Cyborg beast: a low-cost 3d-printed prosthetic hand for children with upper-limb differences

There is an increasing number of children with traumatic and congenital hand amputations or reductions. Children's prosthetic needs are complex due to their small size, constant growth, and psychosocial development. Families' financial resources play a crucial role in the prescription of p...

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Published inBMC research notes Vol. 8; no. 1; p. 10
Main Authors Zuniga, Jorge, Katsavelis, Dimitrios, Peck, Jean, Stollberg, John, Petrykowski, Marc, Carson, Adam, Fernandez, Cristina
Format Journal Article
LanguageEnglish
Published England BioMed Central Ltd 20.01.2015
BioMed Central
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Abstract There is an increasing number of children with traumatic and congenital hand amputations or reductions. Children's prosthetic needs are complex due to their small size, constant growth, and psychosocial development. Families' financial resources play a crucial role in the prescription of prostheses for their children, especially when private insurance and public funding are insufficient. Electric-powered (i.e., myoelectric) and body-powered (i.e., mechanical) devices have been developed to accommodate children's needs, but the cost of maintenance and replacement represents an obstacle for many families. Due to the complexity and high cost of these prosthetic hands, they are not accessible to children from low-income, uninsured families or to children from developing countries. Advancements in computer-aided design (CAD) programs, additive manufacturing, and image editing software offer the possibility of designing, printing, and fitting prosthetic hands devices at a distance and at very low cost. The purpose of this preliminary investigation was to describe a low-cost three-dimensional (3D)-printed prosthetic hand for children with upper-limb reductions and to propose a prosthesis fitting methodology that can be performed at a distance. No significant mean differences were found between the anthropometric and range of motion measurements taken directly from the upper limbs of subjects versus those extracted from photographs. The Bland and Altman plots show no major bias and narrow limits of agreements for lengths and widths and small bias and wider limits of agreements for the range of motion measurements. The main finding of the survey was that our prosthetic device may have a significant potential to positively impact quality of life and daily usage, and can be incorporated in several activities at home and in school. This investigation describes a low-cost 3D-printed prosthetic hand for children and proposes a distance fitting procedure. The Cyborg Beast prosthetic hand and the proposed distance-fitting procedures may represent a possible low-cost alternative for children in developing countries and those who have limited access to health care providers. Further studies should examine the functionality, validity, durability, benefits, and rejection rate of this type of low-cost 3D-printed prosthetic device.
AbstractList Background There is an increasing number of children with traumatic and congenital hand amputations or reductions. Children's prosthetic needs are complex due to their small size, constant growth, and psychosocial development. Families' financial resources play a crucial role in the prescription of prostheses for their children, especially when private insurance and public funding are insufficient. Electric-powered (i.e., myoelectric) and body-powered (i.e., mechanical) devices have been developed to accommodate children's needs, but the cost of maintenance and replacement represents an obstacle for many families. Due to the complexity and high cost of these prosthetic hands, they are not accessible to children from low-income, uninsured families or to children from developing countries. Advancements in computer-aided design (CAD) programs, additive manufacturing, and image editing software offer the possibility of designing, printing, and fitting prosthetic hands devices at a distance and at very low cost. The purpose of this preliminary investigation was to describe a low-cost three-dimensional (3D)-printed prosthetic hand for children with upper-limb reductions and to propose a prosthesis fitting methodology that can be performed at a distance. Results No significant mean differences were found between the anthropometric and range of motion measurements taken directly from the upper limbs of subjects versus those extracted from photographs. The Bland and Altman plots show no major bias and narrow limits of agreements for lengths and widths and small bias and wider limits of agreements for the range of motion measurements. The main finding of the survey was that our prosthetic device may have a significant potential to positively impact quality of life and daily usage, and can be incorporated in several activities at home and in school. Conclusions This investigation describes a low-cost 3D-printed prosthetic hand for children and proposes a distance fitting procedure. The Cyborg Beast prosthetic hand and the proposed distance-fitting procedures may represent a possible low-cost alternative for children in developing countries and those who have limited access to health care providers. Further studies should examine the functionality, validity, durability, benefits, and rejection rate of this type of low-cost 3D-printed prosthetic device. Keywords: 3D printing, Computer-aided design, Low-cost prosthesis, Custom-made prosthesis, Prosthesis for children
