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Cavalier, A. N.

Publications and source records attributed to Cavalier, A. N..

2 recordsLinked to original sources

Amyloid beta acts synergistically as a pro-inflammatory cytokine

The amyloid beta (A{beta}) peptide is believed to play a central role in Alzheimers disease (AD), the most common age-related neurodegenerative disorder. However, the natural, evolutionarily-selected functions of A{beta} are incompletely understood. Here, we report that nanomolar concentrations of A{beta} act synergistically with known cytokines to promote pro-inflammatory activation in primary human astrocytes (a cell type increasingly implicated in brain aging and AD). Using transcriptomics (RNA-seq), we show that A{beta} can directly substitute for the complement component C1q in a cytokine cocktail previously shown to induce astrocyte immune activation. Furthermore, we show that astrocytes synergistically activated by A{beta} have a transcriptional signature similar to neurotoxic "A1" astrocytes known to accumulate with age and in AD. Interestingly, we find that this biological action of A{beta} at low concentrations is distinct from the transcriptome changes induced by the high/supraphysiological doses of A{beta} often used in in vitro studies. Collectively, our results suggest an important, cytokine-like function for A{beta} and a novel mechanism by which it may directly contribute to the neuroinflammation associated with brain aging and AD.

molecular biology

Healthy aging interventions reduce non-coding repetitive element transcripts

ABSTRACTTranscripts from non-coding repetitive elements (RE) in the genome may be involved in aging. However, they are often ignored in transcriptome studies on healthspan and lifespan, and their role in healthy aging interventions has not been characterized. Here, we analyze RE in RNA-seq datasets from mice subjected to robust healthspan- and lifespan-increasing interventions including calorie restriction, rapamycin, acarbose, 17-α-estradiol, and Protandim. We also examine RE transcripts in long-lived transgenic mice, and in mice subjected to high-fat diet, and we use RNA-seq to investigate the influence of aerobic exercise on RE transcripts with aging in humans. We find that: 1) healthy aging interventions/behaviors globally reduce RE transcripts, whereas aging and age-accelerating treatments increase RE expression; and 2) reduced RE expression with healthy aging interventions is associated with biological/physiological processes mechanistically linked with aging. Thus, RE transcript dysregulation and suppression are likely novel mechanisms underlying aging and healthy aging interventions, respectively.View Full Text

molecular biology