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Published in: The Egyptian Journal of Neurology, Psychiatry and Neurosurgery 1/2024

Open Access 01-12-2024 | Parkinson's Disease | Research

Evaluation of peripheral and autonomic nervous systems dysfunctions in patients with Parkinson’s disease

Authors: Osama A. Ragab, Ehab S. Mohamed, Mahmoud H. Nassar

Published in: The Egyptian Journal of Neurology, Psychiatry and Neurosurgery | Issue 1/2024

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Abstract

Background

Peripheral neuropathy (PN) is increasingly recognized in Parkinson’s disease (PD). This study aimed to evaluate peripheral nerve and autonomic nervous system dysfunction in PD. Forty patients with PD (20 drug-naïve, 20 on treatment) and 20 controls underwent neurological examination, Toronto Clinical Neuropathy Score (TCNS), nerve conduction studies, autonomic function tests including (heart rate variability, Blood pressure changes with standing and sustained handgrip, and sudomotor pathways. The Ewing classification system scored each test to quantify autonomic failure severity). Laboratory tests (B12, homocysteine, methylmalonic acid).

Results

Treated patients with PD had higher MDS-UPDRS scores than drug-naïve (p = 0.001). TCNS indicated mild PN in some drug-naïve patients, and mild–moderate PN in treated patients. Nerve conduction studies showed significant sensory and motor neuropathy in treated versus drug-naïve PD and controls. Treated patients had lower B12, higher homocysteine/methylmalonic acid than other groups. Across autonomic tests, controls had the most normal results, followed by drug-naïve patients, with treated patients being most abnormal. Autonomic dysfunction correlated with disease duration, severity, L-dopa dose. Lower B12, higher homocysteine/methylmalonic acid levels were associated with greater neuropathy and disease severity.

