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"Donggyun Sohn"

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"Donggyun Sohn"

Original Articles
Safe Needle Insertion Locations for Motor Point Injection of the Triceps Brachii Muscle: A Pilot Cadaveric and Ultrasonography Study
Hyun Jung Koo, Hye Jung Park, Geun-Young Park, Yeonjae Han, Donggyun Sohn, Sun Im
Ann Rehabil Med 2019;43(6):635-641.   Published online December 31, 2019
DOI: https://doi.org/10.5535/arm.2019.43.6.635
Objective
To determine the location of the motor endplate zones (MoEPs) for the three heads of the triceps brachii muscles during cadaveric dissection and estimate the safe injection zone using ultrasonography.
Methods
We studied 12 upper limbs of 6 fresh cadavers obtained from body donations to the medical school anatomy institution in Seoul, Korea. The locations of MoEPs were expressed as the percentage ratio of the vertical distance from the posterior acromion angle to the midpoint of the olecranon process. By using the same reference line as that used for cadaveric dissection, the safe injection zone away from the neurovascular bundle was identified in 6 healthy volunteers via ultrasonography. We identified the neurovascular bundle and its location with respect to the distal end of the humerus and measured its depth from the skin surface.
Results
The MoEPs for the long, lateral, and medial heads were located at a median of 43.8%, 54.8%, and 60.4% of the length of the reference line in cadaver dissection. The safe injection zone of the medial head MoEPs corresponded to a depth of approximately 3.5 cm from the skin surface and 1.4 cm away from the humerus, as determined by sonography.
Conclusion
Correct identification of the motor points for each head of the triceps brachii would increase the precision and efficacy of motor point injections to manage elbow extensor spasticity.

Citations

Citations to this article as recorded by  
  • An overlooked cause of upper extremity pain: myofascial trigger points of the triceps muscle and dry needling protocol
    Aylin Ayyıldız, Burak Tayyip Dede, Mustafa Hüseyin Temel, Bülent Alyanak, Mustafa Turgut Yıldızgören, Fatih Bağcıer
    Pain Management.2025; 15(3): 115.     CrossRef
  • Enhancing Botulinum Toxin Injection Precision: The Efficacy of a Single Cadaveric Ultrasound Training Intervention for Improved Anatomical Localization
    Camille Heslot, Omar Khan, Alexis Schnitzler, Chloe Haldane, Romain David, Rajiv Reebye
    Toxins.2024; 16(7): 304.     CrossRef
  • Distribution of the intramuscular innervation of the triceps brachii: Clinical importance in the treatment of spasticity with botulinum neurotoxin
    Kyu‐Ho Yi, Ji‐Hyun Lee, Hye‐Won Hur, Hyung‐Jin Lee, You‐Jin Choi, Hee‐Jin Kim
    Clinical Anatomy.2023; 36(7): 964.     CrossRef
  • Mapping the limb muscle motor points for targeted administration of botulinum toxin in the treatment of focal and segmental spasticity
    A. P. Kovalenko, K. A. Sinelnikov, V. D. Shamigulov, N. N. Akhmedov, E. M. Shamina
    Neurology, Neuropsychiatry, Psychosomatics.2020; 12(6): 61.     CrossRef
  • 10,055 View
  • 208 Download
  • 4 Web of Science
  • 4 Crossref
Rapid, Objective and Non-invasive Diagnosis of Sudomotor Dysfunction in Patients With Lower Extremity Dysesthesia: A Cross-Sectional Study
Choong Sik Chae, Geun Young Park, Yong-Min Choi, Sangeun Jung, Sungjun Kim, Donggyun Sohn, Sun Im
Ann Rehabil Med 2017;41(6):1028-1038.   Published online December 28, 2017
DOI: https://doi.org/10.5535/arm.2017.41.6.1028
Objective

To determine whether patients with lumbosacral (LS) radiculopathy and peripheral polyneuropathy (PPNP) exhibit sudomotor abnormalities and whether SUDOSCAN (Impeto Medical, Paris, France) can complement nerve conduction study (NCS) and electromyography (EMG).

Methods

Outpatients with lower extremity dysesthesia underwent electrophysiologic studies and SUDOSCAN. They were classified as normal (group A), LS radiculopathy (group B), or PPNP (group C). Pain severity was measured by the Michigan Neuropathy Screening Instrument (MNSI) and visual analogue scale (VAS). Demographic features, electrochemical skin conductance (ESC) values on hands and feet, and SUDOSCAN-risk scores were analyzed.

