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Fig. 1 Overview of different mouse ECGs. A Recording of conscious <t>ECG.</t> Green rectan- gle denotes a portion of signal with artifacts caused by animal movements. B <t>ECG</t> in Lead II configuration under isoflurane anesthesia is at the same scale as in A. Arrows indicate breath artifacts. C P-QRS-T complex of an anesthetized mouse, an average of 20 subsequent beats aligned at R peak. Note missing Q wave and negatively oriented wave T. D ECG monitoring at time of anesthetized sonography of the heart (e.g. echocardiog- raphy). Left ventricle (LV) was imaged in short axis M-mode to visualize the relation of anterior and posterior wall movement to ECG waves. Note: For a discus- sion of anesthetized versus non-anesthetized ECG please refer to the respective section on the main text
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Fig. 1 Overview of different mouse ECGs. A Recording of conscious <t>ECG.</t> Green rectan- gle denotes a portion of signal with artifacts caused by animal movements. B <t>ECG</t> in Lead II configuration under isoflurane anesthesia is at the same scale as in A. Arrows indicate breath artifacts. C P-QRS-T complex of an anesthetized mouse, an average of 20 subsequent beats aligned at R peak. Note missing Q wave and negatively oriented wave T. D ECG monitoring at time of anesthetized sonography of the heart (e.g. echocardiog- raphy). Left ventricle (LV) was imaged in short axis M-mode to visualize the relation of anterior and posterior wall movement to ECG waves. Note: For a discus- sion of anesthetized versus non-anesthetized ECG please refer to the respective section on the main text
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iWorx Systems Inc ecg physiological data acquisition analysis system
Fig. 1 Overview of different mouse ECGs. A Recording of conscious <t>ECG.</t> Green rectan- gle denotes a portion of signal with artifacts caused by animal movements. B <t>ECG</t> in Lead II configuration under isoflurane anesthesia is at the same scale as in A. Arrows indicate breath artifacts. C P-QRS-T complex of an anesthetized mouse, an average of 20 subsequent beats aligned at R peak. Note missing Q wave and negatively oriented wave T. D ECG monitoring at time of anesthetized sonography of the heart (e.g. echocardiog- raphy). Left ventricle (LV) was imaged in short axis M-mode to visualize the relation of anterior and posterior wall movement to ECG waves. Note: For a discus- sion of anesthetized versus non-anesthetized ECG please refer to the respective section on the main text
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Image Search Results


Configuration of 3-lead ECG, Movesense and Garmin devices. Participants were also equipped with a respiratory face mask; however, respiratory data were not included in the current study.

Journal: Sensors (Basel, Switzerland)

Article Title: Validity and Reliability of Movesense HR+ ECG Measurements for High-Intensity Running and Cycling

doi: 10.3390/s24175713

Figure Lengend Snippet: Configuration of 3-lead ECG, Movesense and Garmin devices. Participants were also equipped with a respiratory face mask; however, respiratory data were not included in the current study.

Article Snippet: ECG data collection involved two systems: a 3-lead ECG setup (ADInstruments, Dunedin, New Zealand) and the Movesense HR+ single-channel ECG with a chest belt (Movesense, Vantaa, Finland).

Techniques:

Equipment and materials.

Journal: Sensors (Basel, Switzerland)

Article Title: Validity and Reliability of Movesense HR+ ECG Measurements for High-Intensity Running and Cycling

doi: 10.3390/s24175713

Figure Lengend Snippet: Equipment and materials.

Article Snippet: ECG data collection involved two systems: a 3-lead ECG setup (ADInstruments, Dunedin, New Zealand) and the Movesense HR+ single-channel ECG with a chest belt (Movesense, Vantaa, Finland).

Techniques: Sampling

( a ) Correlation of standard deviation (SD) of the RR’ intervals for Movesense HR+ and 3-lead ECG; ( b ) Bland-Altman plot of the SD of the RR’ intervals for Movesense HR+ and 3-lead ECG; ( c ) Correlation of SD of the RR’ intervals for Garmin HRM-Pro and 3-lead ECG; ( d ) Bland-Altman plot of the SD of the RR’ intervals for Garmin HRM-Pro and 3-lead ECG.