Conclusion

Patients with PD show evidence of PN and autonomic dysfunction, which is milder in drug-naïve patients but worsens with disease progression and treatment. Peripheral nervous system assessments may help diagnose and monitor PD neuropathy and effects of interventions.
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Literature
2.
go back to reference Corrà MF, Vila-Chã N, Sardoeira A, Hansen C, Sousa AP, Reis I, Sambayeta F, et al. Peripheral neuropathy in Parkinson’s disease: prevalence and functional impact on gait and balance. Brain. 2023;146(1):225–36.CrossRefPubMed Corrà MF, Vila-Chã N, Sardoeira A, Hansen C, Sousa AP, Reis I, Sambayeta F, et al. Peripheral neuropathy in Parkinson’s disease: prevalence and functional impact on gait and balance. Brain. 2023;146(1):225–36.CrossRefPubMed
3.
go back to reference Paul DA, Qureshi AR, Rana AQ. Peripheral neuropathy in Parkinson’s disease. Neurol Sci. 2020;41:2691–701.CrossRefPubMed Paul DA, Qureshi AR, Rana AQ. Peripheral neuropathy in Parkinson’s disease. Neurol Sci. 2020;41:2691–701.CrossRefPubMed
4.
go back to reference Ramachandran A, Jose J, Gafoor AV, Das S, Balaram N. Prevalence and risk factors of peripheral neuropathy in Parkinson’s disease. Ann Indian Acad Neurol. 2022;25(6):1109–15.CrossRefPubMedPubMedCentral Ramachandran A, Jose J, Gafoor AV, Das S, Balaram N. Prevalence and risk factors of peripheral neuropathy in Parkinson’s disease. Ann Indian Acad Neurol. 2022;25(6):1109–15.CrossRefPubMedPubMedCentral
5.
go back to reference Chen Z, Li G, Liu J. Autonomic dysfunction in Parkinson’s disease: implications for pathophysiology, diagnosis, and treatment. Neurobiol Dis. 2020;134: 104700.CrossRefPubMed Chen Z, Li G, Liu J. Autonomic dysfunction in Parkinson’s disease: implications for pathophysiology, diagnosis, and treatment. Neurobiol Dis. 2020;134: 104700.CrossRefPubMed
6.
go back to reference Jan A, Gonçalves NP, Vaegter CB, Jensen PH, Ferreira N. The prion-like spreading of alpha-synuclein in Parkinson’s disease: update on models and hypotheses. Int J Mol Sci. 2021;22(15):8338.CrossRefPubMedPubMedCentral Jan A, Gonçalves NP, Vaegter CB, Jensen PH, Ferreira N. The prion-like spreading of alpha-synuclein in Parkinson’s disease: update on models and hypotheses. Int J Mol Sci. 2021;22(15):8338.CrossRefPubMedPubMedCentral
7.
go back to reference Hughes AJ, Ben-Shlomo Y, Daniel SE, Lees AJ. What features improve the accuracy of clinical diagnosis in Parkinson’s disease: a clinicopathologic study. Neurology. 1992;42(6):1142.CrossRefPubMed Hughes AJ, Ben-Shlomo Y, Daniel SE, Lees AJ. What features improve the accuracy of clinical diagnosis in Parkinson’s disease: a clinicopathologic study. Neurology. 1992;42(6):1142.CrossRefPubMed
8.
go back to reference Goetz CG, Tilley BC, Shaftman SR, Stebbins GT, Fahn S, Martinez-Martin P, et al. Movement Disorder Society-sponsored revision of the Unified Parkinson’s Disease Rating Scale (MDS-UPDRS): scale presentation and clinimetric testing results. Mov Disord. 2008;23(15):2129–70.CrossRefPubMed Goetz CG, Tilley BC, Shaftman SR, Stebbins GT, Fahn S, Martinez-Martin P, et al. Movement Disorder Society-sponsored revision of the Unified Parkinson’s Disease Rating Scale (MDS-UPDRS): scale presentation and clinimetric testing results. Mov Disord. 2008;23(15):2129–70.CrossRefPubMed
9.
10.
go back to reference Tomlinson CL, Stowe R, Patel S, Rick C, Gray R, Clarke CE. Systematic review of levodopa dose equivalency reporting in Parkinson’s disease. Mov disord. 2010;25(15):2649–53.CrossRefPubMed Tomlinson CL, Stowe R, Patel S, Rick C, Gray R, Clarke CE. Systematic review of levodopa dose equivalency reporting in Parkinson’s disease. Mov disord. 2010;25(15):2649–53.CrossRefPubMed
11.
go back to reference Visser M, Marinus J, Stiggelbout AM, van Hilten JJ. Assessment of autonomic dysfunction in Parkinson’s disease: the SCOPA-AUT. Mov Disord. 2004;19:1306–12.CrossRefPubMed Visser M, Marinus J, Stiggelbout AM, van Hilten JJ. Assessment of autonomic dysfunction in Parkinson’s disease: the SCOPA-AUT. Mov Disord. 2004;19:1306–12.CrossRefPubMed
12.
go back to reference Bostantjopoulou S, Katsarou Z, Danglis I, Karakasis H, Milioni D, Falup-Pecurariu C. Self-reported autonomic symptoms in Parkinson’s disease: properties of the SCOPA-AUT scale. Hippokratia. 2016;20(2):115.PubMedPubMedCentral Bostantjopoulou S, Katsarou Z, Danglis I, Karakasis H, Milioni D, Falup-Pecurariu C. Self-reported autonomic symptoms in Parkinson’s disease: properties of the SCOPA-AUT scale. Hippokratia. 2016;20(2):115.PubMedPubMedCentral
