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Anchan, A.

Publications and source records attributed to Anchan, A..

3 recordsLinked to original sources

Comparative Proteomic Analysis of Environmental and Genetic Models of Parkinsons Disease Highlights the Role of Purine Metabolism.

Parkinsons Disease (PD) is the second most common neurodegenerative disease, with many cases being attributed to environmental contaminant exposures. Paraquat (PQ), is a pesticide and environmental neurotoxicant that has been strongly associated with increased risk of PD. PQ is known to be a weak inhibitor of complex I of the electron transport chain, and while its acute toxicity is well understood, the underlying mechanism by which PQ exposure contributes to PD pathophysiology remains unclear. Additionally, the mechanism of PQ neurotoxicity has yet to be effectively compared and related to genetic forms of PD. Given that PD is a heterogeneous disease with both genetic and environmental determinants, we sought to systematically compare the proteomic changes that occur in different genetic and environmental models of PD. In this study, we leveraged untargeted omics approaches to differentiate between systemic, peripheral, and CNS-specific changes in the proteome. We did this by performing a comparative proteomic analysis on the heads and bodies of Drosophila models of PQ ingestion and neuronal -synuclein expression in males. Additionally, we validated the findings with metabolomic analysis of male and female brain stems from a murine PQ inhalation model using C57BL/6J mice. Our findings indicate shared dysregulated pathways across all models, highlighting similar mechanisms of action. Specifically, we identified a glia-specific role in purine nucleotide metabolism upstream of inosine catabolism, which may protect against PQ neurotoxicity. This work identifies potential early points for biomarker detection and potential targets for drug intervention. Significance StatementNeurodegenerative diseases such as Parkinsons disease (PD) pose a growing public health burden, yet disease-modifying therapies remain limited due to lack of mechanistic understanding and disease heterogeneity. Both genetic and environmental factors contribute to PD, complicating the identification of shared therapeutic targets. Here, we identify a convergent pathway common to genetic and environmental models of Parkinsonism that not only affects the brain but also systemically. Using integrated metabolomics, proteomics, and genome-scale metabolic modeling, we demonstrate that purine metabolism is dysregulated across models. Reverse genetic screening of key enzymes in this pathway mitigates locomotor deficits induced by neurotoxic pesticide exposure in Drosophila. These findings reveal a shared metabolic vulnerability in PD and highlight purine metabolism as a potential therapeutic target.

neuroscience↗

Human iPSC-derived brain pericytes exhibit differences in inflammatory activation compared to primary human brain pericytes

BackgroundiPSC-derived cells are increasingly used to model complex diseases in vitro because they can be patient derived and can differentiate into any cell in the adult human body. Recent studies have demonstrated the generation of brain pericytes using a neural crest-based differentiation protocol. However, the inflammatory response of these iPSC-derived brain pericytes has not been investigated. We aimed to investigate the response of iPSC-derived brain pericytes to common inflammatory stimuli, thereby assessing the suitability of these cells to study inflammatory disease. MethodsBrain pericytes were differentiated from iPSCs for 42 days. The expression of brain pericyte markers was assessed by RT-qPCR and immunofluorescent staining at days 0, 15, 21, and 42 of differentiation to validate the brain pericyte-like phenotype. Nuclear localisation of NF{kappa}B and STAT1 was assessed by immunofluorescence following IL-1{beta}- and TNF-treatment in day 21 and day 42 iPSC-derived pericytes, and primary human pericytes. Cytometric bead array assessed the concentration of secreted inflammatory factors in the cell medium and phagocytosis was investigated using fluorescent carboxylated beads and flow cytometry. ResultsAt day 42 of differentiation, but not at day 21, cells expressed brain pericyte markers. Generally, iPSC-derived pericytes lacked consistent responses to inflammatory treatment compared to primary human pericytes. Day 21 and 42 iPSC-derived pericytes exhibited a NF{kappa}B response to IL-1{beta} treatment comparable to primary human pericytes. Day 21 iPSC-derived pericytes exhibited a STAT1 response with IL-1{beta} treatment which was absent in day 42 cells, but present in a subset of primary human pericytes. TNF treatment presented similar NF{kappa}B responses between day 21 and 42 iPSC-derived and primary human pericytes, but a STAT1 response was again present in a subset of primary human pericytes which was absent in both day 21 and day 42 iPSC-derived pericytes. Numerous differences were observed in the secretion of cytokines and chemokines following treatment of iPSC-derived and primary human pericytes with IL-1{beta} and TNF. iPSC-derived pericytes exhibited greater rates of phagocytosis than primary human pericytes. ConclusionsWith the increase in iPSC-derived cells in research, labs should undertake validation of lineage specificity when adapting an iPSC-derived differentiation protocol. In our hands, the inflammatory response of iPSC-derived pericytes was different to that of primary human pericytes, raising concern regarding the use of iPSC-derived pericytes to study neuroinflammatory disease. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=157 SRC="FIGDIR/small/613375v1_ufig1.gif" ALT="Figure 1"> View larger version (29K): org.highwire.dtl.DTLVardef@1e3612eorg.highwire.dtl.DTLVardef@1014537org.highwire.dtl.DTLVardef@6729adorg.highwire.dtl.DTLVardef@e14825_HPS_FORMAT_FIGEXP M_FIG C_FIG Brain pericytes can be generated from iPSCs. The work presented here shows the generation of phenotypically distinct pericytes from the original protocol, demonstrating the significant variability present within some iPSC differentiation protocols. Furthermore, functional differences are demonstrated between iPSC-derived brain pericytes and primary brain pericytes, revealing limitations in the use of iPSC-derived brain pericytes to model brain pericyte biology. Key PointsO_ST_ABSWhat is already known about this topic?C_ST_ABSBrain pericyte-like cells can be generated from induced pluripotent stem cells, however their responses to inflammatory stimuli has not been assessed. What does this study add?iPSC-derived brain pericytes exhibit different inflammatory responses compared to primary brain pericytes, showing that some iPSC-derived cell models are not appropriate for modelling all aspects of a cells biology. Furthermore, the iPSC-derived pericytes generated here were markedly different to those generated from the original article. It is therefore important for each lab to optimise the generation of iPSC-derived cell in their own hands to account for potential inter-lab variability.

cell biology↗

Screening activity of brain cancer-derived factors on primary human brain pericytes

Brain cancers offer poor prognoses to patients accompanied by symptoms that drastically impact the patient and their family. Brain tumours recruit local non-transformed cells to provide trophic support and immunosuppression within the tumour microenvironment, supporting tumour progression. Given the localization and supportive role of pericytes at the brain vasculature, we explored the potential for brain pericytes to contribute to the brain cancer microenvironment. To investigate this, primary brain pericytes were treated with factors commonly upregulated in brain cancers. Changes to brain pericyte cell signalling, inflammatory secretion, and phagocytosis were investigated. The TGF{beta} superfamily cytokines TGF{beta} and GDF-15 activated SMAD2/3 and inhibited C/EBP-{delta}, revealing a potential mechanism behind the pleiotropic action of TGF{beta} on brain pericytes. IL-17 induced secretion of IL-6 without activating NF{kappa}B, STAT1, SMAD2/3, or C/EBP-{delta} signalling pathways. IL-27 and IFN{gamma} induced STAT1 signalling and significantly reduced pericyte phagocytosis. The remaining brain cancer-derived factors did not induce a measured response, indicating that these factors may act on other cell types or require co-stimulation with other factors to produce significant effects. Together, these findings show potential mechanisms by which brain pericytes contribute to aspects of inflammation and starts to uncover the supportive role brain pericytes may play in brain cancers.

cancer biology↗