Quantitative assessment of the tendon-pulley interface in trigger finger: a pilot feasibility study of a wearable electrical contact resistance sensor.
prospective_cohort · Level II
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- Record sourced from PubMed, PMID 42251423.
- Also identified by DOI 10.1186/s13018-026-06990-2.
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Abstract
Trigger finger (stenosing tenosynovitis) reflects abnormal tendon-pulley mechanics, primarily at the A1 pulley; however, objective assessment during functional motion remains limited in routine clinical practice. We evaluated electrical contact resistance (ECR) from a wearable tactile sensor during standardized digit motion and examined its association with symptoms. Nine participants with Green grade II-III trigger finger were prospectively enrolled. An origami-inspired pentagon-knot graphene-paper tactile sensor measured ECR over the A1 and A2 pulleys during repeated flexion-extension cycles. A 4-week intervention program (electrical stimulation plus infrared irradiation; three sessions per week) enabled repeated measurements. ECR and patient-reported outcomes were collected at weekly Tuesday assessments, with ECR recorded immediately before and after the session (ECR<sub>pre</sub> and ECR<sub>post</sub>). Outcomes included pain (visual analog scale [VAS]) and triggering severity (ST), frequency (FT), and functional impact (FIT). Within-session change was defined as ΔECR<sub>session</sub> = ECR<sub>pre</sub> - ECR<sub>post</sub>. Analyses used linear mixed-effects models, repeated-measures correlation (rmcorr; r<sub>rm</sub> coefficient) and week-adjusted fixed-effects regression. Sensor placement and recording were feasible, with no adverse events. Across 27 paired weekly sessions (Weeks 1-4), ECR decreased from pre- to post-session at both pulleys (model-estimated mean ΔECR<sub>session</sub>: A1 0.0795; A2 0.0990; both P < 0.001). A1 ECR<sub>pre</sub> declined over Weeks 1-4 (r<sub>rm</sub> = - 0.672; P = 0.0016). At matched weekly timepoints (N = 6; n = 24), A1 ECR<sub>pre</sub> correlated with VAS (r<sub>rm</sub> = 0.781; P < 0.001), FT (r<sub>rm</sub> = 0.578; P = 0.0095), and ST (r<sub>rm</sub> = 0.543; P = 0.0164), but not FIT (r<sub>rm</sub> = 0.165; P = 0.50). Larger A1 ΔECR<sub>session</sub> values were associated with greater subsequent week-to-week pain improvement (r<sub>rm</sub> = 0.625; P = 0.0042). In a fixed-effects model adjusting for week, A1 ECR<sub>pre</sub> independently predicted VAS (β = 29.19; P = 0.018). Wearable ECR sensing was safe and feasible in this pilot study and demonstrated consistent within-session responsiveness. Clinically, motion-acquired ECR may serve as an objective adjunct for tracking session-level changes and week-to-week status with symptom scales. Retrospectively registered at ChiCTR (ChiCTR2600120811 approved).