Optimization of Lumbar Sensory Stimulation Parameters in Office Workers With Chronic Low Back Pain (LSS-OPT)
Effects of Different Lumbar Vibration Parameters on Somatosensory Cortical Responses in Office Workers With Chronic Nonspecific Low Back Pain: A Randomized Crossover Study
調査の概要
詳細な説明
Phase II is an experimental laboratory study designed to optimize the neurophysiological parameters of lumbar sensory stimulation in office workers with chronic nonspecific low back pain. The primary objective is to determine which combination of vibration frequency, amplitude, and direction produces the most favorable cortical response in the bilateral primary somatosensory cortex (S1), while meeting predefined safety, comfort, and technical criteria.
Participants will complete two laboratory visits separated by approximately 48-72 hours. The two visits have different purposes and are not intended to constitute a pre- and post-intervention comparison.
Visit 1: Baseline clinical and sensorimotor characterization During the first visit, participants will undergo clinical and neurophysiological assessments to characterize their baseline clinical and sensorimotor profiles. Clinical assessments will include pain intensity, low back pain-related disability, work-related musculoskeletal discomfort, movement-control testing, tactile acuity, and pressure pain threshold.
Corticospinal excitability will be assessed using single-pulse transcranial magnetic stimulation (TMS), with motor-evoked potentials recorded from the lumbar multifidus and erector spinae muscles. Somatosensory cortical and postural responses will be assessed during unstable sitting using functional near-infrared spectroscopy (fNIRS) over the bilateral S1 together with inertial measurement units (IMUs). Participants will also perform a repeated loaded forward-bending task while lumbar multifidus motor-unit behavior is recorded using decomposition electromyography (dEMG) and trunk movement is recorded using IMUs. Finally, lumbar multifidus morphology and contractile response will be assessed using rehabilitative ultrasound imaging (RUSI) at rest and during contralateral arm lifting.
The measurements obtained during Visit 1 are intended to characterize individual baseline sensorimotor function and to permit exploratory analyses of associations between clinical characteristics, corticospinal excitability, cortical responses, postural control, motor-unit behavior, lumbar multifidus contractile response, and responses to lumbar sensory stimulation. These measurements are not intended to serve as pre-intervention values for an acute pre-post comparison with Visit 2.
Visit 2: Randomized within-participant vibration-parameter optimization During the second visit, participants will undergo the vibration-fNIRS parameter-optimization experiment. Participants will lie prone in a relaxed position while an eight-channel fNIRS system records hemodynamic responses over the bilateral primary somatosensory cortex. A customized vibration apparatus will be positioned over the bilateral lumbar multifidus region.
Each participant will receive all eight vibration conditions generated from a 2 × 2 × 2 factorial combination of two vibration frequencies, two vibration amplitudes, and two stimulation directions. The order of the eight conditions will be randomized by computer for each participant to minimize systematic order effects. Randomization therefore applies to the sequence of stimulation conditions within each participant rather than allocation of participants to separate study arms.
Each vibration condition will be applied for 1 minute. A 5-minute passive rest period will be provided between successive vibration conditions to minimize fatigue and potential carryover effects and to allow the hemodynamic response to return toward baseline before the next condition.
The primary neurophysiological outcome will be the baseline-corrected change in oxygenated hemoglobin concentration (ΔHbO) in the bilateral S1 measured using fNIRS during each vibration condition. Secondary fNIRS outcomes will include changes in deoxygenated hemoglobin and total hemoglobin concentrations, peak oxygenated hemoglobin response, time to peak response, and area under the oxygenated hemoglobin response curve.
The effects of vibration frequency, amplitude, and direction, including their interactions, on the primary fNIRS outcome will be evaluated using a linear mixed-effects model with participant treated as a repeated or random effect. Condition order, testing period, baseline response, and preceding condition may be considered to evaluate potential sequence or carryover effects.
The optimal vibration parameters will not be selected solely on the basis of the largest cortical response. Parameter selection will integrate the magnitude and consistency of the bilateral S1 hemodynamic response with predefined criteria related to participant comfort, biomechanical safety, technical stability and performance of the stimulation apparatus, and suitability for subsequent incorporation into a wearable sensory stimulation belt. The selected parameters will subsequently be used in the Phase III randomized controlled trial.