There is an increasing number of children with traumatic and congenital hand amputations or reductions. Children's prosthetic needs are complex due to their small size, constant growth, and psychosocial development. Families' financial resources play a crucial role in the prescription of prostheses for their children, especially when private insurance and public funding are insufficient. Electric-powered (i.e., myoelectric) and body-powered (i.e., mechanical) devices have been developed to accommodate children's needs, but the cost of maintenance and replacement represents an obstacle for many families. Due to the complexity and high cost of these prosthetic hands, they are not accessible to children from low-income, uninsured families or to children from developing countries. Advancements in computer-aided design (CAD) programs, additive manufacturing, and image editing software offer the possibility of designing, printing, and fitting prosthetic hands devices at a distance and at very low cost. The purpose of this preliminary investigation was to describe a low-cost three-dimensional (3D)-printed prosthetic hand for children with upper-limb reductions and to propose a prosthesis fitting methodology that can be performed at a distance. No significant mean differences were found between the anthropometric and range of motion measurements taken directly from the upper limbs of subjects versus those extracted from photographs. The Bland and Altman plots show no major bias and narrow limits of agreements for lengths and widths and small bias and wider limits of agreements for the range of motion measurements. The main finding of the survey was that our prosthetic device may have a significant potential to positively impact quality of life and daily usage, and can be incorporated in several activities at home and in school. This investigation describes a low-cost 3D-printed prosthetic hand for children and proposes a distance fitting procedure. The Cyborg Beast prosthetic hand and the proposed distance-fitting procedures may represent a possible low-cost alternative for children in developing countries and those who have limited access to health care providers. Further studies should examine the functionality, validity, durability, benefits, and rejection rate of this type of low-cost 3D-printed prosthetic device.
There is an increasing number of children with traumatic and congenital hand amputations or reductions. Children's prosthetic needs are complex due to their small size, constant growth, and psychosocial development. Families' financial resources play a crucial role in the prescription of prostheses for their children, especially when private insurance and public funding are insufficient. Electric-powered (i.e., myoelectric) and body-powered (i.e., mechanical) devices have been developed to accommodate children's needs, but the cost of maintenance and replacement represents an obstacle for many families. Due to the complexity and high cost of these prosthetic hands, they are not accessible to children from low-income, uninsured families or to children from developing countries. Advancements in computer-aided design (CAD) programs, additive manufacturing, and image editing software offer the possibility of designing, printing, and fitting prosthetic hands devices at a distance and at very low cost. The purpose of this preliminary investigation was to describe a low-cost three-dimensional (3D)-printed prosthetic hand for children with upper-limb reductions and to propose a prosthesis fitting methodology that can be performed at a distance.BACKGROUNDThere is an increasing number of children with traumatic and congenital hand amputations or reductions. Children's prosthetic needs are complex due to their small size, constant growth, and psychosocial development. Families' financial resources play a crucial role in the prescription of prostheses for their children, especially when private insurance and public funding are insufficient. Electric-powered (i.e., myoelectric) and body-powered (i.e., mechanical) devices have been developed to accommodate children's needs, but the cost of maintenance and replacement represents an obstacle for many families. Due to the complexity and high cost of these prosthetic hands, they are not accessible to children from low-income, uninsured families or to children from developing countries. Advancements in computer-aided design (CAD) programs, additive manufacturing, and image editing software offer the possibility of designing, printing, and fitting prosthetic hands devices at a distance and at very low cost. The purpose of this preliminary investigation was to describe a low-cost three-dimensional (3D)-printed prosthetic hand for children with upper-limb reductions and to propose a prosthesis fitting methodology that can be performed at a distance.No significant mean differences were found between the anthropometric and range of motion measurements taken directly from the upper limbs of subjects versus those extracted from photographs. The Bland and Altman plots show no major bias and narrow limits of agreements for lengths and widths and small bias and wider limits of agreements for the range of motion measurements. The main finding of the survey was that our prosthetic device may have a significant potential to positively impact quality of life and daily usage, and can be incorporated in several activities at home and in school.RESULTSNo significant mean differences were found between the anthropometric and range of motion measurements taken directly from the upper limbs of subjects versus those extracted from photographs. The Bland and Altman plots show no major bias and narrow limits of agreements for lengths and widths and small bias and wider limits of agreements for the range of motion measurements. The main finding of the survey was that our prosthetic device may have a significant potential to positively impact quality of life and daily usage, and can be incorporated in several activities at home and in school.This investigation describes a low-cost 3D-printed prosthetic hand for children and proposes a distance fitting procedure. The Cyborg Beast prosthetic hand and the proposed distance-fitting procedures may represent a possible low-cost alternative for children in developing countries and those who have limited access to health care providers. Further studies should examine the functionality, validity, durability, benefits, and rejection rate of this type of low-cost 3D-printed prosthetic device.CONCLUSIONSThis investigation describes a low-cost 3D-printed prosthetic hand for children and proposes a distance fitting procedure. The Cyborg Beast prosthetic hand and the proposed distance-fitting procedures may represent a possible low-cost alternative for children in developing countries and those who have limited access to health care providers. Further studies should examine the functionality, validity, durability, benefits, and rejection rate of this type of low-cost 3D-printed prosthetic device.
