Reactive Oxygen Species-Responsive Targeted Polydopamine-Rosmarinic Acid Nanotherapeutics for Ferroptosis-Driven Parkinson's Disease Modulation in Caenorhabditis elegans.
Parkinson's disease (PD), a progressive neuropathy marked by abnormal α-synuclein (α-Syn) deposition and oxidative stress-driven degeneration of dopaminergic neurons (DA neurons), remains inadequately addressed by current palliative strategies that primarily provide symptomatic relief, emphasizing the need for enhanced therapeutic modalities. In particular, ferroptosis, an iron cell death mechanism, is a key driver of PD pathogenesis, and its modulation represents a feasible therapeutic target. Here, we designed a neuromelanin-mimetic polydopamine (PDA)-based nanomedicine to attenuate ferroptosis-associated oxidative stress and iron dysregulation in PD by functionalizing PDA nanoparticles with triphenylphosphonium (TPP) for mitochondrial targeting and loading rosmarinic acid (RA), yielding TPRA nanoparticles (TPRA NPs). TPRA NPs combine the antioxidative and iron-chelating attributes of RA with reactive oxygen species (ROS)-responsive release properties. TPRA NPs exhibited efficient RA loading, sustained ROS-triggered release, effective iron chelation, and comprehensive free radical neutralization. In vivo evaluations in Caenorhabditis elegans demonstrated that TPRA NPs were well-tolerated at concentrations up to 64 μg/mL, with no detectable adverse effects, and enhanced healthspan and stress resistance. TPRA NPs markedly attenuated ferroptosis-associated markers by decreasing excess iron, lipid peroxidation, and ROS while simultaneously restoring glutathione balance, locomotor performance, and modulating ferroptosis-associated genes in worms induced with 1-methyl-4-phenylpyridinium (MPP+), erastin, or iron. Furthermore, these nanoparticles preserved the viability of DA neurons and restored neurobehavioral function and mitochondrial integrity. TPRA NPs reduced α-synuclein deposition, lengthened lifespan, and activated SKN-1 signaling while upregulating mitophagy-related genes in α-Syn expressing NL5901 worms, thereby strengthening endogenous defenses. These findings establish targeted, natural polyphenol-loaded biomimetic nanoparticles as a potential approach to mitigate ferroptosis-associated stress in PD.
- Research Article
195
- 10.1074/jbc.m504860200
- Jan 1, 2006
- Journal of Biological Chemistry
Mutations in alpha-synuclein gene cause familial form of Parkinson disease, and deposition of wild-type alpha-synuclein as Lewy bodies occurs as a hallmark lesion of sporadic Parkinson disease and dementia with Lewy bodies, implicating alpha-synuclein in the pathogenesis of Parkinson disease and related neurodegenerative diseases. Dopamine neurons in substantia nigra are the major site of neurodegeneration associated with alpha-synuclein deposition in Parkinson disease. Here we establish transgenic Caenorhabditis elegans (TG worms) that overexpresses wild-type or familial Parkinson mutant human alpha-synuclein in dopamine neurons. The TG worms exhibit accumulation of alpha-synuclein in the cell bodies and neurites of dopamine neurons, and EGFP labeling of dendrites is often diminished in TG worms expressing familial Parkinson disease-linked A30P or A53T mutant alpha-synuclein, without overt loss of neuronal cell bodies. Notably, TG worms expressing A30P or A53T mutant alpha-synuclein show failure in modulation of locomotory rate in response to food, which has been attributed to the function of dopamine neurons. This behavioral abnormality was accompanied by a reduction in neuronal dopamine content and was treatable by administration of dopamine. These phenotypes were not seen upon expression of beta-synuclein. The present TG worms exhibit dopamine neuron-specific dysfunction caused by accumulation of alpha-synuclein, which would be relevant to the genetic and compound screenings aiming at the elucidation of pathological cascade and therapeutic strategies for Parkinson disease.
