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Published in: Neurological Sciences 4/2024

21-11-2023 | Parkinson's Disease | Review Article

Imbalance and gait impairment in Parkinson’s disease: discussing postural instability and ataxia

Authors: Carlos Henrique F. Camargo, Silvia Aparecida Ferreira-Peruzzo, Danieli Isabel Romanovitch Ribas, Gustavo L. Franklin, Hélio A. G. Teive

Published in: Neurological Sciences | Issue 4/2024

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Abstract

Gait and balance difficulties pose significant clinical challenges in Parkinson’s disease (PD). The impairment of physiological mechanisms responsible for maintaining natural orthostatism plays a central role in the pathophysiology of postural instability observed in PD. In addition to the well-known rigidity and abnormalities in muscles and joints, various brain regions involved in the regulation of posture, balance, and gait, such as the basal ganglia, cerebellum, and brainstem regions like the pontine peduncle nucleus, are affected in individuals with PD. The recognition of the cerebellum’s role in PD has been increasingly acknowledged. Cortical areas and their connections are associated with freezing of gait, a type of frontal lobe ataxia commonly observed in PD. Furthermore, impairments in the peripheral nervous system, including those caused by levodopatherapy, can contribute to gait impairment and imbalance in PD patients. Consequently, individuals with PD may exhibit frontal ataxia, sensory ataxia, and even cerebellar ataxia as underlying causes of gait disturbances and imbalance, starting from the early stages of the disease. The complex interplay between dysfunctional brain regions, impaired cortical connections, and peripheral nervous system abnormalities contributes to the multifaceted nature of gait and balance difficulties in PD. Understanding the intricate mechanisms is crucial for the development of effective therapeutic approaches targeting these specific deficits in PD.
Literature
1.
go back to reference Postuma RB, Berg D, Stern M, Poewe W, Marek K, Litvan I (2015) MDS Clinical diagnostic criteria for Parkinson’s disease. Mov Disord 30(12):1591–1599CrossRefPubMed Postuma RB, Berg D, Stern M, Poewe W, Marek K, Litvan I (2015) MDS Clinical diagnostic criteria for Parkinson’s disease. Mov Disord 30(12):1591–1599CrossRefPubMed
6.
go back to reference Nutt JG, Marsden CD, Thompson PD (1993) Human walking and higher level gait disorders, particularly in the elderly. Neurology 43:268–279CrossRefPubMed Nutt JG, Marsden CD, Thompson PD (1993) Human walking and higher level gait disorders, particularly in the elderly. Neurology 43:268–279CrossRefPubMed
7.
go back to reference Mansour NR, Fagundes DS (2019) Cinesiologia e biomecânica, 1ª. Artmed/SAGAH, Porto Alegre Mansour NR, Fagundes DS (2019) Cinesiologia e biomecânica, 1ª. Artmed/SAGAH, Porto Alegre
12.
go back to reference Thevathasan W, Debu B, Aziz T, Bloem BR, Blahak C, Butson C, Czernecki V, Foltynie T, Fraix V, Grabli D, Joint C, Lozano AM, Okun MS, Ostrem J, Pavese N, Schrader C, Tai CH, Krauss JK, Moro E, Movement Disorders Society PPN DBS Working Groupin collaboration with the World Society for Stereotactic and Functional Neurosurgery (2018) Pedunculopontine nucleus deep brain stimulation in Parkinson’s disease: a clinical review. Mov Disord 33(1):10–20. https://doi.org/10.1002/mds.27098CrossRefPubMed Thevathasan W, Debu B, Aziz T, Bloem BR, Blahak C, Butson C, Czernecki V, Foltynie T, Fraix V, Grabli D, Joint C, Lozano AM, Okun MS, Ostrem J, Pavese N, Schrader C, Tai CH, Krauss JK, Moro E, Movement Disorders Society PPN DBS Working Groupin collaboration with the World Society for Stereotactic and Functional Neurosurgery (2018) Pedunculopontine nucleus deep brain stimulation in Parkinson’s disease: a clinical review. Mov Disord 33(1):10–20. https://​doi.​org/​10.​1002/​mds.​27098CrossRefPubMed
24.
go back to reference Ricciardi L, Ricciardi D, Lena F, Plotnik M, Petracca M (2020) Kinematic adaptations in Parkinson’s disease during active movements with varying complexity: effects of disease severity and dual tasking. Aging Clin Exp Res 32(11):2299–2306 Ricciardi L, Ricciardi D, Lena F, Plotnik M, Petracca M (2020) Kinematic adaptations in Parkinson’s disease during active movements with varying complexity: effects of disease severity and dual tasking. Aging Clin Exp Res 32(11):2299–2306
