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Biology subjects

Abe, I.

Publications and source records attributed to Abe, I..

4 recordsLinked to original sources

Split RNA switch: Programmable and precise control of gene expression by ensemble of pre- and post-translational regulation

Regulating gene expression in response to biomolecules is a powerful strategy for monitoring intracellular environments and controlling cellular programs. RNA switch is a synthetic mRNA-based technology that controls gene expression at the translational level in response to cellular RNA and protein molecules, thus enabling cell type-specific gene regulation and showing promise for gene therapy, regenerative medicine, and cell therapy. However, single RNA switches often lack the specificity required for practical applications due to low ON/OFF ratios and difficulty in finding distinct and single biomolecule targets. To address these issues, we developed "split RNA switches" that integrate outputs from multiple RNA switches by exploiting protein splicing, a post-translational modification mechanism. We demonstrated that split RNA switches significantly improve the ON/OFF ratio of microRNA (miRNA)-responsive ON switch systems by canceling undesirable leaky OFF level. We achieved efficient and robust target cell purification based on endogenous miRNA profiles, which was impossible with an ON switch alone. Additionally, we constructed multi-output and multi-input RNA-based synthetic circuits using split RNA switches to enable the detection of multiple miRNAs for precise gene control with logical operations. Split RNA switches illustrate a novel application of protein splicing and demonstrate the potential of post-translational processing as a comprehensive solution for advancing translational control technologies toward widespread mRNA therapies.

synthetic biology↗

ZIP13 regulates lipid metabolism by changing intracellular iron and zinc balance

Metabolic diseases are caused by a prolonged energy imbalance, and adipose tissue is known to be the main contributor. We previously reported that ZIP13, an Slc39a transporter whose deficiency causes Ehlers-Danlos syndrome spondylocheirodysplastic type 3 associated with lipoatrophy, inhibits the adipocyte browning pathway by modulating intracellular zinc status. The precise mechanisms of how ZIP13 regulates the homeostasis of adipose tissue remain unclear and therefore, we investigated the role of ZIP13 in mature adipocytes using adipocyte-specific Zip13-deficient mice. We herein demonstrate that these mice show accelerated lipolysis and reduced respiratory exchange ratio. In addition, abundance of iron and zinc balance were altered during differentiation in normal adipocytes, whereas iron distribution was substantially affected in Zip13-deficient adipocytes, which downregulated PDE activity and enhanced {beta}-adrenergic receptor signaling pathways. Importantly, we confirmed that ZIP13 could transport both zinc and iron, using the Xenopus oocyte transport system and in silico structural dynamics simulations, and that the defect in iron distribution perturbs proper lipolysis. Together, these results illustrate that ZIP13 acts as a key regulator for lipolysis in adipocytes via the proper use of metals, and that the ZIP13-iron axis plays an important role in regulation of lipid metabolism.

cell biology↗

Sympathetic neuron-derived NPY protects from obesity by sustaining the mural progenitors of thermogenic adipocytes.

Neuropeptide Y (NPY) is secreted by sympathetic nerves1,2, but its direct impact on thermogenic adipocytes is unknown. Here we uncover the mechanism by which peripheral NPY protects from obesity. Our imaging of cleared murine brown and white adipose tissue (BAT and WAT) established that NPY+ sympathetic axons are only a minority that mostly maps to the peri-vasculature; our analysis of single-cell RNA-sequencing datasets identifies mural cells as the main NPY-responsive cells in adipose tissues. We show that NPY sustains mural cells, which are known to be a source of beige cells in both BAT and WAT3-5 and that NPY facilitates the differentiation to thermogenic adipocytes. We found that diet-induced-obesity leads to neuropathy of NPY+ axons and concomitant depletion of the mural cell pool of beige fat progenitors. This defect is replicated in conditional knockout (cKO) mice with NPY specifically abrogated from sympathetic neurons. These cKO mice have whitened BAT with reduced thermogenic ability and lower energy expenditure even before the onset of obesity; they develop adult-onset obesity on a regular chow diet and are more susceptible to diet induced obesity without increasing food consumption. Our results indicate that, relative to central NPY, peripheral NPY produced by the sympathetic nerves has the opposite effect on body weight homeostasis by sustaining the proliferation of the mural cell progenitors of thermogenic adipocytes.

physiology↗

Mitochondrial choline import regulates purine nucleotide pools via SLC25A48

Choline is an essential nutrient for cellular metabolism, including the biosynthesis of phospholipids, neurotransmitters, and one-carbon metabolism. A critical step of choline catabolism is the mitochondrial import and synthesis of chorine-derived methyl donors, such as betaine. However, the underlying mechanisms and the biological significance of mitochondrial choline catabolism remain insufficiently understood. Here, we report that a mitochondrial inner-membrane protein SLC25A48 controls mitochondrial choline transport and catabolism in vivo. We demonstrate that SLC25A48 is highly expressed in brown adipose tissue and required for whole-body cold tolerance, thermogenesis, and mitochondrial respiration. Mechanistically, choline uptake into the mitochondrial matrix via SLC25A48 facilitates betaine synthesis and one-carbon metabolism. Importantly, cells lacking SLC25A48 exhibited reduced synthesis of purine nucleotides and failed to initiate the G1-to-S phase transition, thereby leading to cell death. Taken together, the present study identified SLC25A48 as a mitochondrial carrier that mediates choline import and plays a critical role in mitochondrial respiratory capacity, purine nucleotide synthesis, and cell survival. Key pointsO_LISLC25A48 is required for mitochondrial choline uptake. C_LIO_LIMitochondrial choline uptake regulates one-carbon contribution to purine nucleotide synthesis. C_LIO_LIBrown fat thermogenesis requires mitochondrial choline catabolism for respiratory capacity. C_LIO_LICancer cells require mitochondrial choline uptake for cell survival. C_LI

cell biology↗