13.
go back to reference Abraham A, Barnett C, Katzberg HD, Lovblom LE, Perkins BA, Bril V. Toronto Clinical Neuropathy Score is valid for a wide spectrum of polyneuropathies. Eur J Neurol. 2018;25(3):484–90.CrossRefPubMed Abraham A, Barnett C, Katzberg HD, Lovblom LE, Perkins BA, Bril V. Toronto Clinical Neuropathy Score is valid for a wide spectrum of polyneuropathies. Eur J Neurol. 2018;25(3):484–90.CrossRefPubMed
14.
go back to reference Kallio M, Suominen K, Bianchi AM, Mäkikallio T, Haapaniemi T, Astafiev S, et al. Comparison of heart rate variability analysis methods in patients with Parkinson’s disease. Med Biol Eng Comput. 2002;40:408–14.CrossRefPubMed Kallio M, Suominen K, Bianchi AM, Mäkikallio T, Haapaniemi T, Astafiev S, et al. Comparison of heart rate variability analysis methods in patients with Parkinson’s disease. Med Biol Eng Comput. 2002;40:408–14.CrossRefPubMed
15.
go back to reference Pop-Busui R, Backlund JY, Bebu I, Braffett BH, Lorenzi G, White NH, et al. Utility of using electrocardiogram measures of heart rate variability as a measure of cardiovascular autonomic neuropathy in type 1 diabetes patients. J Diabetes Investig. 2022;13(1):125–33.CrossRefPubMed Pop-Busui R, Backlund JY, Bebu I, Braffett BH, Lorenzi G, White NH, et al. Utility of using electrocardiogram measures of heart rate variability as a measure of cardiovascular autonomic neuropathy in type 1 diabetes patients. J Diabetes Investig. 2022;13(1):125–33.CrossRefPubMed
16.
go back to reference Schneider C, Wiewelhove T, Raeder C, Flatt AA, Hoos O, Hottenrott L, et al. Heart rate variability monitoring during strength and high-intensity interval training overload microcycles. Front Physiol. 2019;10:582.CrossRefPubMedPubMedCentral Schneider C, Wiewelhove T, Raeder C, Flatt AA, Hoos O, Hottenrott L, et al. Heart rate variability monitoring during strength and high-intensity interval training overload microcycles. Front Physiol. 2019;10:582.CrossRefPubMedPubMedCentral
17.
go back to reference Hamed SA, Elhadad AF, Abdel-aal RF, Hamed EA. Cardiac autonomic function with iron deficiency anemia. J Neurol Exp Neurosci. 2020;6(2):51–7.CrossRef Hamed SA, Elhadad AF, Abdel-aal RF, Hamed EA. Cardiac autonomic function with iron deficiency anemia. J Neurol Exp Neurosci. 2020;6(2):51–7.CrossRef
18.
go back to reference Idiaquez J, Casar JC, Fadic R, Iturriaga R. Sympathetic and electrochemical skin responses in the assessment of sudomotor function: a comparative study. Neurophysiol Clin. 2023;53(2): 102840.CrossRefPubMed Idiaquez J, Casar JC, Fadic R, Iturriaga R. Sympathetic and electrochemical skin responses in the assessment of sudomotor function: a comparative study. Neurophysiol Clin. 2023;53(2): 102840.CrossRefPubMed
19.
go back to reference Ewing DJ, Martyn CN, Young RJ, Clarke BF. The value of cardiovascular autonomic function tests: 10 years experience in diabetes. Diabetes Care. 1985;8(5):491–8.CrossRefPubMed Ewing DJ, Martyn CN, Young RJ, Clarke BF. The value of cardiovascular autonomic function tests: 10 years experience in diabetes. Diabetes Care. 1985;8(5):491–8.CrossRefPubMed
20.
go back to reference Grambalová Z, Kaiserová M, Vaštík M, Menšíková K, Otruba P, Zapletalová J, et al. Peripheral neuropathy in Parkinson’s disease. Neuroendocrinol Lett. 2015;1(36):363–7. Grambalová Z, Kaiserová M, Vaštík M, Menšíková K, Otruba P, Zapletalová J, et al. Peripheral neuropathy in Parkinson’s disease. Neuroendocrinol Lett. 2015;1(36):363–7.
21.
go back to reference Notermans NC, Wokke JH, Van der Graaf Y, Franssen H, Van Dijk GW, Jennekens FG. Chronic idiopathic axonal polyneuropathy: a five year follow up. J Neurol Neurosurg Psychiatry. 1994;57(12):1525–7.CrossRefPubMedPubMedCentral Notermans NC, Wokke JH, Van der Graaf Y, Franssen H, Van Dijk GW, Jennekens FG. Chronic idiopathic axonal polyneuropathy: a five year follow up. J Neurol Neurosurg Psychiatry. 1994;57(12):1525–7.CrossRefPubMedPubMedCentral
22.
go back to reference Zis P, Grünewald RA, Chaudhuri RK, Hadjivassiliou M. Peripheral neuropathy in idiopathic Parkinson’s disease: a systematic review. J Neurol Sci. 2017;15(378):204–9.CrossRef Zis P, Grünewald RA, Chaudhuri RK, Hadjivassiliou M. Peripheral neuropathy in idiopathic Parkinson’s disease: a systematic review. J Neurol Sci. 2017;15(378):204–9.CrossRef
