Literature DB >> 28139939

Effect of Capacitive and Resistive electric transfer on haemoglobin saturation and tissue temperature.

Yuto Tashiro1, Satoshi Hasegawa1, Yuki Yokota1, Shu Nishiguchi2, Naoto Fukutani1, Hidehiko Shirooka1, Seishiro Tasaka1, Tomofumi Matsushita1, Keisuke Matsubara1, Yasuaki Nakayama1, Takuya Sonoda1, Tadao Tsuboyama1, Tomoki Aoyama1.   

Abstract

PURPOSE: This study aims to evaluate the effects of Capacitive and Resistive electric transfer (CRet) and hotpack (HP) on haemoglobin saturation and tissue temperature.
MATERIALS AND METHODS: The participants were 13 healthy males (mean age 24.5 ± 3.0). They underwent three interventions on different days: (1) CRet (CRet group), (2) HP (HP group) and (3) CRet without power (sham group). The intervention and measurement were applied at the lower paraspinal muscle. Indiba® active ProRecovery HCR902 was used in the CRet group, and the moist heat method was used in the HP group. Oxygenated, deoxygenated and total haemoglobin (oxy-Hb, deoxy-Hb, total-Hb) counts were measured before and after the 15-min interventions, together with the temperature at the skin surface, and at depths of 10 mm and 20 mm (ST, 10mmDT and 20mmDT, respectively). The haemoglobin saturation and tissue temperature were measured until 30 min after the intervention and were collected at 5-min intervals. Statistical analysis was performed for each index by using the Mann-Whitney U test for comparisons between all groups at each time point.
RESULTS: Total-Hb and oxy-Hb were significantly higher in the CRet group than in the HP group continuously for 30 min after the intervention. The 10mmDT and 20mmDT were significantly higher in the CRet group than in the HP group from 10- to 30 min after intervention.
CONCLUSIONS: The effect on haemoglobin saturation was higher in the CRet group than in the HP group. In addition, the CRet intervention warmed deep tissue more effectively than HP intervention.

Entities:  

Keywords:  Capacitive and Resistive electric transfer system; haemoglobin saturation; healthy adults; hotpack; tissue temperature

Mesh:

Substances:

Year:  2017        PMID: 28139939     DOI: 10.1080/02656736.2017.1289252

Source DB:  PubMed          Journal:  Int J Hyperthermia        ISSN: 0265-6736            Impact factor:   3.914


  15 in total

1.  The Effect of Capacitive and Resistive Electric Transfer Intervention on Delayed-Onset Muscle Soreness Induced by Eccentric Exercise.

Authors:  Masatoshi Nakamura; Shigeru Sato; Ryosuke Kiyono; Kaoru Yahata; Riku Yoshida; Kazuki Kasahara; Andreas Konrad
Journal:  Int J Environ Res Public Health       Date:  2022-05-08       Impact factor: 4.614

2.  Comparison of resistive capacitive energy transfer therapy on cadaveric molars and incisors with and without implants.

Authors:  Albert Pérez-Bellmunt; Jordi Caballé-Serrano; Jacobo Rodríguez-Sanz; César Hidalgo-García; Vanessa González-Rueda; Sergi Gassó-Villarejo; Daniel Zegarra-Chávez; Carlos López-de-Celis
Journal:  Sci Rep       Date:  2022-07-13       Impact factor: 4.996

3.  Effects of capacitive and resistive electric transfer therapy on pain and lumbar muscle stiffness and activity in patients with chronic low back pain.

Authors:  Michio Wachi; Takumi Jiroumaru; Ayako Satonaka; Masae Ikeya; Shinichi Noguchi; Mika Suzuki; Yutaro Hyodo; Yasumasa Oka; Takamitsu Fujikawa
Journal:  J Phys Ther Sci       Date:  2022-05-01

4.  Response of neuroblastoma cells to RF currents as a function of the signal frequency.

Authors:  María Luisa Hernández-Bule; Enrique Medel; Clara Colastra; Raquel Roldán; Alejandro Úbeda
Journal:  BMC Cancer       Date:  2019-09-05       Impact factor: 4.430

5.  Capacitive resistive electric transfer modifies gait pattern in horses exercised on a treadmill.

Authors:  Mireya Becero; Aritz Saitua; David Argüelles; Antonia Lucía Sánchez de Medina; Cristina Castejón-Riber; Cristina Riber; Ana Muñoz
Journal:  BMC Vet Res       Date:  2020-01-09       Impact factor: 2.741

6.  Thermal and non-thermal effects of capacitive-resistive electric transfer application on different structures of the knee: a cadaveric study.

Authors:  Jacobo Rodríguez-Sanz; Albert Pérez-Bellmunt; Carlos López-de-Celis; Orosia María Lucha-López; Vanessa González-Rueda; José Miguel Tricás-Moreno; Mathias Simon; César Hidalgo-García
Journal:  Sci Rep       Date:  2020-12-18       Impact factor: 4.379

7.  Temperature and current flow effects of different electrode placement in shoulder capacitive-resistive electric transfer applications: a cadaveric study.

Authors:  Jacobo Rodríguez-Sanz; Carlos López-de-Celis; César Hidalgo-García; Max Canet-Vintró; Pablo Fanlo-Mazas; Albert Pérez-Bellmunt
Journal:  BMC Musculoskelet Disord       Date:  2021-02-04       Impact factor: 2.362

8.  Accelerometric Changes before and after Capacitive Resistive Electric Transfer Therapy in Horses with Thoracolumbar Pain Compared to a SHAM Procedure.

Authors:  David Argüelles; Mireya Becero; Ana Muñoz; Aritz Saitua; Toni Ramón; Eduard Gascón; Antonia Sánchez de Medina; Marta Prades
Journal:  Animals (Basel)       Date:  2020-12-05       Impact factor: 2.752

9.  Effect of Capacitive and Resistive electric transfer on changes in muscle flexibility and lumbopelvic alignment after fatiguing exercise.

Authors:  Yuki Yokota; Takuya Sonoda; Yuto Tashiro; Yusuke Suzuki; Yu Kajiwara; Hala Zeidan; Yasuaki Nakayama; Mirei Kawagoe; Kanako Shimoura; Masataka Tatsumi; Kengo Nakai; Yuichi Nishida; Tsubasa Bito; Soyoka Yoshimi; Tomoki Aoyama
Journal:  J Phys Ther Sci       Date:  2018-05-08

10.  Thermal and non-thermal effects off capacitive-resistive electric transfer application on the Achilles tendon and musculotendinous junction of the gastrocnemius muscle: a cadaveric study.

Authors:  Carlos López-de-Celis; César Hidalgo-García; Albert Pérez-Bellmunt; Pablo Fanlo-Mazas; Vanessa González-Rueda; José Miguel Tricás-Moreno; Sara Ortiz; Jacobo Rodríguez-Sanz
Journal:  BMC Musculoskelet Disord       Date:  2020-01-20       Impact factor: 2.362

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