bioRxiv Science⌕ Search

Biology subjects

Iruzubieta, P.

Publications and source records attributed to Iruzubieta, P..

3 recordsLinked to original sources

Bacterial metabolic signatures in MASLD predicted through gene-centric studies in stool metagenomes

Metabolic dysfunction-associated steatotic liver disease (MASLD) is a multifactorial condition influenced by the gut microbiome (GM). While previous studies have reported inconsistent associations between MASLD and key microbial clades using low-resolution 16S rRNA profiling, we employed high-resolution metagenomic sequencing and multi-marker taxonomic classification across three independent cohorts to identify robust microbial and functional signatures of MASLD. We consistently detected a depletion of Agathobacter rectalis, a known butyrate producer, in MASLD patients. Functionally, MASLD was characterized by a depletion of genes involved in butyrate and methane biosynthesis-particularly within the crotonyl-butyryl-CoA axis-alongside an enrichment of genes driving the production of endogenous alcohols such as ethanol and 1-propanol. Genes encoding these fermentative pathways, often organized in operons like pdu and tor, were more abundant in MASLD samples, indicating a potential shift toward alcohol-producing metabolism. These geno-metabolic changes were accompanied by a broader displacement of beneficial taxa and an increase in accessory gene content across the GM, underscoring the limitations of taxonomy-based disease associations. Many of the differentially abundant genes were also found on plasmids, suggesting that horizontal gene transfer contributes to strain-level metabolic variability relevant to MASLD progression. Our findings support a model in which GM-driven metabolic shifts-rather than taxonomic changes alone-play a central role in MASLD pathogenesis, highlighting the importance of functional and mobile genetic element (MGEs) profiling for uncovering mechanistic links between the microbiome and liver disease.

microbiology↗

Targeted plasma proteomics uncover novel proteins associated with KIF5A-linked SPG10 and ALS spectrum disorders

KIF5A (Kinesin family member 5A) is a motor protein that functions as a key component of the axonal transport machinery. Variants in KIF5A are linked to several neurodegenerative diseases, mainly spastic paraplegia type 10 (SPG10), Charcot-Marie-Tooth disease type 2 (CMT2), and amyotrophic lateral sclerosis (ALS). These diseases share motor neuron involvement but vary significantly in clinical presentation, severity, and progression. KIF5A variants are mainly categorized into N-terminal variants associated with SPG10/CMT2 and C-terminal variants linked to ALS. This study utilized a novel multiplex NULISA targeted platform to analyze plasma proteome from KIF5A-linked SPG10, ALS patients and compared to healthy controls. Our results revealed distinct proteomic signatures, with significant alterations in proteins related to synaptic function, and inflammation. Notably, neurofilament light polypeptide, a biomarker for neurodegenerative diseases, was elevated in KIF5A ALS but not in SPG10 patients. Moreover, these findings can now be taken forward to gain mechanistic understanding of axonopathies linking to N-vs C-terminal KIF5A variants affecting both central and peripheral nervous systems.

neuroscience↗

Energy scarcity and impaired mitochondrial translation induce perinuclear stress granule clustering

Many proteins linked to amyotrophic lateral sclerosis and fronto-temporal dementia (ALS-FTD) change their cellular location and coalesce in cytoplasmic inclusion bodies in the disease state; yet the factors that govern protein relocation and organization remain unclear. Here, we show that inhibition of glycolysis and mitochondrial protein synthesis causes many proteins involved in ALS-FTD to change location, and form a novel structure comprising a ring of stress granules encircling the aggresome, a focal microtubule-based structure beside the nucleus. A perinuclear ring of stress granules also forms in activated microglia of mice exposed to the glycolytic inhibitor, 2-Deoxy-D-glucose. We propose that the new arrangement increases the risk of the stress granules merging and converting from the liquid phase to the insoluble inclusion characteristic of ALS-FTD. Thus, our findings suggest that that compromised nutrient and energy metabolism can precipitate a molecular cascade that ultimately leads to the pathological hallmark of ALS-FTD the perinuclear inclusion body. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=127 SRC="FIGDIR/small/578399v1_ufig1.gif" ALT="Figure 1"> View larger version (25K): org.highwire.dtl.DTLVardef@b32d48org.highwire.dtl.DTLVardef@161f848org.highwire.dtl.DTLVardef@f35c66org.highwire.dtl.DTLVardef@1375508_HPS_FORMAT_FIGEXP M_FIG C_FIG Inhibition of glycolysis and mitochondrial protein synthesis induces translocation of a swathe of ALS-FTD related proteins in primary human fibroblasts. The relocated proteins form concentric cytoplasmic rings (CCR) comprising stress granules, the Golgi and the aggresome, beside the nucleus. A perinuclear ring of stress granules forms in the mouse brain following intermittent nutrient restriction, with the glucose analog 2DG. The CCR is potentially a key intermediate step in the formation of pathological inclusions and so perturbed nutrient and energy metabolism encompassing impaired mitochondrial translation could precipitate the ALS-FTD disease cascade.

cell biology↗