworks. Combining these frameworks in future ATETs may provide more holistic views of AT usefulness. ATET selection may be improved with guidelines for conceptually reconciling results of disparate ATETs. Future ATET development may benefit from more integrated approaches to end user engagement.
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Affiliation(s)
- Gordon Tao
- GF Strong Rehabilitation Research Lab, Vancouver Coastal Research Institute, Vancouver, British Columbia; Department of Occupational Science and Occupational Therapy, The University of British Columbia, Vancouver, British Columbia
| | - Geoffrey Charm
- GF Strong Rehabilitation Research Lab, Vancouver Coastal Research Institute, Vancouver, British Columbia; Department of Integrated Sciences, The University of British Columbia, Vancouver, British Columbia
| | - Katarzyna Kabacińska
- Division of Neurology, Department of Medicine, The University of British Columbia, Vancouver, British Columbia
| | - William C Miller
- GF Strong Rehabilitation Research Lab, Vancouver Coastal Research Institute, Vancouver, British Columbia; Department of Occupational Science and Occupational Therapy, The University of British Columbia, Vancouver, British Columbia
| | - Julie M Robillard
- Division of Neurology, Department of Medicine, The University of British Columbia, Vancouver, British Columbia; British Columbia Women's and Children's Hospital, Vancouver, British Columbia, Canada.
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Song JZ, Catizzone M, Arbour-Nicitopoulos KP, Luong D, Perrier L, Bayley M, Munce SEP. Physical performance outcome measures used in exercise interventions for adults with childhood-onset disabilities: A scoping review. NeuroRehabilitation 2020; 47:359-380. [PMID: 33164958 DOI: 10.3233/nre-203250] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.2] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/21/2022]
Abstract
BACKGROUND People with childhood-onset disabilities face unique physical and social challenges in adulthood. Exercise interventions may improve physical performance in children, but there is a lack of research on adults. OBJECTIVE To describe studies that investigate exercise interventions and to evaluate the quality of physical performance outcome measures for adults with childhood-onset disabilities. METHODS Eligible studies reported on exercise interventions for adults (ages 16+) with cerebral palsy, spina bifida, or acquired brain injuries. Only randomized controlled trials published in English from 2008 to 2019 were included. MEDLINE, CINAHL, PEDro, EMBASE, and Cochrane Central Register of Controlled Trials were searched. Two reviewers independently screened studies and abstracted data. RESULTS This scoping review included 4 trials reporting on cerebral palsy only. Three strength training programs found significant improvements in gait, and one mixed training program found significant improvements in strength and fitness. Only two outcome measures used are valid/reliable for adults (6 Minute Walk Test and Borg-20 Grades). CONCLUSION Certain interventions may improve physical performance, but there is a lack of research on appropriate exercise interventions and physical performance outcome measures for adults with childhood-onset disabilities. Different exercise interventions should be investigated using larger sample sizes and outcome measures should be standardized.
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Affiliation(s)
- Jessica Z Song
- Toronto Rehabilitation Institute - University Health Network, Toronto, ON, Canada
| | - Margot Catizzone
- Toronto Rehabilitation Institute - University Health Network, Toronto, ON, Canada
| | | | - Dorothy Luong
- Toronto Rehabilitation Institute - University Health Network, Toronto, ON, Canada
| | - Laure Perrier
- University of Toronto Libraries, Toronto, ON, Canada
| | - Mark Bayley
- Toronto Rehabilitation Institute - University Health Network, Toronto, ON, Canada
| | - Sarah E P Munce
- Toronto Rehabilitation Institute - University Health Network, Toronto, ON, Canada
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Crytzer TM, Keramati M, Anthony SJ, Cheng YT, Robertson RJ, Dicianno BE. Exercise Prescription Using a Group-Normalized Rating of Perceived Exertion in Adolescents and Adults With Spina Bifida. PM R 2018; 10:738-747. [PMID: 29408563 DOI: 10.1016/j.pmrj.2018.01.004] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 04/02/2017] [Revised: 01/12/2018] [Accepted: 01/20/2018] [Indexed: 11/18/2022]
Abstract
BACKGROUND People with spina bifida (SB) face personal and environmental barriers to exercise that contribute to physical inactivity, obesity, risk of cardiovascular disease, and poor aerobic fitness. The WHEEL rating of perceived exertion (RPE) Scale was validated in people with SB to monitor exercise intensity. However, the psycho-physiological link between RPE and ventilatory breakpoint (Vpt), the group-normalized perceptual response, has not been determined and would provide a starting point for aerobic exercise in this cohort. OBJECTIVES The primary objectives were to determine the group-normalized RPE equivalent to Vpt based on WHEEL and Borg Scale ratings and to develop a regression model to predict Borg Scale (conditional metric) from WHEEL Scale (criterion metric). The secondary objective was to create a table of interchangeable values between WHEEL and Borg Scale RPE for people with SB performing a load incremental stress test. DESIGN Cross-sectional observational. SETTING University laboratory. PARTICIPANTS Twenty-nine participants with SB. METHODS Participants completed a load incremented arm ergometer exercise stress test. WHEEL and Borg Scale ratings were recorded the last 15 seconds of each 1-minute test phase. OUTCOME MEASURES WHEEL and Borg Scale ratings, metabolic measures (eg, oxygen consumption, carbon dioxide production). Determined Vpt via plots of oxygen consumption and carbon dioxide production against time. RESULTS Nineteen of 29 participants achieved Vpt (Group A). The mean ± standard deviation peak oxygen consumption at Vpt for Group A was 61.76 ± 16.26. The WHEEL and Borg Scale RPE at Vpt were 5.74 ± 2.58 (range 0-10) and 13.95 ± 3.50 (range 6-19), respectively. A significant linear regression model was developed (Borg Scale rating = 1.22 × WHEEL Scale rating + 7.14) and used to create a WHEEL-to-Borg Scale RPE conversion table. CONCLUSION A significant linear regression model and table of interchangeable values was developed for participants with SB. The group-normalized RPE (WHEEL, 5.74; Borg, 13.95) can be used to prescribe and self-regulate arm ergometer exercise intensity approximating the Vpt. LEVEL OF EVIDENCE III.
