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Kittilukkana, A.

Publications and source records attributed to Kittilukkana, A..

3 recordsLinked to original sources

Synchrotron XRF imaging reveals manganese accumulation in the Golgi and post-synapses of neurons and enhanced uptake in astrocytes

Manganese is an essential trace metal for humans, but excessive exposure can cause neurotoxicity, including parkinsonian syndromes, cognitive deficits, and has also been implicated in the pathogenesis of neurodegenerative diseases. Globally, tens of millions of people are exposed to elevated manganese levels through drinking water, exceeding the WHO recommended guideline. Despite its public health significance, the cellular and subcellular mechanisms underlying manganese neurotoxicity remain poorly defined, particularly its distribution across brain cell types and its specific intracellular targets. In this study, we investigated manganese accumulation in primary cultures of hippocampal neurons and astrocytes. Using a correlative imaging approach that combined cryo-fluorescence light microscopy with synchrotron X-ray fluorescence imaging, we mapped and quantified manganese at subcellular resolution. Our analysis revealed that manganese preferentially accumulates in the Golgi apparatus of both neurons and astrocytes. In neurons, manganese was also detected in dendrites at the postsynaptic density, suggesting a role in synaptic vulnerability. Quantitative elemental analysis showed that astrocytes accumulated 3 times more manganese than neurons. Furthermore, when neurons were co-cultured with astrocytes, their manganese uptake was significantly reduced, indicating a possible protective or buffering role of astrocytes. These findings identify key cellular and subcellular targets of manganese and highlight the Golgi apparatus as a major regulator of manganese neurotoxicity. This work provides a foundation for understanding cell type-specific responses to manganese exposure and may inform the development of targeted neuroprotection strategies. Significance statementManganese neurotoxicity impact millions of people worldwide. Understanding how manganese distributes within brain cells is critical for addressing its neurotoxic effects. This study identifies the Golgi apparatus and postsynaptic density as key sites of manganese accumulation and reveals astrocytes as major regulators of neuronal manganese uptake. These findings provide a cellular framework for developing targeted strategies to mitigate manganese-induced neurotoxicity.

neuroscience↗

Storage and transport of labile iron is mediated by lysosomes in axons and dendrites of hippocampal neurons

Iron dyshomeostasis in neurons, involving iron accumulation and abnormal redox balance, is implicated in neurodegeneration. In particular, labile iron, a highly reactive pool of intracellular iron, plays a prominent role in iron-induced neurological damage. However, the mechanisms governing the detoxification and transport of labile iron within neurons are not fully understood. This study investigates the storage and transport of labile ferrous iron Fe(II) in cultured primary rat hippocampal neurons. Iron distribution was studied using live cell confocal microscopy with a selective labile Fe(II) fluorescent dye, and synchrotron X-ray fluorescence microscopy (SXRF) for total iron distribution. Fluorescent labelling of the axon initial segment and of lysosomes allowed iron distribution to be correlated with these subcellular compartments. The results show that labile Fe(II) is stored in lysosomes within somas, axons and dendrites and that lysosomal labile Fe(II) is transported retrogradely and anterogradely along axons and dendrites. In addition, we have developed a methodological workflow to quantify labile Fe(II) relative to total iron in neurites. This method is based on correlative imaging of fluorescence microscopy of labile Fe(II) combined with quantitative elemental mapping of total iron by SXRF. Quantitative analysis revealed that after Fe(II) exposure, lysosomal Fe(II) accounts for a small but significant percentage of the total iron content in neurites. These result suggest that after exposure to labile Fe(II), iron is mainly present in a non-reactive form in neurons, while the smaller fraction of reactive labile Fe(II) is stored in lysosomes and can be transported along dendrites and axons.

neuroscience↗

The Role of Labile Iron on Brain Proteostasis; Could it be an Early Event of Neurodegenerative Disease?

Iron deposits in the brain are a natural consequence of aging. Iron accumulation, especially in the form of labile iron, can trigger a cascade of adverse effects, eventually leading to neurodegeneration and cognitive decline. Aging also increases the dysfunction of cellular proteostasis. The question of whether iron alters proteostasis is now being pondered. Herein, we investigated the effect of ferric citrate, considered as labile iron, on various aspects of proteostasis of neuronal cell lines, and also established an animal model having a labile iron diet in order to evaluate proteostasis alteration in the brain along with behavioral effects. According to an in vitro study, labile iron was found to activate lysosome formation but inhibits lysosomal clearance function. Furthermore, the presence of labile iron can alter autophagic flux and can also induce the accumulation of protein aggregates. RNA-sequencing analysis further reveals the upregulation of various terms related to proteostasis along with neurodegenerative disease-related terms. According to an in vivo study, a labile iron-rich diet does not induce iron overload conditions and was not detrimental to the behavior of male Wistar rats. However, an iron-rich diet can promote iron accumulation in a region-dependent manner, particularly in the cortex. By staining for autophagic markers and misfolding proteins in the cerebral cortex, the iron-rich diet was actually found to alter autophagy and induce an accumulation of misfolding proteins. These findings emphasize the importance of labile iron on brain cell proteostasis, which could be implicated in developing of neurological diseases. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=85 SRC="FIGDIR/small/567981v1_ufig1.gif" ALT="Figure 1"> View larger version (31K): org.highwire.dtl.DTLVardef@442c01org.highwire.dtl.DTLVardef@1a50219org.highwire.dtl.DTLVardef@2cc997org.highwire.dtl.DTLVardef@66ec15_HPS_FORMAT_FIGEXP M_FIG C_FIG

cell biology↗