Galectin-8 modulates human osteoclast activity partly through isoform-specific interactions.
Michèle RoyLéopold Mbous NguimbusPapa Yaya BadianeVictor Goguen-CoutureJade DegrandmaisonJean-Luc ParentMarie A BrunetSophie RouxPublished in: Life science alliance (2024)
In overactive human osteoclasts, we previously identified an alternative splicing event in LGALS8 , encoding galectin-8, resulting in decreased expression of the long isoform. Galectin-8, which modulates cell-matrix interactions and functions intracellularly as a danger recognition receptor, has never been associated with osteoclast biology. In human osteoclasts, inhibition of galectin-8 expression revealed its roles in bone resorption, osteoclast nuclearity, and mTORC1 signaling regulation. Galectin-8 isoform-specific inhibition asserted a predominant role for the short isoform in bone resorption. Moreover, a liquid chromatography with tandem mass spectrometry (LC-MS/MS) proteomic analysis of galectin-8 isoforms performed in HEK293T cells identified 22 proteins shared by both isoforms. Meanwhile, nine interacting partners were specific for the short isoform, and none were unique to the long isoform. Interactors specific for the galectin-8 short isoform included cell adhesion proteins and lysosomal proteins. We confirmed the interactions of galectin-8 with CLCN3, CLCN7, LAMP1, and LAMP2, all known to localize to secretory vesicles, in human osteoclasts. Altogether, our study reveals direct roles of galectin-8 in osteoclast activity, mostly attributable to the short isoform.
Keyphrases
- bone loss
- endothelial cells
- liquid chromatography
- tandem mass spectrometry
- induced pluripotent stem cells
- poor prognosis
- mass spectrometry
- pluripotent stem cells
- bone mineral density
- cell adhesion
- high performance liquid chromatography
- ultra high performance liquid chromatography
- simultaneous determination
- binding protein
- high resolution
- cell therapy
- bone marrow
- high resolution mass spectrometry
- bone regeneration
- solid phase extraction
- quantum dots
- soft tissue