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The Effect of Increasing Current or Pulse Duration on Patient Movement and Intraoperative Transcranial Electric Stimulation Motor Evoked Potential Amplitude

The Effect of Increasing Current or Pulse Duration on Patient Movement and Intraoperative Transcranial Electric Stimulation Motor Evoked Potential Amplitude

Status
Completed
Phases
NA
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT05375669
Acronym
CCCV
Enrollment
31
Registered
2022-05-17
Start date
2022-08-10
Completion date
2024-11-01
Last updated
2025-04-01

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Surgery

Brief summary

Transcranial electric stimulation (TES) motor evoked potential (MEP) monitoring is standard during surgery risking motor system injury. The stimuli are typically 5-pulse trains with a 4 ms interstimulus interval (ISI). The pulse duration (D) is often set to 50 or 500 µs. Both are effective, but setting D to the chronaxie would be physiologically optimal and limited data suggest that mean MEP chronaxie may be near 200 µs. When necessary, one can obtain larger MEPs by increasing current (I) or D to increase stimulus charge (Q = I × D). However, this also increases patient movement that can interfere with surgery and reduce MEP acquisition frequency. The main research question is whether increasing current or pulse duration when applying intraoperative neuromonitoring produces less patient movement during surgery. As such, the IOM ISIS System will be employed for neuromonitoring and an accelerometer will be used to quantify patient movement. The constant-current TES stimulators will be used in this study with a high-precision oscilloscope. Total intravenous anesthesia (TIVA), surgery and TES MEP monitoring will proceed routinely without modification and normally involves acquiring many MEPs over several hours. The only departure from standard care will be the placement of two small accelerometers and a brief MEP sequence before skin incision to determine chronaxie and compare the effect of an equivalent increase of I or D on MEP amplitude and movement.

Detailed description

Transcranial electric stimulation (TES) motor evoked potential (MEP) monitoring is standard during surgery risking motor system injury. The stimuli are typically 5-pulse trains with a 4 ms interstimulus interval (ISI). The pulse duration (D) is often set to 50 or 500 µs. Both are effective, but setting D to the chronaxie would be physiologically optimal and limited data suggest that mean MEP chronaxie may be near 200 µs. When necessary, one can obtain larger MEPs by increasing current (I) or D to increase stimulus charge (Q = I × D). However, this also increases patient movement that can interfere with surgery and reduce MEP acquisition frequency. Anecdotal observations suggest that increasing D may produce larger MEPs with less movement than increasing I, but there is no published support. If true, then the optimal D for monitoring may be above the chronaxie because less movement could facilitate more frequent MEP acquisition. Finally, there is ongoing controversy about constant-current or constant-voltage TES. However, with stable resistance (R) there is no fundamental reason to prefer one or the other since they are related by Ohm's law I = V/R. Also, since threshold current and voltage vary with D their maximum levels should also vary with selected D, which could be confusing. Instead, because the International Electrotechnical Commission 50 mJ safety limit is based on energy (E = I2 × D × R = V2 × D/R), it may be more logical to apply constant-energy TES that would provide a consistent 0-50 mJ selection range at any selected D. The primary objective is to assess whether intraoperative neuromonitoring with constant current or constant voltage produces less patient movement during surgery. The secondary objectives are to compare MEP amplitudes with the different setups, to estimate the true mean or median chronaxie and to develop the concept of constant-energy TES. The main research question is whether increasing current or pulse duration when applying intraoperative neuromonitoring produces less patient movement during surgery. As such, the IOM ISIS System will be employed for neuromonitoring and an accelerometer will be used to quantify patient movement. The constant-current TES stimulators will be used in this study with a high-precision oscilloscope. The calibration will assess 5-pulse trains with a 4 ms ISI and 100 mA output across a 1000 Ω resistor at 250, 500, and 1000 µs D. Measurements will include actual I and D of each pulse, and actual ISI. Total intravenous anesthesia (TIVA), surgery and TES MEP monitoring will proceed routinely without modification and normally involves acquiring many MEPs over several hours. The only departure from standard care will be the placement of two small accelerometers and a brief MEP sequence before skin incision to determine chronaxie and compare the effect of an equivalent increase of I or D on MEP amplitude and movement.

Interventions

The constant-current TES stimulators will be used in this study with a high-precision oscilloscope. The calibration will assess 5-pulse trains with a 4 ms ISI and 100 mA output across a 1000 Ω resistor at 250, 500, and 1000 µs D. Measurements will include actual I and D of each pulse, and actual ISI. Total intravenous anesthesia (TIVA), surgery and TES MEP monitoring will proceed routinely without modification and normally involves acquiring many MEPs over several hours. The only departure from standard care will be the placement of two small accelerometers and a brief MEP sequence before skin incision to determine chronaxie and compare the effect of an equivalent increase of I or D on MEP amplitude and movement.

Sponsors

Insel Gruppe AG, University Hospital Bern
Lead SponsorOTHER

Study design

Allocation
NA
Intervention model
SINGLE_GROUP
Primary purpose
TREATMENT
Masking
NONE

Intervention model description

Patients will be screened as part of the clinical routine and will be included if they satisfy the eligibility criteria and sign the informed consent. All the study subjects who are included are patients who undergo surgery

Eligibility

Sex/Gender
ALL
Age
18 Years to No maximum
Healthy volunteers
No

Inclusion criteria

* Informed Consent signed by the subject * The patient has a supra- or infra-tentorial lesion requiring surgery * The patient is undergoing neurosurgery with the use of Intraoperative Monitoring (IOM) during surgery to protect functional tissue * The patient is older than 18 years

Exclusion criteria

* No need for Intraoperative Monitoring (IOM) * Vulnerable subjects (pregnant women, pregnant, impaired consciousness) * People who do not want to participate in the study * Emergency procedures in which no consent was obtained before the operation * Multiple surgeries on the same patient * Preoperative non-affected arm motor deficit (MRC \<5), that is to say, no motor deficit of the arm ipsilateral to the surgery * Inhalational anesthesia * Persisting neuromuscular blockade

Design outcomes

Primary

MeasureTime frameDescription
Comparison of the effect of a 2-fold increase of I or of D from threshold on patient movementDuring surgery, estimated on average to be about 4 hoursComparison of the effect of a 2-fold increase of I or of D from threshold on patient movement quantified by accelerometers on the patient's forehead and contralateral (non-affected) shoulder.

Secondary

MeasureTime frameDescription
Comparing the effect of a 2-fold increase of I or of D from threshold on MEP amplitudeDuring surgery, estimated on average to be about 4 hoursCompare the effect of a 2-fold increase of I or of D from threshold on MEP amplitude as measured by the ISIS IOM System
ChronaxieDuring surgery, estimated on average to be about 4 hoursThe stimulation strength (in mA) necessary to elicit an MEP are measured with the different pulse durations (in μs)

Countries

Switzerland

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Feb 4, 2026