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Affiliation(s)
- Theresa M Crytzer
- Human Engineering Research Laboratories, Veterans Affairs Pittsburgh Healthcare System; and Department of Rehabilitation Science and Technology, School of Health and Rehabilitation Sciences, University of Pittsburgh, Bakery Square, 6425 Penn Avenue, Suite 400, Pittsburgh, PA 15206
- Department of Physical Medicine and Rehabilitation, University of Pittsburgh, School of Medicine, Pittsburgh, PA
- Endocrine and Metabolism Laboratory, School of Medicine, University of Pittsburgh Medical Center, Pittsburgh, PA
- Department of Rehabilitation Science and Technology, School of Health and Rehabilitation Sciences, University of Pittsburgh, Pittsburgh, PA
- Center for Exercise and Health-Fitness Research, School of Education, University of Pittsburgh, Pittsburgh, PA
- Human Engineering Research Laboratories, Veterans Affairs Pittsburgh Healthcare System; Department of Rehabilitation Science and Technology, School of Health and Rehabilitation Sciences, University of Pittsburgh; and Department of Physical Medicine and Rehabilitation School of Medicine, University of Pittsburgh, Pittsburgh, PA
| | - Mariam Keramati
- Human Engineering Research Laboratories, Veterans Affairs Pittsburgh Healthcare System; and Department of Rehabilitation Science and Technology, School of Health and Rehabilitation Sciences, University of Pittsburgh, Bakery Square, 6425 Penn Avenue, Suite 400, Pittsburgh, PA 15206
- Department of Physical Medicine and Rehabilitation, University of Pittsburgh, School of Medicine, Pittsburgh, PA
- Endocrine and Metabolism Laboratory, School of Medicine, University of Pittsburgh Medical Center, Pittsburgh, PA
- Department of Rehabilitation Science and Technology, School of Health and Rehabilitation Sciences, University of Pittsburgh, Pittsburgh, PA
- Center for Exercise and Health-Fitness Research, School of Education, University of Pittsburgh, Pittsburgh, PA
- Human Engineering Research Laboratories, Veterans Affairs Pittsburgh Healthcare System; Department of Rehabilitation Science and Technology, School of Health and Rehabilitation Sciences, University of Pittsburgh; and Department of Physical Medicine and Rehabilitation School of Medicine, University of Pittsburgh, Pittsburgh, PA
| | - Steven J Anthony
- Human Engineering Research Laboratories, Veterans Affairs Pittsburgh Healthcare System; and Department of Rehabilitation Science and Technology, School of Health and Rehabilitation Sciences, University of Pittsburgh, Bakery Square, 6425 Penn Avenue, Suite 400, Pittsburgh, PA 15206
- Department of Physical Medicine and Rehabilitation, University of Pittsburgh, School of Medicine, Pittsburgh, PA
- Endocrine and Metabolism Laboratory, School of Medicine, University of Pittsburgh Medical Center, Pittsburgh, PA
- Department of Rehabilitation Science and Technology, School of Health and Rehabilitation Sciences, University of Pittsburgh, Pittsburgh, PA
- Center for Exercise and Health-Fitness Research, School of Education, University of Pittsburgh, Pittsburgh, PA
- Human Engineering Research Laboratories, Veterans Affairs Pittsburgh Healthcare System; Department of Rehabilitation Science and Technology, School of Health and Rehabilitation Sciences, University of Pittsburgh; and Department of Physical Medicine and Rehabilitation School of Medicine, University of Pittsburgh, Pittsburgh, PA
| | - Yu-Ting Cheng
- Human Engineering Research Laboratories, Veterans Affairs Pittsburgh Healthcare System; and Department of Rehabilitation Science and Technology, School of Health and Rehabilitation Sciences, University of Pittsburgh, Bakery Square, 6425 Penn Avenue, Suite 400, Pittsburgh, PA 15206
- Department of Physical Medicine and Rehabilitation, University of Pittsburgh, School of Medicine, Pittsburgh, PA
- Endocrine and Metabolism Laboratory, School of Medicine, University of Pittsburgh Medical Center, Pittsburgh, PA
- Department of Rehabilitation Science and Technology, School of Health and Rehabilitation Sciences, University of Pittsburgh, Pittsburgh, PA
- Center for Exercise and Health-Fitness Research, School of Education, University of Pittsburgh, Pittsburgh, PA
- Human Engineering Research Laboratories, Veterans Affairs Pittsburgh Healthcare System; Department of Rehabilitation Science and Technology, School of Health and Rehabilitation Sciences, University of Pittsburgh; and Department of Physical Medicine and Rehabilitation School of Medicine, University of Pittsburgh, Pittsburgh, PA
