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1.
Curr Drug Targets ; 17(14): 1626-1648, 2016.
Artigo em Inglês | MEDLINE | ID: mdl-26844561

RESUMO

The protein-folding problem has been extensively studied during the last fifty years. The understanding of the dynamics of global shape of a protein and the influence on its biological function can help us to discover new and more effective drugs to deal with diseases of pharmacological relevance. Different computational approaches have been developed by different researchers in order to foresee the threedimensional arrangement of atoms of proteins from their sequences. However, the computational complexity of this problem makes mandatory the search for new models, novel algorithmic strategies and hardware platforms that provide solutions in a reasonable time frame. We present in this revision work the past and last tendencies regarding protein folding simulations from both perspectives; hardware and software. Of particular interest to us are both the use of inexact solutions to this computationally hard problem as well as which hardware platforms have been used for running this kind of Soft Computing techniques.


Assuntos
Biologia Computacional/instrumentação , Proteínas/química , Algoritmos , Biologia Computacional/métodos , Humanos , Modelos Moleculares , Conformação Proteica , Dobramento de Proteína , Software
2.
Biomed Res Int ; 2014: 959645, 2014.
Artigo em Inglês | MEDLINE | ID: mdl-25045715

RESUMO

According to the World Health Organization, the world's leading cause of death is heart disease, with nearly two million deaths per year. Although some factors are not possible to change, there are some keys that help to prevent heart diseases. One of the most important keys is to keep an active daily life, with moderate exercise. However, deciding what a moderate exercise is or when a slightly abnormal heart rate value is a risk depends on the person and the activity. In this paper we propose a context-aware system that is able to determine the activity the person is performing in an unobtrusive way. Then, we have defined ontology to represent the available knowledge about the person (biometric data, fitness status, medical information, etc.) and her current activity (level of intensity, heart rate recommended for that activity, etc.). With such knowledge, a set of expert rules based on this ontology are involved in a reasoning process to infer levels of alerts or suggestions for the users when the intensity of the activity is detected as dangerous for her health. We show how this approach can be accomplished by using only everyday devices such as a smartphone and a smartwatch.


Assuntos
Exercício Físico , Cardiopatias/epidemiologia , Medição de Risco/métodos , Biometria , Cardiopatias/patologia , Frequência Cardíaca , Humanos
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