BACKGROUND: There is an increasing number of children with traumatic and congenital hand amputations or reductions. Children's prosthetic needs are complex due to their small size, constant growth, and psychosocial development. Families' financial resources play a crucial role in the prescription of prostheses for their children, especially when private insurance and public funding are insufficient. Electric-powered (i.e., myoelectric) and body-powered (i.e., mechanical) devices have been developed to accommodate children's needs, but the cost of maintenance and replacement represents an obstacle for many families. Due to the complexity and high cost of these prosthetic hands, they are not accessible to children from low-income, uninsured families or to children from developing countries. Advancements in computer-aided design (CAD) programs, additive manufacturing, and image editing software offer the possibility of designing, printing, and fitting prosthetic hands devices at a distance and at very low cost. The purpose of this preliminary investigation was to describe a low-cost three-dimensional (3D)-printed prosthetic hand for children with upper-limb reductions and to propose a prosthesis fitting methodology that can be performed at a distance. RESULTS: No significant mean differences were found between the anthropometric and range of motion measurements taken directly from the upper limbs of subjects versus those extracted from photographs. The Bland and Altman plots show no major bias and narrow limits of agreements for lengths and widths and small bias and wider limits of agreements for the range of motion measurements. The main finding of the survey was that our prosthetic device may have a significant potential to positively impact quality of life and daily usage, and can be incorporated in several activities at home and in school. CONCLUSIONS: This investigation describes a low-cost 3D-printed prosthetic hand for children and proposes a distance fitting procedure. The Cyborg Beast prosthetic hand and the proposed distance-fitting procedures may represent a possible low-cost alternative for children in developing countries and those who have limited access to health care providers. Further studies should examine the functionality, validity, durability, benefits, and rejection rate of this type of low-cost 3D-printed prosthetic device.
There is an increasing number of children with traumatic and congenital hand amputations or reductions. Children's prosthetic needs are complex due to their small size, constant growth, and psychosocial development. Families' financial resources play a crucial role in the prescription of prostheses for their children, especially when private insurance and public funding are insufficient. Electric-powered (i.e., myoelectric) and body-powered (i.e., mechanical) devices have been developed to accommodate children's needs, but the cost of maintenance and replacement represents an obstacle for many families. Due to the complexity and high cost of these prosthetic hands, they are not accessible to children from low-income, uninsured families or to children from developing countries. Advancements in computer-aided design (CAD) programs, additive manufacturing, and image editing software offer the possibility of designing, printing, and fitting prosthetic hands devices at a distance and at very low cost. The purpose of this preliminary investigation was to describe a low-cost three-dimensional (3D)-printed prosthetic hand for children with upper-limb reductions and to propose a prosthesis fitting methodology that can be performed at a distance. No significant mean differences were found between the anthropometric and range of motion measurements taken directly from the upper limbs of subjects versus those extracted from photographs. The Bland and Altman plots show no major bias and narrow limits of agreements for lengths and widths and small bias and wider limits of agreements for the range of motion measurements. The main finding of the survey was that our prosthetic device may have a significant potential to positively impact quality of life and daily usage, and can be incorporated in several activities at home and in school. This investigation describes a low-cost 3D-printed prosthetic hand for children and proposes a distance fitting procedure. The Cyborg Beast prosthetic hand and the proposed distance-fitting procedures may represent a possible low-cost alternative for children in developing countries and those who have limited access to health care providers. Further studies should examine the functionality, validity, durability, benefits, and rejection rate of this type of low-cost 3D-printed prosthetic device.
