3 resultados para rheumatic carditis
em Digital Commons at Florida International University
Resumo:
Individuals with rheumatic diseases often have disabilities which limit one or more major life activity. Common disabilities among individuals with rheumatic illnesses such as chronic pain, hand deformities, and fatigue may be hidden. With a hidden disability, an individual may be unaware that he or she could qualify as disabled under the Americans with Disabilities Act (ADA). The ADA provides for reasonable accommodation for qualified individuals with disability related limitations. Accommodations under the ADA are designed to remove barriers preventing full participation in society, including employment, for individuals with disability related limitations.^ The primary objective of this study was to determine the knowledge level of individuals with rheumatic conditions about the Americans with Disabilities Act (ADA). One hundred and seven individuals with various rheumatic illnesses participated in this survey. The forty question survey included questions about type of rheumatic condition, employment, pain level, and knowledge of the ADA. Results of this study show that individuals with rheumatic conditions are more familiar with general information about the ADA and less familiar with specific information. The longer an individual has been diagnosed with a rheumatic condition the more he or she knows about the ADA. Common sources of information about the ADA are media and networking with others, rather than health care professionals. The recommendation for occupational therapists is to include education about the ADA as an integral component of treatment for all individuals with rheumatic conditions. ^
Resumo:
Heart valve disease occurs in adults as well as in pediatric population due to age-related changes, rheumatic fever, infection or congenital condition. Current treatment options are limited to mechanical heart valve (MHV) or bio-prosthetic heart valve (BHV) replacements. Lifelong anti-coagulant medication in case of MHV and calcification, durability in case of BHV are major setbacks for both treatments. Lack of somatic growth of these implants require multiple surgical interventions in case of pediatric patients. Advent of stem cell research and regenerative therapy propose an alternative and potential tissue engineered heart valves (TEHV) treatment approach to treat this life threatening condition. TEHV has the potential to promote tissue growth by replacing and regenerating a functional native valve. Hemodynamics play a crucial role in heart valve tissue formation and sustained performance. The focus of this study was to understand the role of physiological shear stress and flexure effects on de novo HV tissue formation as well as resulting gene and protein expression. A bioreactor system was used to generate physiological shear stress and cyclic flexure. Human bone marrow mesenchymal stem cell derived tissue constructs were exposed to native valve-like physiological condition. Responses of these tissue constructs to the valve-relevant stress states along with gene and protein expression were investigated after 22 days of tissue culture. We conclude that the combination of steady flow and cyclic flexure helps support engineered tissue formation by the co-existence of both OSS and appreciable shear stress magnitudes, and potentially augment valvular gene and protein expression when both parameters are in the physiological range.
Resumo:
Heart valve disease occurs in adults as well as in pediatric population due to age-related changes, rheumatic fever, infection or congenital condition. Current treatment options are limited to mechanical heart valve (MHV) or bio-prosthetic heart valve (BHV) replacements. Lifelong anti-coagulant medication in case of MHV and calcification, durability in case of BHV are major setbacks for both treatments. Lack of somatic growth of these implants require multiple surgical interventions in case of pediatric patients. Advent of stem cell research and regenerative therapy propose an alternative and potential tissue engineered heart valves (TEHV) treatment approach to treat this life threatening condition. TEHV has the potential to promote tissue growth by replacing and regenerating a functional native valve. Hemodynamics play a crucial role in heart valve tissue formation and sustained performance. The focus of this study was to understand the role of physiological shear stress and flexure effects on de novo HV tissue formation as well as resulting gene and protein expression. A bioreactor system was used to generate physiological shear stress and cyclic flexure. Human bone marrow mesenchymal stem cell derived tissue constructs were exposed to native valve-like physiological condition. Responses of these tissue constructs to the valve-relevant stress states along with gene and protein expression were investigated after 22 days of tissue culture. We conclude that the combination of steady flow and cyclic flexure helps support engineered tissue formation by the co-existence of both OSS and appreciable shear stress magnitudes, and potentially augment valvular gene and protein expression when both parameters are in the physiological range. ^