Activity-sensing, rate-responsive pacing: improvement in myocardial performance with exercise.

A sensor that detects body activity by low frequency sonic impulses has been incorporated in a pacemaker so that body activity may be translated to an increased pacing rate in response to exercise. The pacemaker is designed for patients who may benefit from an increased cardiac output mediated by an...

Descripción completa

Detalles Bibliográficos
Publicado en:Pacing & Clinical Electrophysiology Vol. 8; no. 1; pp. 52 - 60
Autores principales: Humen DP, Kostuk WJ, Klein GJ
Formato: Journal Article
Publicado: Wiley-Blackwell Jan1985
Acceso en línea:Ver este registro en EBSCOhost
fields @attributes:
  recordID: 1
pdfLink:
plink: https://search.ebscohost.com/login.aspx?direct=true&db=ccm&AN=106036240&site=ehost-live
header:
  @attributes:
    shortDbName: ccm
    uiTerm: 106036240
    longDbName: CINAHL Complete
    uiTag: AN
  controlInfo:
    bkinfo:
    dissinfo:
    jinfo:
      jid:
        01478389
        4F8
      jtl: Pacing & Clinical Electrophysiology
      issn: 01478389
      maglogo: Y
    pubinfo:
      dt: Jan1985
      vid: 8
      iid: 1
      pid: 480
      pub: Wiley-Blackwell
      place: Malden, Massachusetts
    artinfo:
      ui:
        106036240
        2009410513
        NLM2578649
        106036240
      ppf: 52
      ppct: 8
      formats:
        fmt:
          @attributes:
            type: P
      tig:
        atl: Activity-sensing, rate-responsive pacing: improvement in myocardial performance with exercise.
      aug:
        au:
          Humen DP
          Kostuk WJ
          Klein GJ
      sug:
      ab: A sensor that detects body activity by low frequency sonic impulses has been incorporated in a pacemaker so that body activity may be translated to an increased pacing rate in response to exercise. The pacemaker is designed for patients who may benefit from an increased cardiac output mediated by an increased heart rate during exercise Following permanent pacemaker implantation, six patients (mean age 69 years) entered a single blind, randomized, crossover trial for comparison of activity-sensing, rote-responsive pacing (A) to fixed rate demand pacing (D). Ventricular function was assessed by gated radionuclide ventriculogrophy at rest and at exercise, while exercise capacity was assessed by treadmill performance, along with measurements of oxygen consumption and carbon dioxide production. Total treadmill duration and maximum oxygen consumption were similar in the two pacing modes (A = 284 ± 244 s, 13.4 ± 3.4 ml O2/min/kg; D = 256 ± 250 s, 11.7 ± 3.7 ml O2/min/kg). Anaerobic threshold. however was significantly improved (A = 266 ± 199 s, (P < .05). 13.0 ± 2.2 ml O2/min/kg (p < .01); D = 231 ± 208 s, 10.8 ± 2.3 ml O2/min/kg). This improvement was associated with an enhanced exercise cardiac output (A = 4.51 ± 1.3 L/min/m² D = 3.61 ± .84 1./min/m² p < .05) which was mediated by an increased heart rate (A = 95 ± 12 bpm; D = 68 ± 2 bpm; p < .01), maintenance of stroke volume (A = 47 ± 10 mI/m² P = 54 ± 14 ml/m²) and absence of cardiac dilatation (EDVI A = 109 ± 25 mI/m² D = 320 ± 32 mi/m²). Halter monitoring revealed rare instances of unexpected heart rate increases secondary to external activation of the sensor with no significant adverse effects being encountered. We conclude that activity-sensing, rate-responsive pacing offers the potential for increased exercise tolerance secondary to improved cardiac function.
      pubtype: Academic Journal
      doctype: Journal Article
      ougenre: Article
    language: English
    refInfo:
    holdings:
      @attributes:
        islocal: N