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1.
Calcif Tissue Int ; 113(4): 437-448, 2023 10.
Article in English | MEDLINE | ID: mdl-37566229

ABSTRACT

Quantification of in vitro osteoclast cultures (e.g. cell number) often relies on manual counting methods. These approaches are labour intensive, time consuming and result in substantial inter- and intra-user variability. This study aimed to develop and validate an automated workflow to robustly quantify in vitro osteoclast cultures. Using ilastik, a machine learning-based image analysis software, images of tartrate resistant acid phosphatase-stained mouse osteoclasts cultured on dentine discs were used to train the ilastik-based algorithm. Assessment of algorithm training showed that osteoclast numbers strongly correlated between manual- and automatically quantified values (r = 0.87). Osteoclasts were consistently faithfully segmented by the model when visually compared to the original reflective light images. The ability of this method to detect changes in osteoclast number in response to different treatments was validated using zoledronate, ticagrelor, and co-culture with MCF7 breast cancer cells. Manual and automated counting methods detected a 70% reduction (p < 0.05) in osteoclast number, when cultured with 10 nM zoledronate and a dose-dependent decrease with 1-10 µM ticagrelor (p < 0.05). Co-culture with MCF7 cells increased osteoclast number by ≥ 50% irrespective of quantification method. Overall, an automated image segmentation and analysis workflow, which consistently and sensitively identified in vitro osteoclasts, was developed. Advantages of this workflow are (1) significantly reduction in user variability of endpoint measurements (93%) and analysis time (80%); (2) detection of osteoclasts cultured on different substrates from different species; and (3) easy to use and freely available to use along with tutorial resources.


Subject(s)
Bone Resorption , Osteoclasts , Mice , Animals , Zoledronic Acid , Ticagrelor , Coculture Techniques , Cells, Cultured , Acid Phosphatase/analysis , Tartrate-Resistant Acid Phosphatase , Cell Differentiation
2.
J Biol Chem ; 290(3): 1729-42, 2015 Jan 16.
Article in English | MEDLINE | ID: mdl-25451916

ABSTRACT

The maintenance of bone homeostasis requires tight coupling between bone-forming osteoblasts and bone-resorbing osteoclasts. However, the precise molecular mechanism(s) underlying the differentiation and activities of these specialized cells are still largely unknown. Here, we identify choline kinase ß (CHKB), a kinase involved in the biosynthesis of phosphatidylcholine, as a novel regulator of bone homeostasis. Choline kinase ß mutant mice (flp/flp) exhibit a systemic low bone mass phenotype. Consistently, osteoclast numbers and activity are elevated in flp/flp mice. Interestingly, osteoclasts derived from flp/flp mice exhibit reduced sensitivity to excessive levels of extracellular calcium, which could account for the increased bone resorption. Conversely, supplementation of cytidine 5'-diphosphocholine in vivo and in vitro, a regimen that bypasses CHKB deficiency, restores osteoclast numbers to physiological levels. Finally, we demonstrate that, in addition to modulating osteoclast formation and function, loss of CHKB corresponds with a reduction in bone formation by osteoblasts. Taken together, these data posit CHKB as a new modulator of bone homeostasis.


Subject(s)
Choline Kinase/genetics , Mutation , Osteoblasts/metabolism , Osteoclasts/metabolism , Phosphorylcholine/metabolism , Animals , Bone Density , Bone Resorption , Bone and Bones/metabolism , Calcium/metabolism , Cell Proliferation , Homeostasis , Mice , Mice, Transgenic , Microscopy, Fluorescence , Mutagenesis , Osteoblasts/cytology , Osteoclasts/cytology , Phenotype , X-Ray Microtomography
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