Search bioRxiv⌕ Search

Biology subjects

Vinnikov, I. A.

Publications and source records attributed to Vinnikov, I. A..

2 recordsLinked to original sources

Selective abundance of the stemness-promoting cluster miR-290-295 within the adult substantia nigra dopamine neurons is neuroprotective via preservation of protein synthesis

Locomotor, reward and other critical functions of the body are regulated by the ventral midbrain, with the central role played by dopamine (DA) neurons. The function of these cells from the early development to maturity is critically dependent on the orchestrated expression of coding and non-coding genes. For example, in the stem cells the miR-290-295 cluster constitutes the majority of expressed microRNAs and is critical for stemness in rodents. During development towards various terminally differentiated lineages, such as neurons, the cells typically switch off transcription of these stem cell-specific microRNAs. Here we report that within the adult Substantia Nigra pars compacta (SNpc), the miR-290-295 cluster is exclusively expressed in DA neurons (SNDA), preventing the locomotor deficits and maintaining an adequate expression of proteins involved in DA biogenesis, such as tyrosine hydroxylase (TH), dopa decarboxylase (DDC) and DA transporter (DAT). Importantly, a global knock-out of the miR-290-295 cluster leads to decreased numbers of SNDA neurons in adult mice. Using in vitro and in vivo DA cell-specific loss-of-function models, we demonstrated that miR-292a-3p, the most abundant microRNA in this cluster, directly targets PTEN, a phosphatase antagonizing the neuroprotective phosphatidylinositol-4,5-bisphosphate 3-kinase (PI3K)-AKT-mechanistic target of rapamycin kinase (mTOR) pathways regulating translation initiation. Accordingly, when labelled with the click chemistry-compatible methionine analogue L-azidohomoalanine, miR-290-295 cluster-deficient SNDA neurons revealed a drastic impairment of protein synthesis, which is critical for DA biogenesis. Our surprising findings demonstrate for the first time a selective expression of stem cell-specific and stemness-promoting microRNAs in a distinct population of mature neurons to maintain their physiological functions in the adulthood, suggesting that similar epigenetic disinhibition mechanisms may be also critical for other terminally differentiated cells across species.

neuroscience↗

Enhanced purinergic signaling in the paraventricular hypothalamus induces hyperphagic obesity and insulin resistance

Body energy homeostasis is tightly regulated by hypothalamic neural circuits. However, their remodeling upon metabolic challenges remains incompletely characterized, thus complicating the development of safe medications against the surge of metabolic diseases. Oxytocin (OXT) neurons in the paraventricular nucleus of the hypothalamus (PVH) are one of the key effectors regulating energy balance. In this work, we report that high-fat diet (HFD) feeding in mice evokes spatiotemporally selective ATP release from astrocytes (Inflares) in the PVH, accompanied by the expression of hematopoietic lineage-specific ADP/ATP receptor P2Y12 on local OXT (PVHOXT) neurons. Strikingly, increased purinergic signaling leads to impaired responsiveness of PVHOXT neurons accompanied by hyperphagic obesity and insulin resistance in mice. Conversely, loss of P2Y12 in PVHOXT neurons attenuates metabolic phenotypes, illustrating that such remodeling is both necessary and sufficient to induce metabolic phenotypes. Inflares were also induced by hyperglycemia, while emergence of P2Y12 on OXT neurons of patients with diabetes mellitus suggests an evolutionary conserved purinergic response to various metabolic challenges and its potential as a drug target. Accordingly, nasal administration of clinically approved doses of P2Y12 inhibitors counteracts obesity in mice and non-human primates, paving the way for application of these compounds in patients with metabolic disorders.

neuroscience↗