Search bioRxiv⌕ Search

bioRxiv · 10.1101/2025.06.25.661596

Sex-Stratified Transcriptomic Meta-Analysis of Alzheimer's Disease Reveal Brain Region and Sex Specific Dysregulation

Abstract

ObjectiveAlzheimer disease (AD) is a neurodegenerative disorder leading to cognitive decline. Despite growing recognition of sex differences in epidemiology, symptomatology, and clinical outcomes of AD, the molecular mechanisms underlying these variations remain poorly defined. We performed transcriptome association studies of AD aiming to identify sex-specific and sex-dependent transcriptomic profiles that could provide insights into the molecular mechanisms underlying sex differences in AD pathogenesis. MethodsWe conducted a meta-analysis of bulk-RNAseq data derived from human postmortem brain studies. Specifically, we analyzed gene expression differences between individuals diagnosed with AD and non-cognitively impaired (NCI) individuals across two key brain regions: the prefrontal cortex and the temporal lobe. We performed stratified differential expression analyses separately in males and females, alongside combined analyses across sexes. Additionally, we assessed the data in relation to known AD genes, proteomic studies, and drug repurposing opportunities. ResultsBeyond the genes commonly dysregulated across both sexes, our meta-analyses identified multiple differentially expressed genes (DEGs) between AD and NCI that are either altered in only one sex or show different effects between sexes. Some genes are known AD genes from genetic studies, but others are novel. Correlation with proteomic data suggests that these transcriptional differences have functional significance, potentially contributing to the biological mechanisms underlying sex differences observed in AD. Finally, we identify drug compounds that are potential candidates for treatment. InterpretationOur findings enhance our understanding of sex-related differences in disease etiology and progression, and underscore the importance of incorporating sex as a critical variable in transcriptomic studies of AD. These insights help pave the way for more precise, personalized medicine approaches that account for sex-specific molecular mechanisms.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

young, j. I., Varma, A., Gomez, L., Schmidt, M. A., Kunkle, B., Wang, L., Martin, E.. 2025-06-28. Sex-Stratified Transcriptomic Meta-Analysis of Alzheimer's Disease Reveal Brain Region and Sex Specific Dysregulation. https://doi.org/10.1101/2025.06.25.661596

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related preprints

The C-terminus of the KREH1 helicase is important for RNA binding and association with mitochondrial RNA editing complexes in T. brucei

Mitochondrial pre-mRNA editing in kinetoplastids, a clade that includes human-infective parasitic protists such as Trypanosoma and Leishmania, is required to produce translatable, functional gene products from otherwise nonfunctional mitochondrial precursor transcripts of essential respiratory chain complex subunits. RNA editing is a template-guided process in which cognate guide RNAs (gRNAs) anneal to specific sites at the pre-mRNA and direct the complementary insertion and/or deletion of uridines. Large multi-modular complexes - like the RNA-Editing Substrate-binding Complex (RESC) and the RNA-Editing Catalytic Complexes (RECC) - organize and catalyze RNA editing, respectively. Within these assemblies, Kinetoplast RNA Editing Helicases (KREHs) play an important role in ribonucleoprotein complex remodeling, particularly in pan-editing, when transcripts are extensively modified throughout their length by multiple gRNAs. However, the mechanisms by which KREH RNA helicases facilitate pan-editing, and their specific roles in this process, remain unclear. Here, we define the molecular properties of the Trypanosoma brucei DEAD-box RNA editing helicase KREH1. Cellular co-proteome analyses reveal that KREH1 interacts with subunits of the RESC complex and biochemical experiments show that KREH1 is an RNA-dependent ATPase that unwinds double-stranded RNA substrates. We show that the flexible C-terminus of KREH1 is important for RNA binding and, consequently, for enzymatic activity in vitro and interactions with the RESC complex in vivo. Overall, our experiments refine the role of KREH1 in the pan-editing process and establish its utility as a molecular tool for investigating higher-order RNA editing complexes in the cellular context.

molecular biology↗

Structural basis of nucleosome remodeling by archaeal RNA polymerase during transcription elongation

Transcription occurs in the context of histone-based chromatin in eukaryotes and most archaea. The archaeal RNA polymerase and histones are ancestral to their eukaryotic counterparts, yet how RNA polymerase traverses histone-bound DNA in archaea remains poorly understood. Here, we reconstitute a nucleosome-associated transcription elongation complex (TEC) from Pyrococcus furiosus and capture its structure across multiple elongation states by cryo-electron microscopy (cryo-EM). High-resolution structures reveal that the RNA polymerase engages a three-dimer HPfB nucleosome positioned downstream. We identify direct physical interactions between HPfB and Rpo1N RNA polymerase subunit, establishing a defined polymerase-histone interface during transcription. Structural comparisons across defined elongation states demonstrate that RNA polymerase first translocates on DNA using the proximal histone dimer as an anchor, followed by destabilisation of the distal dimer. The DNA exiting the nucleosome is partially unwrapped and is redirected traversing the Rpo4/7 stalk. At extended transcript lengths nucleosome organisation is lost, indicating that transcription elongation ultimately disrupts histone-DNA interactions. This work provides the first structural insight into transcription through chromatin in archaea, revealing a mechanism in which the archaeal RNA polymerase actively remodels nucleosomes via DNA redirection and histone displacement, aided by direct polymerase-histone contacts.

molecular biology↗

Structural mechanism of Gasdermin E-mediated mtDNA release from apoptotic mitochondria

During apoptosis, the permeabilization of the mitochondrial inner membrane (MIM) through still-unclear mechanisms releases mtDNA into the cytosol, triggering the inflammatory cGAS/STING pathway under low caspase activity. Here, we report that, in apoptosis, the active form of the pore-forming protein Gasdermin E (GSDME-N) damages mitochondria before plasma membrane disruption. We visualize GSDME-N pore-like nano-assemblies in the MIM of apoptotic cells and of isolated mitochondria, which we bridge with the cryo-EM structure of the GSDME-N pore in mitochondria-like membranes. Deep membrane insertion of the anchor domain, which acts as a determinant of GSDME-N cardiolipin binding preferences, supports a role in pore formation. Notably, GSDME depletion results in a reduction in cristae swelling, MIM extrusion and mtDNA release during apoptosis. Subsequently, this decreases STING activation and inflammatory responses under caspase inhibition. Our findings reveal that GSDME mediates MIM permeabilization and mtDNA release during apoptosis and define the mechanism of GSDME-mediated membrane damage.

molecular biology↗