- Research Article
111
- 10.3390/cells8080911
- Aug 16, 2019
- Cells
Accumulative evidence indicated that the pathologically accumulated metal ions (iron species and Mn3+) and abnormally up-regulated monoamine oxidase B (MAOB) activity induced oxidation of endogenous dopamine (DA) can lead to mitochondria impairment, lysosome dysfunction, proteasome inhibition, and selective DA neuron vulnerability, which is implicated in the pathogenesis of Parkinson’s disease (PD). The DA oxidation can generate deleterious reactive oxygen species (ROS) and highly reactive DA quinones (DAQ) to induce DA-related toxicity, which can be alleviated by DA oxidation suppressors, ROS scavengers, DAQ quenchers, and MAOB inhibitors. On the other hand, the nuclear factor erythroid 2-related factor 2 (Nrf2)-Keap1 and Peroxisome proliferator-activated receptor gamma coactivator 1-alpha (PGC-1α) anti-oxidative and proliferative signaling pathways play roles in anti-oxidative cell defense and mitochondria biogenesis, which is implicated in DA neuron protections. Therefore, agents with capabilities to suppress DA-related toxicity including inhibition of DA oxidation, scavenge of ROS, detoxification of DAQ, inhibition of MAOB, and modulations of anti-oxidative signaling pathways can be protective to DA neurons. Accumulative evidence shows that tea or coffee consumptions and smoking are related to deceased PD prevalence with unknown mechanisms. In this study, we investigate the protective capabilities of tea polyphenols and other PD relevant agents to inhibit DA-related toxicity and protect against environmental or genetic factors induced DA neuron degeneration in vitro and in vivo. We find that tea polyphenols can significantly suppress DA-related toxicity to protect DA neurons. The tea polyphenols can protect DA neurons via inhibition of DA oxidation, conjugation with DAQ, scavenge of ROS, inhibition of MAOB, and modulations of Nrf2-Keap1 and PGC-1α anti-oxidative signaling pathways. The tea polyphenols with more phenolic hydroxyl groups and ring structures have stronger protective functions. The protective capabilities of tea polyphenols is further strengthened by evidence that phenolic hydroxyl groups can directly conjugate with DAQ. However, GSH and other sulfhydyl groups containing agents have weaker capabilities to abrogate DA oxidation, detoxify ROS and DAQ and inhibit MAOB; whereas nicotine (NICO) and caffeine (CAF) can only modulate Nrf2-Keap1 and PGC-1α pathways to protect DA neurons weakly. The tea polyphenols are identified to protect against overexpression of mutant A30P α-synuclein (α-syn) induced DA neuron degeneration and PD-like symptoms in transgenic Drosophila. Based on achievements from current studies, the excellent and versatile protective capabilities of tea polyphenols are highlighted, which will contribute and benefit to future anti-PD therapy.
- Research Article
4
- 10.1111/acel.70096
- May 12, 2025
- Aging cell
Sex differences in Parkinson's disease (PD) offer insights into mechanisms of dopaminergic cell resilience. Female dopamine (DA) neurons are more resilient via mechanisms that remain unclear. Here, we discovered key sex and regional differences in mitochondrial generation of cytotoxic reactive oxygen species (ROS) and their implications for DA neuron resilience using the Drosophila model. While aging raised mitochondrial ROS in DA neurons of both sexes, we observed a sexually dimorphic response in the paraquat (PQ) PD model. DA neuron knockdown of the Drosophila vesicular glutamate transporter (dVGLUT) increased mitochondrial ROS only in males, leaving females protected. Cell depolarization, a physiological stressor, similarly raised mitochondrial ROS in DA neurons selectively in males following dVGLUT knockdown. We also identified dVGLUT-dependent changes in intracellular ATP in both sexes. Overall, we discovered sexually dimorphic relationships between dVGLUT, ATP synthesis, and ROS generation in DA neurons, providing a mechanistic basis for DA neuron resilience.
- Research Article
36
- 10.1016/j.stemcr.2017.08.002
- Aug 31, 2017
- Stem Cell Reports
A PITX3-EGFP Reporter Line Reveals Connectivity of Dopamine and Non-dopamine Neuronal Subtypes in Grafts Generated from Human Embryonic Stem Cells.