Results

There were no statistical differences in MNSI and VAS among the three groups. Feet-ESC and hands-ESC values in group C were lower than group A and B. SUDOSCAN-risk score in group B and C was higher than group A. With a cut-off at 48 microSiemens of feet-ESC, PPNP was detected with 57.1% sensitivity and 94.2% specificity (area under the curve [AUC]=0.780; 95% confidence interval [CI], 0646–0.915). With a SUDOSCAN-risk score cut-off at 29%, NCS and EMG abnormalities related to LS radiculopathy and PPNP were detected with 64.1% sensitivity and 84.2% specificity (AUC=0.750; 95% CI, 0.674–0.886).

Conclusion

SUDOSCAN can discriminate outpatients with abnormal electrophysiological findings and sudomotor dysfunction. This technology may be a complementary tool to NCS and EMG in outpatients with lower extremity dysesthesia.

Citations

Citations to this article as recorded by  
  • Assessment of small fiber neuropathy and distal sensory neuropathy in female patients with fibromyalgia
    Hong Ki Min, Sun Im, Geun-Young Park, Su-Jin Moon
    The Korean Journal of Internal Medicine.2024; 39(6): 989.     CrossRef
  • The value of electrochemical skin conductance measurement by Sudoscan® for assessing autonomic dysfunction in peripheral neuropathies beyond diabetes
    Jean-Pascal Lefaucheur
    Neurophysiologie Clinique.2023; 53(2): 102859.     CrossRef
  • Comparative Analysis of Hematological and Immunological Parameters in Patients with Primary Sjögren’s Syndrome and Peripheral Neuropathy
    Ancuta Mihai, Diana Maria Chitimus, Ciprian Jurcut, Florin Cristian Blajut, Daniela Opris-Belinski, Constantin Caruntu, Ruxandra Ionescu, Ana Caruntu
    Journal of Clinical Medicine.2023; 12(11): 3672.     CrossRef
  • Dysfunction of peripheral somatic and autonomic nervous system in patients with severe forms of Crohn’s disease on biological therapy with TNFα inhibitors–A single center study
    Martin Wasserbauer, Sarka Mala, Katerina Stechova, Stepan Hlava, Pavlina Cernikova, Jan Stovicek, Jiri Drabek, Jan Broz, Dita Pichlerova, Barbora Kucerova, Petra Liskova, Jan Kral, Lucia Bartuskova, Radan Keil, Junji Xing
    PLOS ONE.2023; 18(11): e0294441.     CrossRef
  • Assessment of diabetic small‐fiber neuropathy by using short‐wave infrared hyperspectral imaging
    Yi‐Jing Sheen, Wayne Huey‐Herng Sheu, Hsin‐Che Wang, Jun‐Peng Chen, Yi‐Hsuan Sun, Hsian‐Min Chen
    Journal of Biophotonics.2022;[Epub]     CrossRef
  • Diabetes Distal Peripheral Neuropathy: Subtypes and Diagnostic and Screening Technologies
    Kelley Newlin Lew, Tracey Arnold, Catherine Cantelmo, Francky Jacque, Hugo Posada-Quintero, Pooja Luthra, Ki H. Chon
    Journal of Diabetes Science and Technology.2022; 16(2): 295.     CrossRef
  • Parasympathetic and Sympathetic Monitoring Identifies Earliest Signs of Autonomic Neuropathy
    Nicholas L. DePace, Luis Santos, Ramona Munoz, Ghufran Ahmad, Ashish Verma, Cesar Acosta, Karolina Kaczmarski, Nicholas DePace, Michael E. Goldis, Joe Colombo
    NeuroSci.2022; 3(3): 408.     CrossRef
  • Small fiber neuropathy in Sjögren syndrome: Comparison with other small fiber neuropathies
    Elise Descamps, Julien Henry, Céline Labeyrie, David Adams, Adebs Nasser Ghaidaa, Christophe Vandendries, Clovis Adam, David Aiello, Xavier Mariette, Raphaèle Seror
    Muscle & Nerve.2020; 61(4): 515.     CrossRef
  • Sudomotor function testing by electrochemical skin conductance: does it really measure sudomotor function?
    Sharika Rajan, Marta Campagnolo, Brian Callaghan, Christopher H. Gibbons
    Clinical Autonomic Research.2019; 29(1): 31.     CrossRef
  • 9,764 View
  • 104 Download
  • 9 Web of Science
  • 9 Crossref
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