| | - Robert J Robertson
- Human Engineering Research Laboratories, Veterans Affairs Pittsburgh Healthcare System; and Department of Rehabilitation Science and Technology, School of Health and Rehabilitation Sciences, University of Pittsburgh, Bakery Square, 6425 Penn Avenue, Suite 400, Pittsburgh, PA 15206
- Department of Physical Medicine and Rehabilitation, University of Pittsburgh, School of Medicine, Pittsburgh, PA
- Endocrine and Metabolism Laboratory, School of Medicine, University of Pittsburgh Medical Center, Pittsburgh, PA
- Department of Rehabilitation Science and Technology, School of Health and Rehabilitation Sciences, University of Pittsburgh, Pittsburgh, PA
- Center for Exercise and Health-Fitness Research, School of Education, University of Pittsburgh, Pittsburgh, PA
- Human Engineering Research Laboratories, Veterans Affairs Pittsburgh Healthcare System; Department of Rehabilitation Science and Technology, School of Health and Rehabilitation Sciences, University of Pittsburgh; and Department of Physical Medicine and Rehabilitation School of Medicine, University of Pittsburgh, Pittsburgh, PA
| | - Brad E Dicianno
- Human Engineering Research Laboratories, Veterans Affairs Pittsburgh Healthcare System; and Department of Rehabilitation Science and Technology, School of Health and Rehabilitation Sciences, University of Pittsburgh, Bakery Square, 6425 Penn Avenue, Suite 400, Pittsburgh, PA 15206
- Department of Physical Medicine and Rehabilitation, University of Pittsburgh, School of Medicine, Pittsburgh, PA
- Endocrine and Metabolism Laboratory, School of Medicine, University of Pittsburgh Medical Center, Pittsburgh, PA
- Department of Rehabilitation Science and Technology, School of Health and Rehabilitation Sciences, University of Pittsburgh, Pittsburgh, PA
- Center for Exercise and Health-Fitness Research, School of Education, University of Pittsburgh, Pittsburgh, PA
- Human Engineering Research Laboratories, Veterans Affairs Pittsburgh Healthcare System; Department of Rehabilitation Science and Technology, School of Health and Rehabilitation Sciences, University of Pittsburgh; and Department of Physical Medicine and Rehabilitation School of Medicine, University of Pittsburgh, Pittsburgh, PA
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Crytzer TM, Cheng YT, Bryner MJ, Wilson Iii R, Sciurba FC, Dicianno BE. Impact of neurological level and spinal curvature on pulmonary function in adults with spina bifida. J Pediatr Rehabil Med 2018; 11:243-254. [PMID: 30741703 DOI: 10.3233/prm-179451] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Submit a Manuscript] [Subscribe] [Scholar Register] [Indexed: 11/15/2022] Open
Abstract
PURPOSE To describe pulmonary function and determine the impact of neurological level, scoliosis, and obesity on pulmonary function in people with spina bifida (SB). METHODS Participants with SB (N= 29) (15 females; age, 30 ± 12 years) completed spirometry and body plethysmographic lung volume testing. Univariate and multivariate regression analyses were used to describe the factors associated with pulmonary function in people with SB. RESULTS Distribution of category of impairment in pulmonary function was: 55% (n= 16) restricted, 6.9% (n= 2) spirometric restricted, 1 combined obstructed and restricted, and 35.5% (n= 10) normal. In univariate analyses, neurological level was negatively associated with pulmonary function parameters, i.e., forced vital capacity (FVC) (p= 0.005), forced expiratory volume in 1 second (FEV1) (p= 0.008), total lung capacity (TLC) (p= 0.001), and degree of scoliosis were inversely associated with FVC (p= 0.005), FEV1 (p= 0.003), and TLC (p= 0.004). In multivariate models, level of lesion and degree of scoliosis independently contributed to the degree of lung function impairment. Restrictive pulmonary function was observed in 9/10 (90%) of those with thoracic neurological levels and was associated with decreased inspiratory capacity (IC) and expiratory reserve volume (ERV). Lumbar level lesions were associated with either normal lung function or an isolated reduction in FVC due to reduction in only ERV and preserved TLC representing spirometric restriction. CONCLUSIONS High prevalence of restrictive pulmonary physiology is present in people with SB, with more rostral neurological levels and greater degree of scoliosis associated with a higher degree of pulmonary function impairment.