- Research Article
3
- 10.1101/2024.08.19.608634
- Aug 19, 2024
- bioRxiv : the preprint server for biology
Parkinson's Disease (PD) is a multisystem disorder in which dysregulated neuroimmune crosstalk and inflammatory relay via the gut-blood-brain axis have been implicated in PD pathogenesis. Although alterations in circulating inflammatory cytokines and reactive oxygen species (ROS) have been associated with PD, no biomarkers have been identified that predict clinical progression or disease outcome. Gastrointestinal (GI) dysfunction, which involves perturbation of the underlying immune system, is an early and often-overlooked symptom that affects up to 80% of individuals living with PD. Interestingly, 50-70% of individuals with inflammatory bowel disease (IBD), a GI condition that has been epidemiologically linked to PD, display chronic illness-induced anemia - which drives toxic accumulation of iron in the gut. Ferroptotic (or iron loaded) cells have small and dysmorphic mitochondria-suggesting that mitochondrial dysfunction is a consequence of iron accumulation. In pro-inflammatory environments, iron accumulates in immune cells, suggesting a possible connection and/or synergy between iron dysregulation and immune cell dysfunction. Peripheral blood mononuclear cells (PBMCs) recapitulate certain PD-associated neuropathological and inflammatory signatures and can act as communicating messengers in the gut-brain axis. Additionally, this communication can be modulated by several environmental factors; specifically, our data further support existing literature demonstrating a role for non-steroidal anti-inflammatory drugs (NSAIDs) in modulating immune transcriptional states in inflamed individuals. A mechanism linking chronic gut inflammation to iron dysregulation and mitochondrial function within peripheral immune cells has yet to be identified in conferring risk for PD. To that end, we isolated PBMCs and simultaneously evaluated their directed transcriptome and bioenergetic status, to investigate if iron dysregulation and mitochondrial sensitization are linked in individuals living with PD or IBD because of chronic underlying remittent immune activation. We have identified shared features of peripheral inflammation and immunometabolism in individuals living with IBD or PD that may contribute to the epidemiological association reported between IBD and risk for PD.
- Research Article
- 10.1096/fasebj.2019.33.1_supplement.810.10
- Apr 1, 2019
- The FASEB Journal
Parkinson's disease (PD) is characterized by progressive loss of dopamine (DA) neurons in the substantia nigra (SN-A9). α-synuclein has been genetically implicated in familial and sporadic PD and is associated with PD susceptibility, progression and pathology. A cardinal feature of neurons that separates them from nearly all other cell types is their excitability. Multiple channels and transporters regulate the excitability of DA neurons. DA neurons are uniquely defined by expression of Dopamine Transporter (DAT), D2 autoreceptor and GIRK, where they govern the excitability of DA neurons, and thus DA neurotransmission. To determine the impact of α-synuclein on the activity of DA neurons, we differentiated induced pluripotent stem cells (iPSC) from PD patients with α-synuclein triplication and the healthy sibling. Two sets of iPSCs used in our studies: iPSCs with triplication of α-synuclein (AST), and iPSCs with normal α-synuclein (NAS) levels. The A9 human-like DA neurons were differentiated and identified by expression of Tyrosine Hydroxylase (TH), GIRK2, VMAT2, DAT, Nurr1, FOXA2, as phenotypic markers for DA neurons. The expression of α-synuclein and Parkin, two PD-associated proteins were higher in the AST-derived human-like DA neurons as compared to the NAS-derived human-like DA neurons. We found significant morphological differences between neurons with normal α-synuclein levels (NAS) vs. neurons with α-synuclein triplication (AST). The AST neurons exhibited significantly larger soma, short neurites and lower D2R and GIRK expression (P<0.005). Importantly, our differentiation protocol resulted in spontaneously firing human-like DA neurons. Whole-cell voltage-clamp recordings revealed no difference in the overall activity of sodium and potassium channels in the AST and NAS DA neurons ((P>0.05). Consistent with our previous report in mice DA neurons (Lin et al., 2016), the majority of NAS-derived DA neurons exhibited a mixture of single spikes and small burst activity with an underlying “pacemaker-like” periodicity. Whereas, ~90% of AST-derived DA neurons exhibited a unique firing pattern of spontaneous firing activity with a pause between subsequent broadbrimmed burst clusters on a high depolarized plateau (up state) (P<0.05). We found, in the AST-derived DA neurons, activation of D2R or GIRK channels reduced the amplitude and the width of the up state and suppressed the firing frequency, suggesting α-synuclein triplication disrupts firing frequency of DA neurons and thus DA transmission via dysregulation of D2R and GIRK channels. Morphological differences and their measurements after 4 months differentiation of NAS and AST dopamine neurons Our differentiation protocol produced spontaneously active DA neurons. Increased α-Syn dysregulated the spontaneous firing activity of AST DA neurons Quinpirole activation of D2R restores endogenous AST-derived human-like DA neurons This abstract is from the Experimental Biology 2019 Meeting. There is no full text article associated with this abstract published in The FASEB Journal.