研究の種類
入学 (推定)
段階
- 適用できない
連絡先と場所
研究連絡先
- 名前:Peemongkon Wattananon, PhD
- 電話番号:21803 +66-2-441-5450
- メール:peemongkon.wat@mahidol.ac.th
研究連絡先のバックアップ
- 名前:Apinkarn Jaroenlarp, PhD Candidate
- 電話番号:+66-89-329-6194
- メール:j.apinkarn@hotmail.com
研究場所
-
-
Changwat Nakhon Pathom
-
Salaya、Changwat Nakhon Pathom、タイ、73170
- Faculty of Physical Therapy, Mahidol University
-
コンタクト:
- Peemongkon Wattananon, PhD
- 電話番号:21803 +66-2-441-5450
- メール:peemongkon.wat@mahidol.ac.th
-
コンタクト:
- Apinkarn Jaroenlarp, PhD Candidate
- 電話番号:+66-89-329-6194
- メール:j.apinkarn@hotmail.com
-
主任研究者:
- Peemongkon Wattananon, PhD
-
副調査官:
- Apinkarn Jaroenlarp, PhD Candidate
-
副調査官:
- Preeyajit Anukulpipat, BSc
-
副調査官:
- Nguyen The Minh Hung, BSc
-
副調査官:
- Kent Fhilip Aseron, BSc
-
-
参加基準
適格基準
就学可能な年齢
- 大人
健康ボランティアの受け入れ
説明
Inclusion Criteria:
- Office workers who currently sit for at least 6 hours per workday.
- Age 20-60 years.
- Chronic nonspecific low back pain for at least 3 months.
- Current pain intensity of at least 2/10 on the Numeric Pain Rating Scale.
Exclusion Criteria:
- History of seizure for either the subject or any family member
- Implanted pacemaker
- Contraindications for TMS and fNIRS, including open wound, infection, lesions, arteriosclerosis, history of hemophilia, or demand-type pacemaker
- Acute cerebral hemorrhage
- History of major spinal surgery, fracture, or traumatic injury to the lumbar spine.
- Evidence of neurological deficits (e.g., radiculopathy, loss of sensation, or motor weakness in lower limbs).
- Diagnosis of systemic inflammatory conditions (e.g., Ankylosing Spondylitis, Rheumatoid Arthritis).
- Allergy to adhesives or history of severe skin sensitivity to vibration/mechanical pressure.
- Body Mass Index (BMI) > 30 kg/m2 (to ensure clarity of RUSI, dEMG, and fNIRs signal quality).
- Pregnancy (due to changes in spinal biomechanics and hormones)
研究計画
研究はどのように設計されていますか?
デザインの詳細
- 主な目的:他の
- 割り当て:なし
- 介入モデル:単一グループの割り当て
- マスキング:なし(オープンラベル)
武器と介入
参加者グループ / アーム |
介入・治療 |
|---|---|
|
実験的:Vibration parameter
A customized vibration apparatus will deliver controlled mechanical stimulation over the bilateral lumbar multifidus region.
Participants will receive eight randomized combinations of vibration frequency, amplitude, and direction.
Each condition will be delivered for 1 minute, followed by a 5-minute passive rest period.
|
A customized vibration apparatus will deliver controlled mechanical stimulation over the bilateral lumbar multifidus region.
Participants will receive eight randomized combinations of vibration frequency, amplitude, and direction.
Each condition will be delivered for 1 minute, followed by a 5-minute passive rest period.
|
この研究は何を測定していますか?
主要な結果の測定
結果測定 |
メジャーの説明 |
時間枠 |
|---|---|---|
|
Change in oxygenated hemoglobin concentration in bilateral primary somatosensory cortex
時間枠:During each 1-minute vibration condition relative to its corresponding pre-stimulation baseline during the single Phase II parameter-optimization session.
|
Baseline-corrected change in oxygenated hemoglobin concentration (ΔHbO) recorded from the bilateral primary somatosensory cortex using an eight-channel functional near-infrared spectroscopy system during lumbar vibration.
|
During each 1-minute vibration condition relative to its corresponding pre-stimulation baseline during the single Phase II parameter-optimization session.
|
二次結果の測定
結果測定 |
メジャーの説明 |
時間枠 |
|---|---|---|
|
Change in deoxygenated hemoglobin concentration in the bilateral primary somatosensory cortex
時間枠:During each vibration condition relative to the immediately preceding resting baseline during the Phase II parameter-optimization session
|
Deoxygenated hemoglobin concentration (ΔHHb) will be recorded from the bilateral primary somatosensory cortex using an eight-channel functional near-infrared spectroscopy (fNIRS) system.