25.
go back to reference Wong JD, McGinley JL, Olds TS, Morris ME, Paterson K (2019) Postural control during standing reach in people with Parkinson’s disease. Physiother Res Int 24(1):e1745 Wong JD, McGinley JL, Olds TS, Morris ME, Paterson K (2019) Postural control during standing reach in people with Parkinson’s disease. Physiother Res Int 24(1):e1745
26.
go back to reference Winter DA (1995) Human balance and posture control during standing and walking. Gait Posture 3:193–214CrossRef Winter DA (1995) Human balance and posture control during standing and walking. Gait Posture 3:193–214CrossRef
29.
go back to reference Kendall FP, McCreary EK, Provance PG, Rodgers M, Romani W (2005) Muscles: testing and function, with posture and pain. 5th ed. Wilkins LW&, editor. Philadelphia; 49–118 p. Kendall FP, McCreary EK, Provance PG, Rodgers M, Romani W (2005) Muscles: testing and function, with posture and pain. 5th ed. Wilkins LW&, editor. Philadelphia; 49–118 p.
30.
go back to reference Jarmey C (2018) The Concise Book of Muscles. North Atlantic Books, Berkeley Jarmey C (2018) The Concise Book of Muscles. North Atlantic Books, Berkeley
31.
go back to reference Hall SJ (2019) Basic Biomechanics, 8th edn. McGraw-Hill Education, New York Hall SJ (2019) Basic Biomechanics, 8th edn. McGraw-Hill Education, New York
32.
go back to reference Martinez-Mendez R, Sekine M, Tamura T (2011) Detection of anticipatory postural adjustments prior to gait initiation using inertial wearable sensors. J Neuroeng Rehabil 8(1):8–17CrossRef Martinez-Mendez R, Sekine M, Tamura T (2011) Detection of anticipatory postural adjustments prior to gait initiation using inertial wearable sensors. J Neuroeng Rehabil 8(1):8–17CrossRef
34.
go back to reference King LA, Peterson DS, Mancini M, Carlson-Kuhta P, Fling BW, Nutt JG (2019) Do postural responses in persons with Parkinson’s disease improve with practice of biofeedback? J Neurol Phys Ther 43(1):6 King LA, Peterson DS, Mancini M, Carlson-Kuhta P, Fling BW, Nutt JG (2019) Do postural responses in persons with Parkinson’s disease improve with practice of biofeedback? J Neurol Phys Ther 43(1):6
36.
go back to reference Stylianou AP, McVey MA, Lyons KE, Pahwa R, Luchies CW (2011) Postural sway in patients with mild to moderate Parkinson’s disease. Int J Neurosci 121(11):614–621CrossRefPubMed Stylianou AP, McVey MA, Lyons KE, Pahwa R, Luchies CW (2011) Postural sway in patients with mild to moderate Parkinson’s disease. Int J Neurosci 121(11):614–621CrossRefPubMed
39.
go back to reference Dufour M, Pillu M (2007) Anatomia geral e sistemas do corpo humano. 2ª edição. Manole, São Paulo. Dufour M, Pillu M (2007) Anatomia geral e sistemas do corpo humano. 2ª edição. Manole, São Paulo.
47.
go back to reference Giladi N, Nieuwboer A (2008) Understanding and treating freezing of gait in parkinsonism, proposed working definition, and setting the stage. Mov Disord 23(Suppl 2):S423–S425CrossRefPubMed Giladi N, Nieuwboer A (2008) Understanding and treating freezing of gait in parkinsonism, proposed working definition, and setting the stage. Mov Disord 23(Suppl 2):S423–S425CrossRefPubMed
48.
go back to reference Martens KAE, Shine JM, Walton CC et al (2018) Evidence for subtypes of freezing of gait in Parkinson’s disease. Mov Disord 33(7):1174–1178CrossRef Martens KAE, Shine JM, Walton CC et al (2018) Evidence for subtypes of freezing of gait in Parkinson’s disease. Mov Disord 33(7):1174–1178CrossRef
49.
go back to reference Okuma Y, Yanagisawa N (2008) The clinical spectrum of freezing of gait in Parkinson’s disease. Mov Disord 23(Suppl 2):S426–S430CrossRefPubMed Okuma Y, Yanagisawa N (2008) The clinical spectrum of freezing of gait in Parkinson’s disease. Mov Disord 23(Suppl 2):S426–S430CrossRefPubMed
50.
go back to reference Iansek R, Danoudis M (2016) Freezing of gait in Parkinson’s disease: its pathophysiology and pragmatic approaches to management. Mov Disord Clin Pract 4(3):290–297CrossRefPubMedPubMedCentral Iansek R, Danoudis M (2016) Freezing of gait in Parkinson’s disease: its pathophysiology and pragmatic approaches to management. Mov Disord Clin Pract 4(3):290–297CrossRefPubMedPubMedCentral