- Research Article
22
- 10.1124/mol.119.118836
- Feb 3, 2020
- Molecular Pharmacology
RGS Proteins as Critical Regulators of Motor Function and Their Implications in Parkinson’s Disease
- Research Article
78
- 10.1002/embj.201284290
- Jan 29, 2014
- The EMBO Journal
Parkinson's disease (PD)-associated Pink1 and Parkin proteins are believed to function in a common pathway controlling mitochondrial clearance and trafficking. Glial cell line-derived neurotrophic factor (GDNF) and its signaling receptor Ret are neuroprotective in toxin-based animal models of PD. However, the mechanism by which GDNF/Ret protects cells from degenerating remains unclear. We investigated whether the Drosophila homolog of Ret can rescue Pink1 and park mutant phenotypes. We report that a signaling active version of Ret (RetMEN2B) rescues muscle degeneration, disintegration of mitochondria and ATP content of Pink1 mutants. Interestingly, corresponding phenotypes of park mutants were not rescued, suggesting that the phenotypes of Pink1 and park mutants have partially different origins. In human neuroblastoma cells, GDNF treatment rescues morphological defects of PINK1 knockdown, without inducing mitophagy or Parkin recruitment. GDNF also rescues bioenergetic deficits of PINK knockdown cells. Furthermore, overexpression of RetMEN2B significantly improves electron transport chain complex I function in Pink1 mutant Drosophila. These results provide a novel mechanism underlying Ret-mediated cell protection in a situation relevant for human PD.
- Research Article
7
- 10.18679/cn11-6030_r.2015.009
- Dec 1, 2015
- Translational Neuroscience and Clinics
Objective Parkinson's disease (PD), which is one of the most common neurodegenerative disorders, is characterized by the loss of dopamine (DA) neurons in the substantia nigra in the midbrain. Experimental and clinical studies have shown that fetal neural stem cells (NSCs) have therapeutic effects in neurological disorders. The aim of this study was to examine whether cells that were differentiated from NSCs had therapeutic effects in a rat model of PD. Methods NSCs were isolated from 14-week-old embryos and induced to differentiate into neurons, DA neurons, and glial cells, and these cells were characterized by their expression of the following markers: βIII-tubulin and microtubule-associated protein 2 (neurons), tyrosine hydroxylase (DA neurons), and glial fibrillary acidic protein (glial cells). After a 6-hydroxydopamine (6-OHDA)-lesioned rat model of PD was generated, the differentiated cells were transplanted into the striata of the 6-OHDA-lesioned PD rats. Results The motor behaviors of the PD rats were assessed by the number of apomorphine-induced rotation turns. The results showed that the NSCs differentiated in vitro into neurons and DA neurons with high efficiencies. After transplantation into the striata of the PD rats, the differentiated cells significantly improved the motor deficits of the transplanted PD rats compared to those of the control nontransplanted PD rats by decreasing the apomorphine-induced turn cycles as early as 4 weeks after transplantation. Immunofluorescence analyses showed that the differentiated DA neurons survived more than 16 weeks. Conclusions Our results showed that cells that were differentiated from NSCs had therapeutic effects in a rat PD model, which suggests that differentiated cells may be an effective treatment for patients with PD.
- Research Article
361
- 10.1093/brain/awn323
- Dec 3, 2008
- Brain
Parkinson's disease is caused by a progressive loss of the midbrain dopamine (DA) neurons in the substantia nigra pars compacta. Although the main cause of Parkinson's disease remains unknown, there is increasing evidence that it is a complex disorder caused by a combination of genetic and environmental factors, which affect key signalling pathways in substantia nigra DA neurons. Insights into pathogenesis of Parkinson's disease stem from in vitro and in vivo models and from postmortem analyses. Recent technological developments have added a new dimension to this research by determining gene expression profiles using high throughput microarray assays. However, many of the studies reported to date were based on whole midbrain dissections, which included cells other than DA neurons. Here, we have used laser microdissection to isolate single DA neurons from the substantia nigra pars compacta of controls and subjects with idiopathic Parkinson's disease matched for age and postmortem interval followed by microarrays to analyse gene expression profiling. Our data confirm a dysregulation of several functional groups of genes involved in the Parkinson's disease pathogenesis. In particular, we found prominent down-regulation of members of the PARK gene family and dysregulation of multiple genes associated with programmed cell death and survival. In addition, genes for neurotransmitter and ion channel receptors were also deregulated, supporting the view that alterations in electrical activity might influence DA neuron function. Our data provide a 'molecular fingerprint identity' of late-stage Parkinson's disease DA neurons that will advance our understanding of the molecular pathology of this disease.