Audience Academic
Author Zuniga, Jorge
Peck, Jean
Stollberg, John
Fernandez, Cristina
Katsavelis, Dimitrios
Petrykowski, Marc
Carson, Adam
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  givenname: Jean
  surname: Peck
  fullname: Peck, Jean
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  surname: Stollberg
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  givenname: Marc
  surname: Petrykowski
  fullname: Petrykowski, Marc
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  givenname: Adam
  surname: Carson
  fullname: Carson, Adam
– sequence: 7
  givenname: Cristina
  surname: Fernandez
  fullname: Fernandez, Cristina
BackLink https://www.ncbi.nlm.nih.gov/pubmed/25601104$$D View this record in MEDLINE/PubMed
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Cites_doi 10.1007/s11548-010-0476-x
10.1186/1756-0500-7-443
10.1002/bdra.20735
10.1682/JRRD.2010.03.0050
10.1097/PHM.0000000000000016
10.1016/j.jbiomech.2013.08.015
10.1016/S0140-6736(86)90837-8
10.1111/jopr.12165
10.2106/JBJS.E.00982
10.1016/j.jas.2014.08.023
ContentType Journal Article
Copyright COPYRIGHT 2015 BioMed Central Ltd.
Zuniga et al.; licensee BioMed Central. 2015
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References 10.1186/s13104-015-0971-9-B9
10.1186/s13104-015-0971-9-B10
10.1186/s13104-015-0971-9-B16
10.1186/s13104-015-0971-9-B15
10.1186/s13104-015-0971-9-B17
10.1186/s13104-015-0971-9-B12
10.1186/s13104-015-0971-9-B11
10.1186/s13104-015-0971-9-B7
10.1186/s13104-015-0971-9-B6
10.1186/s13104-015-0971-9-B13
21938656 - J Rehabil Res Dev. 2011;48(6):697-706
23272276 - J Prenat Med. 2012 Oct;6(4):59-63
20467825 - Int J Comput Assist Radiol Surg. 2010 Jul;5(4):335-41
8927528 - Prosthet Orthot Int. 1995 Dec;19(3):165-75
6841409 - J Bone Joint Surg Br. 1983 May;65(3):346-9
20878909 - Birth Defects Res A Clin Mol Teratol. 2010 Dec;88(12):1008-16
25015013 - BMC Res Notes. 2014;7:443
24356081 - Am J Phys Med Rehabil. 2014 Jan;93(1 Suppl 1):S4-11
24094718 - J Biomech. 2013 Nov 15;46(16):2757-60
23547012 - Curr Protoc Mol Biol. 2013;Chapter 14:Unit14.15
1946626 - Phys Ther. 1991 Dec;71(12):920-34
16757763 - J Bone Joint Surg Am. 2006 Jun;88(6):1294-300
2868172 - Lancet. 1986 Feb 8;1(8476):307-10
25041262 - J Prosthodont. 2014 Oct;23(7):582-7
References_xml – ident: 10.1186/s13104-015-0971-9-B11
  doi: 10.1007/s11548-010-0476-x
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  doi: 10.1186/1756-0500-7-443
– ident: 10.1186/s13104-015-0971-9-B9
  doi: 10.1002/bdra.20735
– ident: 10.1186/s13104-015-0971-9-B10
  doi: 10.1682/JRRD.2010.03.0050
– ident: 10.1186/s13104-015-0971-9-B7
  doi: 10.1097/PHM.0000000000000016
– ident: 10.1186/s13104-015-0971-9-B13
  doi: 10.1016/j.jbiomech.2013.08.015
– ident: 10.1186/s13104-015-0971-9-B12
  doi: 10.1016/S0140-6736(86)90837-8
– ident: 10.1186/s13104-015-0971-9-B15
  doi: 10.1111/jopr.12165
– ident: 10.1186/s13104-015-0971-9-B6
  doi: 10.2106/JBJS.E.00982
– ident: 10.1186/s13104-015-0971-9-B17
  doi: 10.1016/j.jas.2014.08.023
– reference: 24094718 - J Biomech. 2013 Nov 15;46(16):2757-60
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Snippet There is an increasing number of children with traumatic and congenital hand amputations or reductions. Children's prosthetic needs are complex due to their...
Background There is an increasing number of children with traumatic and congenital hand amputations or reductions. Children's prosthetic needs are complex due...
BACKGROUND: There is an increasing number of children with traumatic and congenital hand amputations or reductions. Children's prosthetic needs are complex due...
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StartPage 10
SubjectTerms 3D printing
Adolescent
Anthropometry
Artificial Limbs
Child
Child, Preschool
Computer programs
Computer-aided design
Costs and Cost Analysis
Developing countries
Economic aspects
Female
Genetic disorders
Graphics software
Health aspects
Humans
Image processing
Implants, Artificial
Male
Printing, Three-Dimensional - economics
Prosthesis
Prosthesis Design
Range of Motion, Articular
Upper Extremity - pathology
Wrist - physiopathology
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Title Cyborg beast: a low-cost 3d-printed prosthetic hand for children with upper-limb differences
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