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Kotsalidis, P. E.

Publications and source records attributed to Kotsalidis, P. E..

3 recordsLinked to original sources

Genome-wide CRISPR interference screen identifies Clip2 as a novel regulator of osteocyte maturation and morphology

Osteocytes play critical roles in bone, making them attractive targets for therapeutics to improve bone mass and strength. The genes driving osteocyte maturation and function are not fully understood. Here we aimed to identify novel genes responsible for osteocyte differentiation and dendrite development by performing a genome-wide CRISPR-interference (CRISPRi) screen in the Ocy454 osteocyte-like cell line. We identify CD61 (integrin {beta}3) as a marker of osteocyte maturation: surface CD61 expression increases during osteocyte maturation, and CD61high cells express higher levels of osteocyte marker genes. We then developed a flow cytometry-based assay to quantify surface CD61 protein levels as a phenotypic endpoint for functional genomic screening. In a genome-wide screen, we identified Clip2, which encodes a microtubule binding protein, as one of dozens of genes necessary for CD61 expression. Clip2 inhibition decreased surface CD61 expression, reduced expression of osteocyte-specific genes Dmp1 and Sost, and impaired dendrite morphology in vitro. Together, these results highlight the utility of surface CD61 as a marker of osteocyte maturity and identify a role of the microtubule cytoskeleton for osteocyte differentiation, form, and function.

cell biology↗

Trafficking and translation of mRNA in osteocyte dendrites

Osteocyte dendrites extend great distances through canaliculi in bone supported by an extensive cytoskeletal network. The formation and maintenance of osteocyte dendrites is closely linked to bone health, yet the mechanisms regulating these processes are poorly understood. Here we tested the hypothesis that osteocytes transport mRNA to their dendrites for local translation as a mechanism of regulating the formation and maintenance of these subcellular structures. Using molecular and imaging approaches, we demonstrated that a subset of mRNAs are enriched in Ocy454 osteocyte-like cell dendrites. To understand how certain mRNAs are directed to dendrites, we performed a massively parallel reporter assay with 7115 oligonucleotide sequences designed from the 3 untranslated regions of eight dendrite-enriched transcripts. We identified localization sequences within some 3UTRs that were both sufficient and necessary for trafficking to osteocyte dendrites, indicating that localization directions are specifically encoded in enriched transcripts. Furthermore, we found that dendrites contain the elements necessary for local translation, and trafficked transcripts were engaged in active translation within dendrites. Together this work describes a molecular regulatory mechanism novel to osteocyte biology with many potential consequences for the spatiotemporal control of the cytoskeleton and dendrites.

molecular biology↗

Regulation of intracellular cAMP levels in osteocytes by mechano-sensitive focal adhesion kinase via PDE8A

Osteocytes are the primary mechano-sensitive cell type in bone. Mechanical loading is sensed across the dendritic projections of osteocytes leading to transient reductions in focal adhesion kinase (FAK) activity. Knowledge regarding the signaling pathways downstream of FAK in osteocytes is incomplete. We performed tyrosine-focused phospho-proteomic profiling in osteocyte-like Ocy454 cells to identify FAK substrates. Gs, parathyroid hormone receptor (PTH1R), and phosphodiesterase 8A (PDE8A), all proteins associated with cAMP signaling, were found as potential FAK targets based on their reduced tyrosine phosphorylation in both FAK- deficient or FAK inhibitor treated cells. Real time monitoring of intracellular cAMP levels revealed that FAK pharmacologic inhibition or gene deletion increased basal and GPCR ligand-stimulated cAMP levels and downstream phosphorylation of protein kinase A substrates. Mutating FAK phospho-acceptor sites in Gs and PTH1R had no effect on PTH- or FAK inhibitor-stimulated cAMP levels. Since FAK inhibitor treatment augmented cAMP levels even in the presence of forskolin, we focused on potential FAK substrates downstream of cAMP generation. Indeed, PDE8A inhibition mimicked FAK inhibition at the level of increased cAMP, PKA activity, and expression of cAMP-regulated target genes. In vitro kinase assay showed that PDE8A is directly phosphorylated by FAK while immunoprecipitation assays revealed intracellular association between FAK and PDE8A. Thus, FAK inhibition in osteocytes acts synergistically with signals that activate adenylate cyclase to increase intracellular cAMP. Mechanically-regulated FAK can modulate intracellular cAMP levels via effects on PDE8A. These data suggest a novel signal transduction mechanism that mediates crosstalk between mechanical and cAMP-linked hormonal signaling in osteocytes.

molecular biology↗