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Makovicky, P.

Publications and source records attributed to Makovicky, P..

2 recordsLinked to original sources

GPR180 deficiency impairs mitochondrial function and insulin secretion in pancreatic β-cells

ObjectiveG protein-coupled receptor 180 (GPR180) has been implicated in systemic energy metabolism, primarily in adipose tissue and the liver. Given impaired whole-body glucose tolerance following GPR180 dysfunction, we aimed to determine whether GPR180 regulates pancreatic {beta}-cell function. We investigated whether GPR180 contributes to {beta}-cell insulin secretion by modulating metabolic processes that couple glucose sensing to mitochondrial energy production. MethodsPhenotyping of whole-body (Gpr180 -/-) and {beta} cell-specific Gpr180 (bGpr180-KO) knockout mice was combined with gain- and loss-of-function studies in MIN6 cells. Glucose-stimulated insulin secretion, pancreatic endocrine architecture and identity, transcriptomic and metabolic profiles, as well as mitochondrial function were assessed using in vivo and in vitro approaches, including metabolic challenge tests, histology, RNA sequencing, targeted metabolomics, respirometry, and transmission electron microscopy. ResultsLoss of GPR180 impaired first-phase insulin secretion and glucose tolerance without affecting insulin sensitivity. These defects were {beta}-cell-autonomous, as confirmed in the bGpr180-KO mice and in MIN6 cells. Functional studies revealed that GPR180 regulates mitochondrial substrate utilization, anaplerotic support of the TCA cycle, and ATP generation without affecting glucose uptake or mitochondrial biogenesis. In particular, Gpr180-deficient {beta} cells showed mitochondrial membrane depolarization, reduced oxygen consumption, and endoplasmic reticulum remodeling, altering the local mitochondrial microenvironment. In vivo, Gpr180 deletion in {beta} cells led to downregulation of mitochondrial gene programs in islets, along with altered endocrine cell identity. ConclusionsGPR180 is a previously unrecognized regulator of pancreatic {beta}-cell metabolic competence and identity, linking defects in insulin secretion with alterations in mitochondrial function and endocrine cell identity. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=198 SRC="FIGDIR/small/720098v1_ufig1.gif" ALT="Figure 1"> View larger version (87K): org.highwire.dtl.DTLVardef@1f24a65org.highwire.dtl.DTLVardef@1f2371eorg.highwire.dtl.DTLVardef@10096a5org.highwire.dtl.DTLVardef@1a242be_HPS_FORMAT_FIGEXP M_FIG C_FIG

physiology↗

Long-Term Expression and Safety of AAV1-Mediated PI3Kδ Overexpression in the Adult Rat Cortex

Mature CNS neurons are incapable of sufficiently regenerating their axons following spinal cord injury (SCI). This is largely due to developmental changes in epigenetic control leading to suppression of axon growth transcriptomic profile, leading to a shift towards synapse function support. Recently, manipulating the PI3K/Akt/mTOR pathway through PI3K{delta} overexpression in cortical neurons enhanced axonal regeneration of corticospinal tract axons, which was accompanied by functional recovery monitored for up to 16 weeks. However, PI3K is more widely known for its role as an oncogene, and since overexpression is achieved by the use of AAVs, valid safety concerns are raised as it is unknown what the long-term consequences of sustained PI3K{delta} expression in the brain are, which may be necessary to achieve complete re-establishment of the motor pathway. In this study, AAV1-hSYN-PIK3CD was injected into the motor cortex of rats, which survived for 1 year. Comparison with uninjected control animals reveal stable PI3K{delta} expression and sustained pathway activation through increased pS6. PI3K{delta}-treated animals show absence of tumour formation, neural soma hypertrophy, glial cell activation, or haematological or biochemical abnormalities. Thus, long-term neuronal PI3K{delta} expression appears to be well tolerated and may provide a safe and durable strategy to promote functional repair following SCI.

neuroscience↗