Journal: Sensors (Basel, Switzerland)

Article Title: Validity and Reliability of Movesense HR+ ECG Measurements for High-Intensity Running and Cycling

doi: 10.3390/s24175713

Figure Lengend Snippet: ( a ) Correlation of standard deviation (SD) of the RR’ intervals for Movesense HR+ and 3-lead ECG; ( b ) Bland-Altman plot of the SD of the RR’ intervals for Movesense HR+ and 3-lead ECG; ( c ) Correlation of SD of the RR’ intervals for Garmin HRM-Pro and 3-lead ECG; ( d ) Bland-Altman plot of the SD of the RR’ intervals for Garmin HRM-Pro and 3-lead ECG.

Article Snippet: ECG data collection involved two systems: a 3-lead ECG setup (ADInstruments, Dunedin, New Zealand) and the Movesense HR+ single-channel ECG with a chest belt (Movesense, Vantaa, Finland).

Techniques: Standard Deviation

Fig. 1 Overview of different mouse ECGs. A Recording of conscious ECG. Green rectan- gle denotes a portion of signal with artifacts caused by animal movements. B ECG in Lead II configuration under isoflurane anesthesia is at the same scale as in A. Arrows indicate breath artifacts. C P-QRS-T complex of an anesthetized mouse, an average of 20 subsequent beats aligned at R peak. Note missing Q wave and negatively oriented wave T. D ECG monitoring at time of anesthetized sonography of the heart (e.g. echocardiog- raphy). Left ventricle (LV) was imaged in short axis M-mode to visualize the relation of anterior and posterior wall movement to ECG waves. Note: For a discus- sion of anesthetized versus non-anesthetized ECG please refer to the respective section on the main text

Journal: Mammalian genome : official journal of the International Mammalian Genome Society

Article Title: A review of standardized high-throughput cardiovascular phenotyping with a link to metabolism in mice.

doi: 10.1007/s00335-023-09997-w

Figure Lengend Snippet: Fig. 1 Overview of different mouse ECGs. A Recording of conscious ECG. Green rectan- gle denotes a portion of signal with artifacts caused by animal movements. B ECG in Lead II configuration under isoflurane anesthesia is at the same scale as in A. Arrows indicate breath artifacts. C P-QRS-T complex of an anesthetized mouse, an average of 20 subsequent beats aligned at R peak. Note missing Q wave and negatively oriented wave T. D ECG monitoring at time of anesthetized sonography of the heart (e.g. echocardiog- raphy). Left ventricle (LV) was imaged in short axis M-mode to visualize the relation of anterior and posterior wall movement to ECG waves. Note: For a discus- sion of anesthetized versus non-anesthetized ECG please refer to the respective section on the main text

Article Snippet: As an alternative, ECG data analysis can be done by various other commercially available programs, such as LabChart (ADInstruments), AcqKnowledge (BIOPAC), LabVIEW (National Instruments), Ponemah (Data Sciences International), or LabScribe (iWorks Systems, Inc.).

Techniques:

Fig. 6 Overview of data collection in late adult (LA) mice. A Overview of KO-mouse lines phenotyped in LA classified by centers for TTE. B KO-mouse lines per center with ECG data in LA mice

Journal: Mammalian genome : official journal of the International Mammalian Genome Society

Article Title: A review of standardized high-throughput cardiovascular phenotyping with a link to metabolism in mice.

doi: 10.1007/s00335-023-09997-w

Figure Lengend Snippet: Fig. 6 Overview of data collection in late adult (LA) mice. A Overview of KO-mouse lines phenotyped in LA classified by centers for TTE. B KO-mouse lines per center with ECG data in LA mice

Article Snippet: As an alternative, ECG data analysis can be done by various other commercially available programs, such as LabChart (ADInstruments), AcqKnowledge (BIOPAC), LabVIEW (National Instruments), Ponemah (Data Sciences International), or LabScribe (iWorks Systems, Inc.).

Techniques: