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diagnóstico e laboratório

Avaliação funcional do corpo humano com o sistema EIS Teck

07/04/2010

O Sistema EIS Teck usa 4 tecnologias não invasivas para:

Avaliação funcional do corpo humano

Auxiliar de diagnóstico

Monitoramento da eficácia e qualidade da terapêutica

Indolor, não invasivo, sem efeitos colaterais

Reprodutível e operador independente

Fornece estimativa dos neurotransmissores, hormônios, ionograma intersticial, o pH geral, o ângulo de fase e o nível de estresse oxidativo.

Avalia a função de órgãos e sistemas através da análise cruzada de 4 tecnologias.



 

O sistema EIS Teck é um equipamento médico aprovado pela ANVISA (MS: 80318860002), de alta tecnologia, não invasivo, portátil, para observação clínica por ESG e auxiliar de terapêutica.
O Sistema usa 4 tecnologias: Pletismografia fotoelétrica (oximetria), Variabilidade da frequência cardíaca (VFC), bio impendância em modo bipolar e tetrapolar.
O Software avalia os resultados das 4 tecnologias em uma análise cruzada e fornece relatórios na tela do computador com valores da oximetria, da variabilidade da frequência cardíaca e bioquímica intersticial e uma avaliação de composição corporal, incluindo dados de hidratação e ângulo de fase, além de indicadores de neurotransmissores, hormônios, ionograma, e análise de stréss oxidativo. Auxilia o médico com ferramentas de monitoramento terapêutico.
Fornece uma dieta personalizada e avaliação esportiva.

 

Descrição do EIS Teck complex

O ES Teck Complex System é um sistema médico que combina tecnologias de 2 biosensores com 5 caraterísticas e processamento de sinal administrado por um software:
Biosensores da espectrofotometria :
1. Oxímetro de pulso (sensor SpO2)
2. O pletismógrafo fotoelétrico (Sensor PP)
3. A Variabilidade da frequência cardíaca (sensor VFC)

Sensores da bio impedância:
4. O sensor da Bio Impedância em Modo Bipolar (sensor de EIS)
5. O sensor da Bio Impedância em modo tetra polar (BIA)

 

BIBLIOGRAFIA

Referências bibliográficas do manual do sistema EIS / ES Teck:
1)    http://en.wikipedia.org/wiki/Ohm_law
2)    Schoeller DA. Bioelectrical impedance analysis. What Does It Measure? Ann NY Academy Sciences. 2000; 904:159-162.
3)    Kanai, H., K. Sakamoto, and M. Haeno, 1983. Electrical measurement of fluid distribution in human legs; estimation of extra and intra cellular fluid volume. Journal of Microwave Power 18: 233-243
4)    Fogh-Andersen, Niels, Burton M. Altura, Bella T. Altura, and Ole Siggaard-Andersen, 1995. Composition of interstitial fluid. Clin. Chem. 41(10): 1522-1525
5)    Gilanyi, M., C. Ikrenyi, J. Fekete, K. Ikrenyi, and A.G.B. Kovach, 1988. Ion concentrations in subcutaneous interstitial fluid: Measured versus expected values. Am J Physiol 255: F513-519
6)    Claudal 2007 : New Diagnostic Approach Concerning Attention Deficit/ Hyperactivity Disorder (ADHD) in Children www.ldteck.com
7)    Peyman Mirtaheri*, Sverre Grimnes, and Orjan G. Martinsen, Member, IEEE. Electrode Polarization Impedance in Weak NaCl Aqueous Solutions. IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, VOL. 52, NO. 12, DECEMBER 2005
8)    Botkin 2006 : EIS System (Galvanic Skin responses measurement device) in adjunct to
           Treatments’ monitoring  www.ldteck.com
9)    Grimnes S., Martinsen O.G., ‘Bioimpedance & Bioelectricity Basics’, Academic Press, ISBN-0-12-303260, http://www.fys.uio.no/publ/bbb, 2000.
10)    Baker J M, Spaans E J A and Reece C R 1996 Conductimetric measurement of CO2 concentration: theoretical basis and its verification Agron. J. 88 675–82
11)    Black J 1999 Biological Performance of Material (New York: Dekker) pp 10–33
12)    Butler J N 1982 Carbon Dioxide Equilibrium and Their Applications (Reading, MA: Addison-Wesley)
13)    Cunningham R E and Williams R J J 1980 Diffusion in Gases and Porous Media (New York: Plenum)
14)    Jenderka K.-V, Gersing E., 'Comparison of the impedance and ultrasound spectroscopy in investigations of ischaemia caused alterations in organ tissue', 18th Annual International Conference of the IEEE Engineering in Medicine and Biology Society, Amsterdam, 855-856, 1996.
15)    MicroTrans, Web site, http://www.cnm.es/~mtrans/, 2002.
16)    E.Gersing Measurement of electrical impedance in organs - measuring equipment for research and clinical applications. - Biomedizinische Technik, Vol.36, Iss.1-2, pp.6-11, Jan. 1991.
17)    Groot J.R., 'Genesis of life-threatening ventricular arrythmias during the delayed phase of acute myocardial ischemia. Role of cellular electrical coupling and myocardial heterogeneities', Ph. D. Thesis, Universiteit van Amsterdam, Amsterdam, 2001.
18)    Haemmerich,D; Ozkan,O R; Tsai,J -Z; Staelin,S T; Tungjitkusolmun,S; Mahvi,D M; Webster,J G, 'Changes in electricel resistivity of swine liver after occlusion and postmortem', Med.Biol.Eng.Comput., vol. 40, 29- 33, 2002.
19)    Cole K.S. & Cole R.H. "Dispersion and adsorption in dielectrics" (1941) J. Chem. Rev. 9 341–52.
20)    H. V. Sorensen, D. L. Jones, M. T. Heideman, and C. S. Burrus, « Real-valued fast Fourier transform algorithms, » IEEE Trans. Acoust. Speech Sig. Processing ASSP-35, 849–863 (1987).
21)    Chumlea WC, Guo SS, Kuczmarski RJ, Flegal KM, Johnson CL, Heymsfield SB, Lukaski HC, Friedl K,  Hubbard VS Body composition estimates from NHANES III bioelectrical impedance data..  International Journal of Obesity. (2002) Dec;26(12):1596-609.
22)    Cordain L, Whicker RE, Johnson JE Body composition determination in children using bioelectrical impedance.  Growth, Development, & Aging (1988) 52, 37-40  Department of Exercise and Sport Science, Colorado State University, Fort Collins 80523.
23)    Sergi G, Bussolotto M, Perini P, Calliari I, Giantin V, Ceccon A, Scanferla F, Bressan M, Moschini G, Enzi Accuracy of bioelectrical impedance analysis in estimation of extracellular space in healthy subjects and in fluid retention states. G. Annals of Nutrition and Metabolism (1994) 38, 158-65
24)    "Introduction to the Pulse Oximeter."  www.monroecc.edu/depto/pstc/paraspe1.htm
25)    Takazawa, Kenji; Tanaka, Nobuhiro; Fujita, Masami; Matsuoka, Osamu; Saiki, Tokuyu; Aikawa, Masaru; Tamura, Sinobu; Ibukiyama, Chiharu Assessment of Vasoactive Agents and Vascular Aging by the Second Derivative of Photoplethysmogram Waveform Hypertension: Volume 32(2)August 1998pp 365-370
26)    Takazawa K, Tanaka N, Fujita M, Matsuoka O, Saiki T, Aikawa M, Tamura S, Ibukiyama C Assessment of vasoactive agents and vascular aging by the second derivative of photoplethysmogram waveform Hypertension 1998 Aug 32:365-70
27)    Toshiaki OTSUKA , Tomoyuki KAWADA , Masao KATSUMATA ,Chikao IBUKI , and Yoshiki KUSAMA Independent Determinants of Second Derivative of the Finger Photoplethysmogram among Various Cardiovascular Risk Factors in Middle-Aged Men Hypertens Res 2007; 30: 1211–1218)
28)     Toshiaki Otsuka, , Tomoyuki Kawada, Masao Katsumata, and Chikao Ibuki, Utility of Second Derivative of the Finger Photoplethysmogram for the Estimation of the Risk of Coronary Heart Disease in the General Population Circ J 2006; 70: 304 – 310
29)     Alberto Avolio The finger volume pulse and assessment of arterial properties Journal of Hypertension 2002, 20:2341–2343
30)    R. Kelly, MB, FRACP, C. Hayward, MB, BSc, A. Avolio, PhD, and M. O'Rourke, MD, FACC Noninvasive Determination of Age-Related Changes in the Human Arterial Pulse Circulation Vol 80, No 6, December 1989 p.1652-1659
31)    Task Force of The European Society of Cardiology and The North American Heart rate variability Standards of measurement, physiological interpretation, and clinical use European Heart Journal (1996) 17, 354–381

