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Biology subjects

Lue, Y.

Publications and source records attributed to Lue, Y..

3 recordsLinked to original sources

Paternal Metabolic Reversal Remodels Sperm RNA Profiles and Ameliorates Intergenerational Metabolic Disorder in Mice

Paternal obesity increases metabolic risk in offspring, but whether this risk can be reduced by restoring paternal health before conception remains unresolved. We developed a within-sire induction-and-reversal model in outbred CD1 mice in which high-fat diet (HFD)-exposed males generated offspring before and after transition to an ingredient-matched control diet with voluntary exercise. HFD caused obesity, glucose intolerance, insulin resistance, and extensive remodeling of sperm mRNA, lncRNA, and sncRNA profiles, together with transcriptomic changes in metabolic tissues. Diet and exercise reversal normalized paternal metabolic indices and broadly restored tissue RNA profiles, although sperm retained a limited transcriptional memory of prior HFD exposure. Offspring sired before reversal developed sex-dependent metabolic dysfunction despite control-diet rearing, whereas offspring sired after reversal showed substantial improvement. These findings show that paternal metabolic risk is modifiable before conception and that this reversibility is linked to remodeling of sperm RNA. (140 words) HighlightsO_LIPaternal HFD-Ex induces obesity, glucose intolerance and insulin resistance in CD1 males C_LIO_LISperm shows much stronger RNA response than four metabolic organs profiled C_LIO_LIDiet and exercise reversal restores metabolism and RNA profiles in sperm and four metabolic organs analyzed C_LIO_LIOffspring metabolic risk is reduced when sires conceive after reversal through diet and exercise intervention C_LI eTOC BlurbChen, Magalhaes, et al. show that paternal metabolic recovery before conception remodels sperm RNA and reduces transmission of HFD-associated metabolic risk to offspring in a within-sire mouse model.

genetics↗

Valosin-containing Protein is Cargo in Amyloid Precursor Protein Extracellular Vesicles

The Amyloid Precursor Protein (APP), a genetic cause of Alzheimers disease (AD), is a type-I transmembrane protein that is metabolized by proteolysis in the endolysomal system. APP and its metabolites are secreted by cells in extracellular vesicles (EVs). To study the function of APP-containing EVs, we isolated App-EVs from rat primary neuronal conditioned media and proteomic analysis identified the Valosin-containing protein (Vcp) as molecular cargo. Pharmacological modulation of Vcp activity was found to alter App processing and global EV secretion in rat primary neurons. AD-associated knock-in App mutations were found to alter the abundance of App-EVs and the trafficking of App metabolites within App-EVs, in a manner related to the epitopes generated by the nonamyloidogenic processing of App. The presence of Vcp suggests a role for App-EVs in the clearance of protein aggregates.

cell biology↗

An RNA binding module of SWI/SNF is required for activation of cell-type specific enhancers and super-enhancers in early development

The mammalian SWI/SNF complex is an ATP-dependent chromatin remodeler and master regulator in development that when mutated is the cause for several human diseases including cancer. Although SWI/SNF is highly enriched at enhancers and its basic chromatin remodeling activities have been studied for over 30 years, there is little known about how it regulates enhancer activity or enhancer-promoter interactions. We find a putative RNA binding module located near the C-terminus of the catalytic subunit of SWI/SNF required for SWI/SNF recruitment to cell-type specific enhancers and super-enhancers in naive and cell lineage primed pluripotent cells. The AT-hook is required for acquisition of the active histone marks H3K27ac and H3K4me1 and recruitment of the MLL3/4 co-activator to these enhancers and super-enhancers. Consistent with changes in enhancer architecture, loss of the AT-hook interferes with activation of genes involved in cell lineage priming as well as genes normally activated in naive pluripotent cells.

genomics↗