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Affiliation(s)
- Theresa M Crytzer
- Human Engineering Research Laboratories, Veterans Affairs Pittsburgh Healthcare System, Pittsburgh, PA, USA.,Department of Rehabilitation Science and Technology, School of Health and Rehabilitation Sciences, University of Pittsburgh, Pittsburgh, PA, USA.,Center for Assistive Technology, University of Pittsburgh Medical Center, Pittsburgh, PA, USA
| | - Yu-Ting Cheng
- Department of Rehabilitation Science and Technology, School of Health and Rehabilitation Sciences, University of Pittsburgh, Pittsburgh, PA, USA
| | - Mary Jo Bryner
- Division of Pulmonary, Allergy, and Critical Care Medicine, Emphysema COPD Research Center, Department of Medicine, University of Pittsburgh, Pittsburgh, PA, USA
| | - Robert Wilson Iii
- Division of Pulmonary, Allergy, and Critical Care Medicine, Emphysema COPD Research Center, Department of Medicine, University of Pittsburgh, Pittsburgh, PA, USA
| | - Frank C Sciurba
- Division of Pulmonary, Allergy, and Critical Care Medicine, Emphysema COPD Research Center, Department of Medicine, University of Pittsburgh, Pittsburgh, PA, USA.,Human Engineering Research Laboratories, Veterans Affairs Pittsburgh Healthcare System, Pittsburgh, PA, USA
| | - Brad E Dicianno
- Human Engineering Research Laboratories, Veterans Affairs Pittsburgh Healthcare System, Pittsburgh, PA, USA.,Department of Rehabilitation Science and Technology, School of Health and Rehabilitation Sciences, University of Pittsburgh, Pittsburgh, PA, USA.,Center for Assistive Technology, University of Pittsburgh Medical Center, Pittsburgh, PA, USA.,Department of Physical Medicine and Rehabilitation, School of Medicine, University of Pittsburgh, Pittsburgh, PA, USA.,Adult Spina Bifida Clinic, University of Pittsburgh Medical Center, Pittsburgh, PA, USA.,Human Engineering Research Laboratories, Veterans Affairs Pittsburgh Healthcare System, Pittsburgh, PA, USA
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Fremion E, Morrison-Jacobus M, Castillo J, Castillo H, Ostermaier K. A chronic care model for spina bifida transition. J Pediatr Rehabil Med 2017; 10:243-247. [PMID: 29125512 DOI: 10.3233/prm-170451] [Citation(s) in RCA: 9] [Impact Index Per Article: 1.1] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Submit a Manuscript] [Subscribe] [Scholar Register] [Indexed: 11/15/2022] Open
Abstract
Providing comprehensive transition care for adolescents and young adults with spina bifida (AYASB) requires a structured approach to addressing chronic condition management, self-management, care coordination, and health care navigation that is adaptable to the various levels of cognitive ability, physical function, and family/community environments within the population. This commentary (1) highlights AYASB transition program needs identified in the literature and within a local community, (2) analyzes advantages and limitations of published AYASB transition care models in addressing these needs, (3) demonstrates how a spina bifida (SB) transition clinic used the Chronic Care Model (CCM) to develop a comprehensive AYASB transition program, and (4) examines the potential feasibility in adapting this model to other SB clinics. A SB-specific transition clinic based on the CCM model facilitates the complex chronic care management and transition planning for AYASB. Further study is needed to evaluate health care outcomes using the CCM for SB transition.
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Affiliation(s)
- Ellen Fremion
- Center for Transition Medicine, Baylor College of Medicine, Houston, TX, USA.,Texas Children's Hospital Spina Bifida Transition Clinic, Houston, TX, USA
| | | | - Jonathan Castillo
- Developmental Pediatrics, Department of Pediatrics, Baylor College of Medicine, Houston, TX, USA
| | - Heidi Castillo
- Developmental Pediatrics, Department of Pediatrics, Baylor College of Medicine, Houston, TX, USA
| | - Kathryn Ostermaier
- Developmental Pediatrics, Department of Pediatrics, Baylor College of Medicine, Houston, TX, USA
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