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Jutarop Phetcharaburanin

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Open access Sep 2026

Pre-symptomatic proteomic and metabolomic profiling identifies compensated ER-redox-metabolic adaptation and early nuclear vulnerability in neuronal ERO1L toxicity

Aging progressively challenges neuronal proteostasis, redox homeostasis, and metabolism, yet the molecular changes that precede functional decline remain poorly understood. Endoplasmic reticulum oxidoreductin 1 (ERO1), a key regulator of oxidative protein folding, links endoplasmic reticulum (ER) proteostasis with cellular redox balance and is elevated in aging and neurodegenerative contexts. Here, we investigated how neuronal ERO1L elevation reshapes cellular homeostasis before overt dysfunction in Drosophila melanogaster. Endogenous ERO1L expression increased with age, and neuronal ERO1L elevation shortened lifespan and caused progressive locomotor decline. This effect was strongly cell-type dependent, as ERO1L elevation in glia, muscle, or fat body did not produce a comparable survival phenotype. At day 5 post-eclosion, locomotor performance remained preserved and major brain reactive-oxygen-species (ROS) accumulation was not yet detectable, defining a pre-symptomatic stage. Multi-omic profiling at this stage revealed selective remodelling of ER proteostasis, redox defence, and mitochondrial-energy pathways, together with changes in central-carbon, nitrogen, and purine metabolism. In contrast to these broadly adaptive responses, chromatin- and RNA-homeostasis-associated proteins were selectively reduced, accompanied by decreased HP1, dFmr1, and Piwi expression and increased transposable-element transcripts. Thus, neuronal ERO1L elevation establishes a pre-symptomatic state in which proteostatic and metabolic adaptation coexists with early vulnerability of nuclear and RNA-homeostasis pathways, preceding overt oxidative stress and behavioural decline. These findings provide an in vivo framework to investigate how age-associated ERO1L elevation may progressively reduce neuronal resilience during brain aging.

L. Lo Piccolo, Ranchana Yeewa, Puttachat Poound et al. · 0 citations
Review Open access Aug 2026

The gut microbiome organ

Abstract The human gut microbiome is increasingly viewed as an active regulator of host physiology, extending beyond earlier taxonomy‐centered descriptions of a complex microbial community. Accumulating evidence supports an organ‐like conceptual framework in which the gut microbiome exhibits spatially structured organization, extensive metabolic capacity, and continuous bidirectional communication with host systems. Through the production of bioactive metabolites with endocrine‐like, immunomodulatory, and neuromodulatory properties, the microbiome contributes to metabolic, immune, and neuroendocrine regulation, thereby influencing systemic homeostasis and disease susceptibility. Recent advances in multi‐omics, spatial biology, and computational modeling are moving the field from taxonomic association toward functional interpretation, mechanistic insight, and causal inference. These approaches are beginning to reveal microbiome‐derived functional modules and host–microbe signaling networks that are shaped by host genetics, diet, medications, feeding patterns, circadian rhythms, and environmental exposures. In this review, we synthesize current mechanistic and translational evidence to conceptualize the gut microbiome as an organ‐like functional system, delineate its structural and functional organization, and propose a framework for mapping, modeling, and therapeutically targeting microbiome‐derived circuits to support precision medicine in metabolic, inflammatory, and selected gut–brain axis‐related disorders.

Yang Bi, Wei-Bin Song, Maria Glymenaki et al. · 0 citations

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