Referências bibliográficas do software:

1)    http://www.csc.fi/english/csc/scientific_computing/applications/human_body
2)    http://en.wikipedia.org/wiki/Venn_Diagram
3)    http://en.wikipedia.org/wiki/Maxwell_equation
4)    Debra L. Johnson, Ph.D., John S. Wiebe, M.A., Sherri M. Gold, Ph.D.,Nancy C. Andreasen, M.D., Ph.D., Richard D. Hichwa, Ph.D., G. Leonard Watkins, Ph.D.,and Laura L. Boles Ponto, Ph. Cerebral Blood Flow and Personality: A Positron Emission Tomography Study Am J Psychiatry 156:2, February 1999 p.252-257
5)    Peter J. Cohen Introduction: Interactions in the Central Nervous System Chest1972;61;29-30
6)    Mark A. Mintun*, Brian N. Lundstrom, Abraham Z. Snyder, Andrei G. Vlassenko, Gordon L. Shulman, and Marcus E. Raichle Blood flow and oxygen delivery to human brain during functional activity: Theoretical modeling and experimental data PNAS June 5, 2001 vol. 98  no. 12 6859–6864
7)    H Shimizu, Y Shimomura, R Hayashi, K Ohtani, N Sato, T Futawatari Serum leptin concentration is associated with total body fat mass, but not abdominal fat distribution International Journal of Obesity (1997) 21, 536-541
8)    http://en.wikipedia.org/wiki/NaKATPase
9)    http://en.wikipedia.org/wiki/Na%2B-Ca%2B%2B_exchanger
10)   http://en.wikipedia.org/wiki/Sodium_chloride_cotransporter
11)   http://en.wikipedia.org/wiki/Phosphate
12)   http://en.wikipedia.org/wiki/Magnesium
13)   http://en.wikipedia.org/wiki/Oxygen-haemoglobin_dissociation_curve
14)   http://en.wikipedia.org/wiki/Henderson%E2%80%93Hasselbalch_equation
15)   Recommended Dietary Allowances, 10th Edition. National Academy Press 1989-1999. ISBN: 0-309-04633-5
16)   http://en.wikipedia.org/wiki/Renin-angiotensin_system
17)   Takazawa, Kenji; Tanaka, Nobuhiro; Fujita, Masami; Matsuoka, Osamu; Saiki, Tokuyu; Aikawa, Masaru; Tamura, Sinobu; I bukiyama, Chiharu :Assessment of Vasoactive Agents and Vascular Aging by the Second Derivative of Photoplethysmogram Waveform Hypertension: Volume 32(2)August 1998pp 365-370
18)   A.C. Guyton and J.E. Hall: Textbook of Medical Physiology Eleventh Edition. September 2005.
19)   http://en.wikipedia.org/wiki/Metabolic_syndrome
20)   http://en.wikipedia.org/wiki/PSA

 

Fonte:

 

http://www.sistemaeis.com.br/

 

 

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