Cong Cai, Jiawei Jiang, Song Li, Chenghao Gao, Hongxu Pu, Libo Zhao, Jun Xiao
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引用次数: 0
Abstract
Osteoporosis is a common bone disease that has become a serious public health problem with the aging of population. Osteoclasts are the only cells in body that can resorb bone, whose dysfunction is closely related to osteoporosis. Pyruvate kinase M2 (PKM2) is one of the essential rate-limiting enzymes in the process of glycolysis. This study aimed to elucidate the role of PKM2 in osteoclastogenesis and bone resorption. Bone marrow-derived macrophages (BMMs) were transfected with adenovirus to knock down the expression of PKM2 gene or treated with the PKM2 activators DASA-58 and TEPP-46. Osteoclast formation was detected by TRAP staining, osteoclast-specific gene and protein expression was detected by RT-qPCR and Western blotting, and the effect of DASA-58 on osteoclast gene expression at the transcriptional level was examined by RNA-seq. The results showed that knockdown of PKM2 by adenoviral transfection or treatment with PKM2 activators DASA-58 and TEPP-46 inhibited osteoclast differentiation and suppressed the expression of osteoclast-associated genes in BMMs. Furthermore, PKM2 activators DASA-58 and TEPP-46 could inhibit several signaling pathways in osteoclasts; knockdown of PKM2 or treatment with PKM2 activators DASA-58 and TEPP-46 both affected osteoclast precursor cell fusion by inhibiting the expression of osteoclast stimulatory transmembrane protein (OC-STAMP) and dendritic cell-specific transmembrane protein (DC-STAMP). Therefore, PKM2 is closely related to osteoclast differentiation and formation, and the development of new therapeutic strategies targeting the PKM2 gene in osteoclasts may be feasible for the prevention and treatment of osteoporosis.
期刊介绍:
The Journal of Biological Chemistry welcomes high-quality science that seeks to elucidate the molecular and cellular basis of biological processes. Papers published in JBC can therefore fall under the umbrellas of not only biological chemistry, chemical biology, or biochemistry, but also allied disciplines such as biophysics, systems biology, RNA biology, immunology, microbiology, neurobiology, epigenetics, computational biology, ’omics, and many more. The outcome of our focus on papers that contribute novel and important mechanistic insights, rather than on a particular topic area, is that JBC is truly a melting pot for scientists across disciplines. In addition, JBC welcomes papers that describe methods that will help scientists push their biochemical inquiries forward and resources that will be of use to the research community.