- Research Article
129
- 10.1093/brain/awu131
- Jun 16, 2014
- Brain
Dopamine midbrain neurons within the substantia nigra are particularly prone to degeneration in Parkinson's disease. Their selective loss causes the major motor symptoms of Parkinson's disease, but the causes for the high vulnerability of SN DA neurons, compared to neighbouring, more resistant ventral tegmental area dopamine neurons, are still unclear. Consequently, there is still no cure available for Parkinson's disease. Current therapies compensate the progressive loss of dopamine by administering its precursor l-DOPA and/or dopamine D2-receptor agonists. D2-autoreceptors and Cav1.3-containing L-type Ca(2+) channels both contribute to Parkinson's disease pathology. L-type Ca(2+) channel blockers protect SN DA neurons from degeneration in Parkinson's disease and its mouse models, and they are in clinical trials for neuroprotective Parkinson's disease therapy. However, their physiological functions in SN DA neurons remain unclear. D2-autoreceptors tune firing rates and dopamine release of SN DA neurons in a negative feedback loop through activation of G-protein coupled potassium channels (GIRK2, or KCNJ6). Mature SN DA neurons display prominent, non-desensitizing somatodendritic D2-autoreceptor responses that show pronounced desensitization in PARK-gene Parkinson's disease mouse models. We analysed surviving human SN DA neurons from patients with Parkinson's disease and from controls, and detected elevated messenger RNA levels of D2-autoreceptors and GIRK2 in Parkinson's disease. By electrophysiological analysis of postnatal juvenile and adult mouse SN DA neurons in in vitro brain-slices, we observed that D2-autoreceptor desensitization is reduced with postnatal maturation. Furthermore, a transient high-dopamine state in vivo, caused by one injection of either l-DOPA or cocaine, induced adult-like, non-desensitizing D2-autoreceptor responses, selectively in juvenile SN DA neurons, but not ventral tegmental area dopamine neurons. With pharmacological and genetic tools, we identified that the expression of this sensitized D2-autoreceptor phenotype required Cav1.3 L-type Ca(2+) channel activity, internal Ca(2+), and the interaction of the neuronal calcium sensor NCS-1 with D2-autoreceptors. Thus, we identified a first physiological function of Cav1.3 L-type Ca(2+) channels in SN DA neurons for homeostatic modulation of their D2-autoreceptor responses. L-type Ca(2+) channel activity however, was not important for pacemaker activity of mouse SN DA neurons. Furthermore, we detected elevated substantia nigra dopamine messenger RNA levels of NCS-1 (but not Cav1.2 or Cav1.3) after cocaine in mice, as well as in remaining human SN DA neurons in Parkinson's disease. Thus, our findings provide a novel homeostatic functional link in SN DA neurons between Cav1.3- L-type-Ca(2+) channels and D2-autoreceptor activity, controlled by NCS-1, and indicate that this adaptive signalling network (Cav1.3/NCS-1/D2/GIRK2) is also active in human SN DA neurons, and contributes to Parkinson's disease pathology. As it is accessible to pharmacological modulation, it provides a novel promising target for tuning substantia nigra dopamine neuron activity, and their vulnerability to degeneration.
