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Biology subjects

Aikawa, H.

Publications and source records attributed to Aikawa, H..

3 recordsLinked to original sources

Design of an orally bioavailable small molecule that modulates the microtubule-associated protein tau's pre-mRNA splicing

Frontotemporal dementia with parkinsonism linked to chromosome 17 (FTDP-17) is caused by the aberrant alternative pre-mRNA splicing of microtubule-associated protein tau (MAPT) exon 10, the inclusion of which encodes for a toxic tau protein harboring four microtube domains (4R tau). Here, we describe the design of an RNA-targeted small molecule that thermodynamically stabilizes the structure of a pre-mRNA splicing regulator element in the MAPT pre-mRNA exon 10-intron junction to reduce the inclusion of exon 10 and hence 4R tau abundance. Structure-based drug design was used to obtain compounds that form a network of specific interactions to the RNA including multiple interactions between a one nucleotide A-bulge and the Hoogsteen face of a closing GC base pair, the latter of which was enabled by the design of base triple interactions. A battery of assays revealed that the compound binds the target in vitro and in cells and affects pre-mRNA splicing in various cellular models including primary neurons from a human tau (htau) knock-in mouse model. The orally bioavailable compound was administered per os (p.o.), where treatment diminished exon 10 inclusion, and reduced the 4R tau protein isoform. Further, the molecule mitigated cellular pathologies and behavioral phenotypes observed in the htau transgenic mouse model. This study provides a potentially general pipeline to design compounds that target RNAs and affect disease pathways and deliver compounds that have oral bioavailability and blood-brain barrier penetrance.

biochemistry↗

Dietary zinc restriction mimics protein restriction and extends lifespan in Drosophila

Dietary restriction extends lifespan in model organisms, mainly through dietary amino acids. Compared to macronutrients, the effect of dietary micronutrients on organismal lifespan has not been intensively investigated. Here, using a synthetic diet, we test whether restriction of each micronutrient, including vitamins and minerals, affects lifespan and fecundity in adult Drosophila. While restriction of many of these micronutrients have either negative or no impact on lifespan, zinc (Zn) restriction alone can increase it. Dietary Zn restriction (ZnR) decreases fecundity, increases starvation resistance, and promotes preference for feeding amino acids, in adult females, phenocopying dietary amino acid restriction. Our study demonstrates that dietary intake of trace elements has profound impacts on physiology and lifespan, and that limiting dietary zinc may be a strategy to improve the healthspan of animals.

physiology↗

Early-adult methionine restriction reduces methionine sulfoxide and extends lifespan in Drosophila

Methionine restriction (MetR) extends lifespan in various organisms, but its mechanistic understanding remains incomplete. Whether MetR during a specific period of adulthood increases lifespan is not shown. In Drosophila, MetR is reported to extend lifespan only when amino acid levels are low. Here, by using an exome-matched holidic medium, we show that decreasing Met levels to 10% extends Drosophila lifespan with or without decreasing total amino acid levels. MetR during the first four weeks of adult life robustly extends lifespan. MetR induces the expression of Methionine sulfoxide reductase A (MsrA) in young flies, which reduces the oxidatively-damaged Met. MsrA induction is foxo-dependent and persists for two weeks after cessation of the MetR diet. Loss of MsrA attenuates lifespan extension by early-adult MetR. Our study highlights the age-dependency of the organismal response to specific nutrient and suggests that nutrient restriction at a particular period of life is sufficient for healthspan extension.

physiology↗