51.
go back to reference Snijders AH, Takakusaki K, Debû B et al (2016) Physiology of freezing of gait. Ann Neurol 80(5):644–659CrossRefPubMed Snijders AH, Takakusaki K, Debû B et al (2016) Physiology of freezing of gait. Ann Neurol 80(5):644–659CrossRefPubMed
52.
go back to reference Hallet M (2008) The intrinsic and extrinsec aspects of freezing of gait. Mov Disord 23(0 2):S439–S443CrossRef Hallet M (2008) The intrinsic and extrinsec aspects of freezing of gait. Mov Disord 23(0 2):S439–S443CrossRef
54.
go back to reference Amboni M, Cozzolino A, Longo K, Picillo M, Barone P (2008) Freezing of gait and executive functions in patients with Parkinson’s disease. Mov Disord 23:395–400CrossRefPubMed Amboni M, Cozzolino A, Longo K, Picillo M, Barone P (2008) Freezing of gait and executive functions in patients with Parkinson’s disease. Mov Disord 23:395–400CrossRefPubMed
58.
go back to reference Hanakawa T, Katsumi Y, Fukuyama H et al (1999) Mechanisms underlying gait disturbance in Parkinson’s disease: a single photon emission computed tomography study. Brain 122:1271–1282CrossRefPubMed Hanakawa T, Katsumi Y, Fukuyama H et al (1999) Mechanisms underlying gait disturbance in Parkinson’s disease: a single photon emission computed tomography study. Brain 122:1271–1282CrossRefPubMed
59.
go back to reference Giladi N, Huber-Mahlin V, Herman T, Hausdorff JM (2007) Freezing of gait in older adults with high level gait disorders: association with impaired executive function. J Neural Transm 114:1349–1353CrossRefPubMed Giladi N, Huber-Mahlin V, Herman T, Hausdorff JM (2007) Freezing of gait in older adults with high level gait disorders: association with impaired executive function. J Neural Transm 114:1349–1353CrossRefPubMed
75.
go back to reference Sen S, Kawaguchi A, Truong Y, Lewis MM, Huang X (2010) Dynamic changes in cerebello-thalamo-cortical motor circuitry during progression of Parkinson’s disease. Neuroscience 166:712–719CrossRefPubMed Sen S, Kawaguchi A, Truong Y, Lewis MM, Huang X (2010) Dynamic changes in cerebello-thalamo-cortical motor circuitry during progression of Parkinson’s disease. Neuroscience 166:712–719CrossRefPubMed
78.
go back to reference Corrà MF, Vila-Chã N, Sardoeira A, Hansen C, Sousa AP, Reis I, Sambayeta F, Damásio J, Calejo M, Schicketmueller A, Laranjinha I, Salgado P, Taipa R, Magalhães R, Correia M, Maetzler W, Maia LF (2023) Peripheral neuropathy in Parkinson’s disease: prevalence and functional impact on gait and balance. Brain 146(1):225–236. https://doi.org/10.1093/brain/awac026CrossRefPubMed Corrà MF, Vila-Chã N, Sardoeira A, Hansen C, Sousa AP, Reis I, Sambayeta F, Damásio J, Calejo M, Schicketmueller A, Laranjinha I, Salgado P, Taipa R, Magalhães R, Correia M, Maetzler W, Maia LF (2023) Peripheral neuropathy in Parkinson’s disease: prevalence and functional impact on gait and balance. Brain 146(1):225–236. https://​doi.​org/​10.​1093/​brain/​awac026CrossRefPubMed
79.
go back to reference Rajabally YA, Martey J (2011) Neuropathy in Parkinson disease: prevalence and determinants. Neurology 77:1947–1950CrossRefPubMed Rajabally YA, Martey J (2011) Neuropathy in Parkinson disease: prevalence and determinants. Neurology 77:1947–1950CrossRefPubMed
80.
go back to reference Ceravolo R, Cossu G, Bandettini di Poggio M et al (2013) Neuropathy and levodopa in Parkinson’s disease: evidence from a multicenter study. Mov Disord 28:1391–7CrossRefPubMed Ceravolo R, Cossu G, Bandettini di Poggio M et al (2013) Neuropathy and levodopa in Parkinson’s disease: evidence from a multicenter study. Mov Disord 28:1391–7CrossRefPubMed
Metadata
Title
Imbalance and gait impairment in Parkinson’s disease: discussing postural instability and ataxia
Authors
Carlos Henrique F. Camargo
Silvia Aparecida Ferreira-Peruzzo
Danieli Isabel Romanovitch Ribas
Gustavo L. Franklin
Hélio A. G. Teive
Publication date
21-11-2023
Publisher
Springer International Publishing
Published in
Neurological Sciences / Issue 4/2024
Print ISSN: 1590-1874
Electronic ISSN: 1590-3478
DOI
https://doi.org/10.1007/s10072-023-07205-w

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