- Research Article
1
- 10.1096/fasebj.2019.33.1_supplement.669.9
- Apr 1, 2019
- The FASEB Journal
Parkinson's disease (PD) is devastating, primarily non‐familial, age‐related neurodegenerative disorder caused by the progressive loss of dopamine (DA) neurons in the substantia nigra pars compacta (SNc). Why these neurons die with aging in sporadic PD is unknown. However, accumulation of α‐synuclein aggregates in Lewy bodies is believed to play a crucial role in PD pathogenesis. In support of this hypothesis, cAMP‐elevating β‐agonists dramatically reduce both α‐synuclein expression and the incidence of human PD as well as repress MPTP‐induced SNc DA neuron loss in mice (Mittal et al., Science 2017). Neuronal cAMP levels are controlled by neurotransmitter GPCRs coupled to Gs or Gi/o which stimulate or inhibit adenylyl cyclases (AC), respectively. RGS proteins powerfully modulate signaling by GPCRs including DA receptors. Remarkably, we have recently discovered that RGS6 is restrictively expressed in human SNc DA neurons that are lost in PD and knockout of RGS6 in mice recapitulates key hallmarks of sporadic PD, including: late‐age‐onset SNc DA neuron degeneration, reduced nigrostriatal DA, and motor deficits. We also demonstrated that RGS6 functions as a critical negative regulator of SNc D2 autoreceptor signaling allowing for proper modulation of DA‐dependent motor behaviors. Given that β‐agonists repress α‐synuclein expression through their activation of β2‐adrenorecetor‐Gαs, a GPCR that increases cAMP, and RGS6's role in inhibiting D2 autoreceptor signaling, a Gi/o GPCR that reduces cAMP, we hypothesize that RGS6, like β‐agonists, may function to prevent the pathological accumulation of α‐synuclein through modulation of cAMP‐PKA signaling. Here we show that RGS6 is a key negative modulator of Gi/o signaling in SNc DA neurons, with its loss provoking enhance D2 autoreceptor activity and a subsequent reduction in cAMP‐PKA signaling. These data are important as cAMP‐PKA signaling has not only been linked to SNc DA neuron survival in PD but also pathological α‐synuclein accumulation. In agreement with these previous reports, we observed elevated SNc α‐synuclein protein expression in 12 and 18mo RGS6−/− mice relative to RGS6+/+ controls. The aberrant elevation in α‐synuclein expression in the SNc of RGS6−/− mice was accompanied by a transition in α‐synuclein expression patterns from largely intracellular, as seen in RGS6+/+ mice, to largely extracellular. Furthermore, western blot analysis revealed increased expression of oligomeric α‐synuclein isoforms in the SNc of RGS6−/− mice, another hallmark of PD pathophysiology. Together, these data identify RGS6 as a key G protein regulator that protects against PD‐related neurodegeneration and α‐synuclein pathology through inhibition of D2R‐Gi/o signaling in SNc DA neurons.Support or Funding InformationNIH AA025919 and Interdisciplinary Research Fellowship T32HL007121This abstract is from the Experimental Biology 2019 Meeting. There is no full text article associated with this abstract published in The FASEB Journal.
- Research Article
287
- 10.1093/brain/awu193
- Jul 24, 2014
- Brain
The neuropathological substrate of dementia in patients with Parkinson's disease is still under debate, particularly in patients with insufficient alternate neuropathology for other degenerative dementias. In patients with pure Lewy body Parkinson's disease, previous post-mortem studies have shown that dopaminergic and cholinergic regulatory projection systems degenerate, but the exact pathways that may explain the development of dementia in patients with Parkinson's disease remain unclear. Studies in rodents suggest that both the mesocorticolimbic dopaminergic and septohippocampal cholinergic pathways may functionally interact to regulate certain aspects of cognition, however, whether such an interaction occurs in humans is still poorly understood. In this study, we performed stereological analyses of the A9 and A10 dopaminergic neurons and Ch1, Ch2 and Ch4 cholinergic neurons located in the basal forebrain, along with an assessment of α-synuclein pathology in these regions and in the hippocampus of six demented and five non-demented patients with Parkinson's disease and five age-matched control individuals with no signs of neurological disease. Moreover, we measured choline acetyltransferase activity in the hippocampus and frontal cortex of eight demented and eight non-demented patients with Parkinson's disease, as well as in the same areas of eight age-matched controls. All patients with Parkinson's disease exhibited a similar 80-85% loss of pigmented A9 dopaminergic neurons, whereas patients with Parkinson's disease dementia presented an additional loss in the lateral part of A10 dopaminergic neurons as well as Ch4 nucleus basalis neurons. In contrast, medial A10 dopaminergic neurons and Ch1 and Ch2 cholinergic septal neurons were largely spared. Despite variable Ch4 cell loss, cortical but not hippocampal cholinergic activity was consistently reduced in all patients with Parkinson's disease, suggesting significant dysfunction in cortical cholinergic pathways before frank neuronal degeneration. Patients with Parkinson's disease dementia were differentiated by a significant reduction in hippocampal cholinergic activity, by a significant loss of non-pigmented lateral A10 dopaminergic neurons and Ch4 cholinergic neurons (30 and 55% cell loss, respectively, compared with neuronal preservation in control subjects), and by an increase in the severity of α-synuclein pathology in the basal forebrain and hippocampus. Overall, these results point to increasing α-synuclein deposition and hippocampal dysfunction in a setting of more widespread degeneration of cortical dopaminergic and cholinergic pathways as contributing to the dementia occurring in patients with pure Parkinson's disease. Furthermore, our findings support the concept that α-synuclein deposition is associated with significant neuronal dysfunction in the absence of frank neuronal loss in Parkinson's disease.