The outcome will be expressed as the baseline-corrected change in HHb during each lumbar vibration condition relative to the immediately preceding resting baseline
|
During each vibration condition relative to the immediately preceding resting baseline during the Phase II parameter-optimization session
|
|
Change in total hemoglobin concentration in the bilateral primary somatosensory cortex
時間枠:During each vibration condition relative to the immediately preceding resting baseline during the Phase II parameter-optimization session
|
Total hemoglobin concentration (ΔHbT), calculated from oxygenated and deoxygenated hemoglobin signals, will be recorded from the bilateral primary somatosensory cortex using fNIRS.
The outcome will be expressed as the baseline-corrected change in HbT during each lumbar vibration condition
|
During each vibration condition relative to the immediately preceding resting baseline during the Phase II parameter-optimization session
|
|
Peak oxygenated hemoglobin response in the bilateral primary somatosensory cortex
時間枠:During each vibration condition relative to the immediately preceding resting baseline during the Phase II parameter-optimization session
|
The maximum baseline-corrected increase in oxygenated hemoglobin concentration (peak ΔHbO) within the predefined response window will be determined for each vibration condition.
Left and right S1 responses may also be summarized separately and bilaterally
|
During each vibration condition relative to the immediately preceding resting baseline during the Phase II parameter-optimization session
|
|
Area under the oxygenated hemoglobin response curve in the bilateral primary somatosensory cortex
時間枠:During each vibration condition relative to the immediately preceding resting baseline during the Phase II parameter-optimization session
|
The area under the curve (AUC) of the baseline-corrected oxygenated hemoglobin response will be calculated over the predefined response window for each vibration condition to quantify the magnitude and duration of the S1 hemodynamic response
|
During each vibration condition relative to the immediately preceding resting baseline during the Phase II parameter-optimization session
|
|
Corticospinal excitability of the lumbar multifidus measured by transcranial magnetic stimulation
時間枠:During Visit 1 of Phase II, prior to the vibration-parameter optimization session
|
Corticospinal excitability will be assessed using single-pulse transcranial magnetic stimulation with surface EMG recording from the lumbar multifidus.
|
During Visit 1 of Phase II, prior to the vibration-parameter optimization session
|
|
Corticospinal excitability of the lumbar erector spinae measured by transcranial magnetic stimulation
時間枠:During Visit 1 of Phase II, prior to the vibration-parameter optimization session
|
Corticospinal excitability will be assessed using single-pulse transcranial magnetic stimulation with surface EMG recording from the lumbar erector spinae.
|
During Visit 1 of Phase II, prior to the vibration-parameter optimization session
|
|
Change in oxygenated hemoglobin concentration during unstable sitting
時間枠:During each sitting condition relative to the immediately preceding resting baseline in visit 1.
|
Cortical hemodynamic responses over the bilateral primary somatosensory cortex will be recorded using fNIRS during unstable sitting with eyes open and eyes closed.
|
During each sitting condition relative to the immediately preceding resting baseline in visit 1.
|
|
Postural-control response during unstable sitting
時間枠:During each vibration condition relative to the immediately preceding resting baseline in visit 1
|
Postural-control behavior will be quantified during unstable sitting using inertial measurement units positioned at L1, S1, and the unstable chair.
|
During each vibration condition relative to the immediately preceding resting baseline in visit 1
|
|
Lumbar multifidus motor-unit behavior during loaded forward bending
時間枠:During the loaded forward-bending assessment at baseline in Visit 1.
|
Motor-unit behavior of the bilateral lumbar multifidus will be assessed using decomposition electromyography during repeated 45° trunk flexion-extension while holding a load equivalent to 5% of body weight.
|
During the loaded forward-bending assessment at baseline in Visit 1.
|
|
Lumbar multifidus contractile response measured by rehabilitative ultrasound imaging
時間枠:During the baseline assessment in Visit 1
|
Lumbar multifidus thickness will be measured at rest and during contralateral arm lifting using B-mode rehabilitative ultrasound imaging at the L4-L5 level.
|
During the baseline assessment in Visit 1
|
協力者と研究者
スポンサー
捜査官
- 主任研究者:Peemongkon Wattananon, PhD、Mahidol university
出版物と役立つリンク
一般刊行物
- Wattananon P, Sungnak P, Songjaroen S, Kantha P, Hsu WL, Wang HK. Using neuromuscular electrical stimulation in conjunction with ultrasound imaging technique to investigate lumbar multifidus muscle activation deficit. Musculoskelet Sci Pract. 2020 Dec;50:102215. doi: 10.1016/j.msksp.2020.102215. Epub 2020 Jul 13.
