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Traxler, L.

Publications and source records attributed to Traxler, L..

3 recordsLinked to original sources

Cytoplasmic DNA Sensing Links LINE-1 Expression to Neuronal Senescence in Alzheimer's Disease

Cellular senescence contributes to neurodegeneration in Alzheimers disease (AD), yet brain-penetrant senotherapeutic strategies remain limited. Here, we identify long interspersed nuclear element 1 (LINE-1) retrotransposons as key regulators of neuronal senescence and the senescence-associated-secretory-phenotype (SASP) in AD. Using transdifferentiated induced neurons (iNs) that preserve donor-specific aging-associated molecular signatures, we show that pharmacological inhibition of LINE-1 with nucleoside reverse transcriptase inhibitors (nRTIs) or antisense oligonucleotides reduces p16 expression, suppresses SASP and interferon-stimulated gene programs, and attenuates paracrine induction of reactive astrogliosis. Spatial transcriptomic analysis of human AD brain tissue further supports that senescent neurons with high LINE-1 expression are localized to inflammatory niches in the brain. Although bulk analysis finds no significant differences in LINE-1 expression between AD and control neurons, long-read single-cell RNA sequencing of iNs identifies a subset of neurons with elevated LINE-1 activity which display transcriptional signatures of neurodegeneration, immune activation, and senescence are enriched in AD relative to controls. RNA velocity analysis indicates that LINE-1 activation precedes the induction of canonical senescence markers, supporting a causal rather than consequential role. Mechanistically, LINE-1-derived cytoplasmic DNA activates the cGAS-STING innate immune pathway in post-mitotic neurons, and inhibition of cGAS phenocopies the effects of LINE-1 suppression. Together, these findings establish a LINE-1/cGAS-STING axis as a driver of neuronal senescence in AD and highlight LINE-1 inhibition as a tractable senomorphic strategy for neurodegenerative disease.

neuroscience↗

Autophagy flux during human aging is sex- and cell type-specific, and is associated with physical fitness

Autophagy is widely proposed to decline with age; however, direct evidence for this across cell and tissue types in humans remains limited. Furthermore, it remains unknown whether interventions that improve physiological health during aging can modify autophagic activity in humans. Here, we performed transcriptomic and functional autophagy analyses across subject-matched human cell types from a healthy aging cohort spanning the adult lifespan. RNA-seq of primary dermal fibroblasts and induced neurons (iNs) revealed increased transcription of many autophagy-related genes with age, most markedly in fibroblasts. The impact of age on autophagic activity, measured using autophagy flux assays, was cell type- and sex-dependent, and uncoupled from autophagy-gene transcription. Autophagy flux decreased with age in male fibroblasts, was unchanged in female fibroblasts, and increased in female iNs. In freshly isolated peripheral blood mononuclear cells (PBMCs), autophagy flux became more heterogeneous with age and trended higher in older individuals, independent of sex. Although autophagy flux levels did not match across different cell types, higher autophagy flux in all cell types was associated with reduced physical function in older adults ([≥]70 years). Importantly, autophagy flux decreased following 12 weeks of mild exercise in parallel with improved physical function. These findings indicate that autophagy is regulated in a cell type-, sex-and physiological function-dependent manner during human aging, and highlight PBMC autophagy flux as a potentially modifiable, blood-accessible readout of physiological state in older adults.

cell biology↗

RUNX1 and YY1 modulate neuronal fate and energy metabolism in Alzheimer's disease

Loss of neuronal identity and metabolic dysfunction are features of Alzheimers disease (AD), yet the upstream-acting molecular drivers remain incompletely understood. By integrating multi-omics data from patient-derived induced neurons (iNs) and AD post-mortem human brains, we discovered that AD neurons express two master transcription factors (TFs), RUNX1 and YY1. While these TFs are primarily expressed during development where they play fundamental roles in cell fate determination and cellular bioenergetics, respectively, they can be reactivated in adult neurons in response to stress. To understand their functional role in AD neurons, we overexpressed RUNX1 or YY1 in aged iNs and found that the expression of each TF was sufficient to recapitulate two AD-associated features. Specifically, RUNX1 overexpression caused loss of neuronal fate, whereas YY1 overexpression regulated gene regulatory programs associated with metabolic dysfunction. Conversely, downregulation of either TF, in AD iNs, reinstated gene regulatory programs associated with a healthy mature neuronal phenotype. Together, these findings identify two transcriptional master regulators of the AD neuronal phenotype and establish a mechanistic foundation for further studying their role in the pathogenesis of AD and as putative therapeutical targets for the treatment of AD and age-associated neurodegeneration.

neuroscience↗