- Research Article
1915
- 10.1038/nature10648
- Nov 6, 2011
- Nature
SUMMARYHuman pluripotent stem cells (hPSCs) are a promising source of cells for applications in regenerative medicine. Directed differentiation of hPSCs into specialized cells such as spinal motoneurons1 or midbrain dopamine (DA) neurons2 has been achieved. However, the effective use of hPSCs for cell therapy has lagged behind. While mouse PSC-derived DA neurons have shown efficacy in models of Parkinson’s disease (PD)3, 4, DA neurons from human PSCs generally display poor in vivo performance5. There are also considerable safety concerns for hPSCs related to their potential for teratoma formation or neural overgrowth6, 7Here we present a novel floor plate-based strategy for the derivation of human DA neurons that efficiently engraft in vivo, suggesting that past failures were due to incomplete specification rather than a specific vulnerability of the cells. Midbrain floor plate precursors are derived from hPSCs in 11 days following exposure to small molecule activators of sonic hedgehog (SHH) and canonical WNT signaling. Engraftable midbrain DA neurons are obtained by day 25 and can be maintained in vitro for several months. Extensive molecular profiling, biochemical and electrophysiological data define developmental progression and confirm identity of hPSC-derived midbrain DA neurons. In vivo survival and function is demonstrated in PD models using three host species. Long-term engraftment in 6-OHDA-lesioned mice and rats demonstrates robust survival of midbrain DA neurons, complete restoration of amphetamine-induced rotation behavior and improvements in tests of forelimb use and akinesia. Finally, scalability is demonstrated by transplantation into Parkinsonian monkeys. Excellent DA neuron survival, function and lack of neural overgrowth in the three animal models indicate promise for the development of cell based therapies in PD.
- Research Article
46
- 10.1523/jneurosci.0823-20.2020
- Sep 14, 2020
- The Journal of Neuroscience
A subset of adult ventral tegmental area dopamine (DA) neurons expresses vesicular glutamate transporter 2 (VGluT2) and releases glutamate as a second neurotransmitter in the striatum, while only few adult substantia nigra DA neurons have this capacity. Recent work showed that cellular stress created by neurotoxins such as MPTP and 6-hydroxydopamine can upregulate VGluT2 in surviving DA neurons, suggesting the possibility of a role in cell survival, although a high level of overexpression could be toxic to DA neurons. Here we examined the level of VGluT2 upregulation in response to neurotoxins and its impact on postlesional plasticity. We first took advantage of an in vitro neurotoxin model of Parkinson's disease and found that this caused an average 2.5-fold enhancement of Vglut2 mRNA in DA neurons. This could represent a reactivation of a developmental phenotype because using an intersectional genetic lineage-mapping approach, we find that >98% of DA neurons have a VGluT2+ lineage. Expression of VGluT2 was detectable in most DA neurons at embryonic day 11.5 and was localized in developing axons. Finally, compatible with the possibility that enhanced VGluT2 expression in DA neurons promotes axonal outgrowth and reinnervation in the postlesional brain, we observed that DA neurons in female and male mice in which VGluT2 was conditionally removed established fewer striatal connections 7 weeks after a neurotoxin lesion. Thus, we propose here that the developmental expression of VGluT2 in DA neurons can be reactivated at postnatal stages, contributing to postlesional plasticity of dopaminergic axons.SIGNIFICANCE STATEMENT A small subset of dopamine neurons in the adult, healthy brain expresses vesicular glutamate transporter 2 (VGluT2) and thus releases glutamate as a second neurotransmitter in the striatum. This neurochemical phenotype appears to be plastic as exposure to neurotoxins, such as 6-OHDA or MPTP, that model certain aspects of Parkinson's disease pathophysiology, boosts VGluT2 expression in surviving dopamine neurons. Here we show that this enhanced VGluT2 expression in dopamine neurons drives axonal outgrowth and contributes to dopamine neuron axonal plasticity in the postlesional brain. A better understanding of the neurochemical changes that occur during the progression of Parkinson's disease pathology will aid the development of novel therapeutic strategies for this disease.