- Masse-Alarie H, Beaulieu LD, Preuss R, Schneider C. The side of chronic low back pain matters: evidence from the primary motor cortex excitability and the postural adjustments of multifidi muscles. Exp Brain Res. 2017 Mar;235(3):647-659. doi: 10.1007/s00221-016-4834-y. Epub 2016 Nov 15.
- Sungnak P, Songjaroen S, Krityakiarana W, Wang HK, Richards J, Wattananon P. Individuals With Impaired Lumbopelvic Control Demonstrate Lumbar Multifidus Muscle Activation Deficit Using Ultrasound Imaging in Conjunction With Electrical Stimulation: A Cross-sectional Study. Arch Phys Med Rehabil. 2022 Oct;103(10):1951-1957. doi: 10.1016/j.apmr.2022.02.010. Epub 2022 Mar 9.
- Wattananon P, Kongoun S, Klahan K, Silfies SP, Gilliam JR, Richards J. Trunk kinematics and motor unit behavior during different loads and speeds in individuals with and without aberrant movement patterns during active forward bending: A cross-sectional study. PLoS One. 2025 Apr 16;20(4):e0321084. doi: 10.1371/journal.pone.0321084. eCollection 2025.
- Wattananon P, Thu KW, Maharjan S, Sornkaew K, Wang HK. Cortical excitability and multifidus activation responses to transcranial direct current stimulation in patients with chronic low back pain during remission. Sci Rep. 2023 Sep 27;13(1):16242. doi: 10.1038/s41598-023-43597-7.
- Masse-Alarie H, Shraim M, Hodges PW. Sensorimotor Integration in Chronic Low Back Pain. Neuroscience. 2024 Aug 6;552:29-38. doi: 10.1016/j.neuroscience.2024.06.008. Epub 2024 Jun 13.
- Gilliam JR, Mandal D, Wattananon P, Banerjee S, Herter TM, Silfies SP. Vibration-Induced Alteration in Trunk Extensor Muscle Proprioception as a Model for Impaired Trunk Control in Low Back Pain. Brain Sci. 2024 Jun 28;14(7):657. doi: 10.3390/brainsci14070657.
- Koppenhaver SL, Hebert JJ, Fritz JM, Parent EC, Teyhen DS, Magel JS. Reliability of rehabilitative ultrasound imaging of the transversus abdominis and lumbar multifidus muscles. Arch Phys Med Rehabil. 2009 Jan;90(1):87-94. doi: 10.1016/j.apmr.2008.06.022.
- Franceschini MA, Fantini S, Thompson JH, Culver JP, Boas DA. Hemodynamic evoked response of the sensorimotor cortex measured noninvasively with near-infrared optical imaging. Psychophysiology. 2003 Jul;40(4):548-60. doi: 10.1111/1469-8986.00057.
- Li Y, Xu Z, Xie H, Fu R, Lo WLA, Cheng X, Yang J, Ge L, Yu Q, Wang C. Changes in cortical activation during upright stance in individuals with chronic low back pain: An fNIRS study. Front Hum Neurosci. 2023 Feb 3;17:1085831. doi: 10.3389/fnhum.2023.1085831. eCollection 2023.
- Hamer S, Curcic-Blake B, van der Zee EA, van Heuvelen MJG. The acute effects of whole-body vibration exercise on cortical activation in young adults: An fNIRS study. Behav Brain Res. 2025 Mar 5;480:115381. doi: 10.1016/j.bbr.2024.115381. Epub 2024 Dec 5.
研究記録日
主要日程の研究
研究開始 (推定)
一次修了 (推定)
研究の完了 (推定)
試験登録日
最初に提出
QC基準を満たした最初の提出物
最初の投稿 (実際)
学習記録の更新
投稿された最後の更新 (実際)
QC基準を満たした最後の更新が送信されました
最終確認日
詳しくは
本研究に関する用語
その他の研究ID番号
- Sensory-Stimulation-Phase-II
個々の参加者データ (IPD) の計画
個々の参加者データ (IPD) を共有する予定はありますか?
医薬品およびデバイス情報、研究文書
米国FDA規制医薬品の研究
米国FDA規制機器製品の研究
この情報は、Web サイト clinicaltrials.gov から変更なしで直接取得したものです。研究の詳細を変更、削除、または更新するリクエストがある場合は、register@clinicaltrials.gov。 までご連絡ください。 clinicaltrials.gov に変更が加えられるとすぐに、ウェブサイトでも自動的に更新されます。