Abstract
Study design:
A case–control investigation.
Objectives:
The objective of this study was to quantitatively study impaired ability to appropriately adjust pinch strength while holding a small object in patients with cervical spondylotic myelopathy (CSM).
Setting:
Kochi Medical School Hospital, Japan.
Methods:
The subjects consisted of 19 CSM patients who had frequent episodes of failing to grasp and hold small objects in their daily life (Group A), 13 CSM patients who did not experience such episodes (Group B) and 16 healthy subjects (Control Group). We continuously measured the dynamic internal pressure of a pneumatic rubber object called a blower pinched by the subject, following two different sets of instructions: (1) pinching with eyes open and with the minimal strength required to prevent dropping; and (2) maintaining a constant pinch strength at given levels with eyes closed.
Results:
Compared with the other two groups, Group A subjects used a significantly (P<0.01) greater pinch strength to avoid dropping the blower held with eyes open and showed a significantly (P<0.01) greater deviation in pinch strength from the baseline values with eyes closed. These tendencies in Group A showed a significant correlation with the tactile perception threshold of the digits (P<0.01) but not with impairment of rapid repetitive movements of the digits that reflects spasticity.
Conclusion:
Our technique applied to CSM patients helps assess functional integrity primarily, if not exclusively, of the fasciculus cuneatus mediating the feedback signals from proprioceptive and cutaneous receptors in the digits, which are otherwise difficult to evaluate quantitatively.
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References
Crandall PH, Batzdorf U . Cervical spondylotic myelopathy. J Neurosurg 1966; 25: 57–66.
Sahrmann SA, Norton BJ . The relationship of voluntary movement to spasticity in the upper motor neuron syndromes. Ann Neurol 1977; 2: 460–465.
Ono K, Ebara S, Fuji T, Yonenobu K, Fujiwara K, Yamashita K . Myelopathy hand: new clinical signs of cervical cord damage. J Bone Joint Surg 1987; 69-B: 215–219.
Tani T, Ishida K, Ushida T, Yamamoto H . Intraoperative electroneurography in the assessment of the level of operation for cervical spondylotic myelopathy in elderly. J Bone Joint Surg (Br) 2000; 82: 269–274.
Tani T, Ushida T, Taniguchi S, Kimura J . Age related shift in the primary sites of involvement in cervical spondylotic myelopathy from lower to upper levels. J Neurol Neurosurg Psychiatry 2002; 73: 316–318.
Ferraro A, Berrera SE . Effects of experimental lesions of the posterior columns in rhesus monkeys. Brain 1934; 57: 307–332.
Dubrovsky B, Davelaar E, Garcia-Rill E . The role of dorsal columns in serial order acts. Exp Neurol 1971; 33: 93–102.
Vierck CJ Jr . Interpretations of the sensory and motor consequences of dorsal column lesions. In: Gordon G (ed). Active Touch. Pergamon Press: Oxford, UK,. 1978, pp 139–159.
Devidoff RA . The dorsal columns. Neurology 1989; 39: 1377–1385.
Doita M, Sakai H, Harada T, Nishida K, Miyamoto H, Kaneko T et al. The influence of proprioceptive impairment on hand function in patients with cervical myelopathy. Spine 2006; 31: 1580–1584.
Japanese Orthopaedic Association. Scoring system for cervical myelopathy. Nippon Seikeigeka Gakkai Zasshi 1994; 68: 490–503.
Vierck CJ Jr . Comparison of forelimb and hindlimb motor deficits following dorsal column section in monkeys. Brain Res 1978; 146: 279–294.
Cooper BY, Glendinning DS, Vierck CJ Jr . Finger movement deficits in the stumptail macaque following lesion of the fasciculus cuneatus. Somatosens Mot Res 1993; 10: 17–29.
Westling G, Johansson RS . Factors influencing the force control during precision grip. Exp Brain Res 1984; 53: 277–284.
Augurelle A-S, Smith AM, Lejeune T, Thonnard J-L . Importance of cutaneous feedback in maintaining a secure grip during manipulation of hand-held objects. J Neurophysiol 2003; 89: 665–671.
Monzée J, Lamarre Y, Smith AM . The effects of digital anesthesia on force control using a precision grip. J Neurophysiol 2003; 89: 672–683.
Witney AG, Wing A, Thonnard J-L, Smith AM . The cutaneous contribution to adaptive precision grip. Trends Neurosci 2004; 27: 637–643.
Hashimoto R, Kanho M, Fujimoto K, Tanaka Y . Left hand clumsiness due to disturbance of kinesthesia after damage to the dorsal column of the high cervical cord. Rinsho Shinkeigaku 1997; 37: 319–325.
Mountcatsle VB. Central nervous system mechanisms in mechanoreceptive sensibility. In: Brookhart JM, Mountcatsle VB (eds). Handbook of Physiology, vol. 3. Sensory processes, part 2. American Physiological Society: Bethesda, MD, USA, 1984, pp 789–878.
Ghez C . The control of movement. In: Kandel ER, Schwartz JH, Jessell TM (eds). Principles of Neural Science, 3rd edn. Elsevier: Tokyo, Japan,. 1991, pp 533–547.
Wycherley AS, Helliwell PS, Bird HA . A novel device for the measurement of proprioception in the hand. Rheumatol 2005; 44: 638–641.
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Akutagawa, T., Tani, T., Kida, K. et al. A new method for characterizing hand dysfunction in cervical spondylotic myelopathy: a preliminary study. Spinal Cord 54, 221–225 (2016). https://doi.org/10.1038/sc.2015.123
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DOI: https://doi.org/10.1038/sc.2015.123