23.
go back to reference Ceravolo R, Cossu G, Bandettini di Poggio M, Santoro L, Barone P, et al. Neuropathy and levodopa in Parkinson’s disease: evidence from a multicenter study. Mov Disord. 2013;28(10):1391–7.CrossRefPubMed Ceravolo R, Cossu G, Bandettini di Poggio M, Santoro L, Barone P, et al. Neuropathy and levodopa in Parkinson’s disease: evidence from a multicenter study. Mov Disord. 2013;28(10):1391–7.CrossRefPubMed
24.
go back to reference Fan X, Zhang L, Li H, Chen G, Qi G, Ma X, Jin Y. Role of homocysteine in the development and progression of Parkinson’s disease. Ann Clin Transl Neurol. 2020;7(11):2332–8.CrossRefPubMedPubMedCentral Fan X, Zhang L, Li H, Chen G, Qi G, Ma X, Jin Y. Role of homocysteine in the development and progression of Parkinson’s disease. Ann Clin Transl Neurol. 2020;7(11):2332–8.CrossRefPubMedPubMedCentral
25.
go back to reference Al-Kuraishy HM, Al-Gareeb AI, Elewa YH, Zahran MH, Alexiou A, Papadakis M, et al. Parkinson’s disease risk and hyperhomocysteinemia: the possible link. Cell Mol Neurobiol. 2023;19:1–7. Al-Kuraishy HM, Al-Gareeb AI, Elewa YH, Zahran MH, Alexiou A, Papadakis M, et al. Parkinson’s disease risk and hyperhomocysteinemia: the possible link. Cell Mol Neurobiol. 2023;19:1–7.
26.
go back to reference Podgorny PJ, Suchowersky O, Romanchuk KG, Feasby TE. Evidence for small fiber neuropathy in early Parkinson’s disease. Parkinsonism Relat Disord. 2016;1(28):94–9.CrossRef Podgorny PJ, Suchowersky O, Romanchuk KG, Feasby TE. Evidence for small fiber neuropathy in early Parkinson’s disease. Parkinsonism Relat Disord. 2016;1(28):94–9.CrossRef
27.
go back to reference Gibbons CH, Simon DK, Huang M, Tilley B, Aminoff MJ, Bainbridge JL, et al. Autonomic and electrocardiographic findings in Parkinson’s disease. Auton Neurosci. 2017;1(205):93–8.CrossRef Gibbons CH, Simon DK, Huang M, Tilley B, Aminoff MJ, Bainbridge JL, et al. Autonomic and electrocardiographic findings in Parkinson’s disease. Auton Neurosci. 2017;1(205):93–8.CrossRef
28.
go back to reference Siepmann T, Arndt M, Sedghi A, Szatmári S Jr, Horváth T, Takáts A, et al. Two-Year observational study of autonomic skin function in patients with Parkinson’s disease compared to healthy individuals. Eur J Neurol. 2023;30(5):1281–92.CrossRefPubMed Siepmann T, Arndt M, Sedghi A, Szatmári S Jr, Horváth T, Takáts A, et al. Two-Year observational study of autonomic skin function in patients with Parkinson’s disease compared to healthy individuals. Eur J Neurol. 2023;30(5):1281–92.CrossRefPubMed
29.
go back to reference Brumberg J, Kuzkina A, Lapa C, Mammadova S, Buck A, Volkmann J, et al. Dermal and cardiac autonomic fiber involvement in Parkinson’s disease and multiple system atrophy. Neurobiol Dis. 2021;1(153): 105332.CrossRef Brumberg J, Kuzkina A, Lapa C, Mammadova S, Buck A, Volkmann J, et al. Dermal and cardiac autonomic fiber involvement in Parkinson’s disease and multiple system atrophy. Neurobiol Dis. 2021;1(153): 105332.CrossRef
30.
go back to reference Che NN, Chen S, Jiang QH, Chen SY, Zhao ZX, Li X, et al. Corneal confocal microscopy differentiates patients with Parkinson’s disease with and without autonomic involvement. NPJ Parkinson’s Dis. 2022;8(1):114.CrossRef Che NN, Chen S, Jiang QH, Chen SY, Zhao ZX, Li X, et al. Corneal confocal microscopy differentiates patients with Parkinson’s disease with and without autonomic involvement. NPJ Parkinson’s Dis. 2022;8(1):114.CrossRef
31.
go back to reference Comi C, Magistrelli L, Oggioni GD, Carecchio M, Fleetwood T, Cantello R, et al. Peripheral nervous system involvement in Parkinson’s disease: evidence and controversies. Parkinsonism Relat Disord. 2014;20(12):1329–34.CrossRefPubMed Comi C, Magistrelli L, Oggioni GD, Carecchio M, Fleetwood T, Cantello R, et al. Peripheral nervous system involvement in Parkinson’s disease: evidence and controversies. Parkinsonism Relat Disord. 2014;20(12):1329–34.CrossRefPubMed
Metadata
Title
Evaluation of peripheral and autonomic nervous systems dysfunctions in patients with Parkinson’s disease
Authors
Osama A. Ragab
Ehab S. Mohamed
Mahmoud H. Nassar
Publication date
01-12-2024
Publisher
Springer Berlin Heidelberg
DOI
https://doi.org/10.1186/s41983-024-00827-7

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