parkinson’s disease dementia
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2021 ◽  
Vol 17 (S6) ◽  
Author(s):  
Parichita Choudhury ◽  
Nan Zhang ◽  
David Shprecher ◽  
Christi Belden ◽  
Danielle Goldfarb ◽  
...  

2021 ◽  
Vol 92 ◽  
pp. 72-75
Author(s):  
Marcella Neri ◽  
Arianna Braccia ◽  
Celeste Panteghini ◽  
Barbara Garavaglia ◽  
Francesca Gualandi ◽  
...  

2021 ◽  
Author(s):  
Xin-Nong Li ◽  
Dawei Zheng

Dementia is a frequent complication of Parkinson’s disease with an annual incidence of around 10% of patients with Parkinson’s disease. If dementia occurs in patients with Parkinson’s disease, it is typically many years or decades after the onset of Parkinson’s disease. It is devastating for both patient and family or caretaker when a patient with Parkinson’s disease develops dementia. Primary care physician is at the center of the care team for the patient. This chapter discusses the pivotal role of the primary care physicians in the management of patients with Parkinson’s disease dementia. A guide is provided to emphasize the art of practice for Primary care physicians which consists of knowing when and how to introduce a comprehensive ongoing care plan for individual patient with Parkinson’s disease dementia. Recommendations for maintaining some patients with Parkinson’s disease dementia in a status of relative independence are discussed. Indications for initiation of palliative care are also discussed.


2021 ◽  
Vol 14 ◽  
Author(s):  
Melissa Scholefield ◽  
Stephanie J. Church ◽  
Jingshu Xu ◽  
Stefano Patassini ◽  
Federico Roncaroli ◽  
...  

Widespread elevations in brain urea have, in recent years, been reported in certain types of age-related dementia, notably Alzheimer’s disease (AD) and Huntington’s disease (HD). Urea increases in these diseases are substantive, and approximate in magnitude to levels present in uraemic encephalopathy. In AD and HD, elevated urea levels are widespread, and not only in regions heavily affected by neurodegeneration. However, measurements of brain urea have not hitherto been reported in Parkinson’s disease dementia (PDD), a condition which shares neuropathological and symptomatic overlap with both AD and HD. Here we report measurements of tissue urea from nine neuropathologically confirmed regions of the brain in PDD and post-mortem delay (PMD)-matched controls, in regions including the cerebellum, motor cortex (MCX), sensory cortex, hippocampus (HP), substantia nigra (SN), middle temporal gyrus (MTG), medulla oblongata (MED), cingulate gyrus, and pons, by applying ultra-high-performance liquid chromatography-tandem mass spectrometry (UHPLC-MS/MS). Urea concentrations were found to be substantively elevated in all nine regions, with average increases of 3–4-fold. Urea concentrations were remarkably consistent across regions in both cases and controls, with no clear distinction between regions heavily affected or less severely affected by neuronal loss in PDD. These urea elevations mirror those found in uraemic encephalopathy, where equivalent levels are generally considered to be pathogenic, and those previously reported in AD and HD. Increased urea is a widespread metabolic perturbation in brain metabolism common to PDD, AD, and HD, at levels equal to those seen in uremic encephalopathy. This presents a novel pathogenic mechanism in PDD, which is shared with two other neurodegenerative diseases.


2021 ◽  
Vol 13 ◽  
Author(s):  
Jiajun Han ◽  
Yaohua Fan ◽  
Peipei Wu ◽  
Zifeng Huang ◽  
Xinrong Li ◽  
...  

Parkinson’s disease dementia (PDD) is a common complication of Parkinson’s disease that seriously affects patients’ health and quality of life. At present, the process and pathological mechanisms of PDD remain controversial, which hinders the development of treatments. An increasing number of clinical studies have shown that alpha-synuclein (α-syn), tau, beta-amyloid (Aβ), and iron are closely associated with PDD severity. Thus, we inferred the vicious cycle that causes oxidative stress (OS), due to the synergistic effects of α-syn, tau, Aβ, and, iron, and which plays a pivotal role in the mechanism underlying PDD. First, iron-mediated reactive oxygen species (ROS) production can lead to neuronal protein accumulation (e.g., α-syn andAβ) and cytotoxicity. In addition, regulation of post-translational modification of α-syn by iron affects the aggregation or oligomer formation of α-syn. Iron promotes tau aggregation and neurofibrillary tangles (NFTs) formation. High levels of iron, α-syn, Aβ, tau, and NFTs can cause severe OS and neuroinflammation, which lead to cell death. Then, the increasing formation of α-syn, Aβ, and NFTs further increase iron levels, which promotes the spread of α-syn and Aβ in the central and peripheral nervous systems. Finally, iron-induced neurotoxicity promotes the activation of glycogen synthase kinase 3β (GSK3β) related pathways in the synaptic terminals, which in turn play an important role in the pathological synergistic effects of α-syn, tau and Aβ. Thus, as the central factor regulating this vicious cycle, GSK3β is a potential target for the prevention and treatment of PDD; this is worthy of future study.


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