m6A reader hnRNPA2B1 drives multiple myeloma osteolytic bone disease
Rui Liu1, Yuping Zhong2, Rui Chen1
1Cancer Research Center, School of Medicine, Xiamen University, Xiamen, 361102, China.
Abstract:
Rationale: Bone destruction is a hallmark of multiple myeloma (MM) and affects more than 80% of patients. Although previous works revealed the roles of N6-methyladenosine (m6A) reader hnRNPA2B1 in the development of tumors, whether hnRNPA2B1 regulates bone destruction in MM is still unknown. Methods: Alizarin red S staining, TRAP staining, ELISA and quantitative real-time PCR assays were used to evaluate osteogenesis and osteoclastogenesis in vitro. X ray and bone histomorphometric analysis were preformed to identify bone resorption and bone formation in vivo. Exosome isolation and characterization were demonstrated by transmission electron microscopy, dynamic light scattering, immunofluorescence and flow cytometry assays. The interactions between hnRNPA2B1 and primary microRNAs were examined using RNA pull-down and RIP assays. Coimmunoprecipitation assay was used to test the interaction between hnRNPA2B1 and DGCR8 proteins. Luciferase assay was established to assess miRNAs target genes. Results: Here we show that myeloma cells hnRNPA2B1 mediates microRNAs processing and upregulates miR-92a-2-5p and miR-373-3p expression. These two microRNAs are transported to recipient monocytes or mesenchymal stem cells (MSCs) through exosomes, leading to activation of osteoclastogenesis and suppression of osteoblastogenesis by inhibiting IRF8 or RUNX2. Furthermore, clinical studies revealed a highly positive correlation between the level of myeloma cells hnRNPA2B1 and the number of osteolytic bone lesions in myeloma patients. Conclusions: This study elucidates an important mechanism by which myeloma-induced bone lesions, suggesting that hnRNPA2B1 may be targeted to prevent myeloma-associated bone disease.
Insights
Multiple myeloma bone destruction is driven by hnRNPA2B1, which promotes osteoclast formation and inhibits bone repair via exosomal microRNAs. Targeting hnRNPA2B1 may prevent myeloma-associated bone disease.
Area of Science:
- Oncology
- Molecular Biology
- Bone Biology
Background:
- Bone destruction is a major complication in multiple myeloma (MM), affecting over 80% of patients.
- The N6-methyladenosine (m6A) reader hnRNPA2B1 is implicated in tumor development, but its role in MM-induced bone destruction is unclear.
Purpose of the Study:
- To investigate the role of hnRNPA2B1 in mediating bone destruction in multiple myeloma.
- To elucidate the molecular mechanisms by which hnRNPA2B1 influences osteoclastogenesis and osteoblastogenesis.
Main Methods:
- In vitro assays (Alizarin red S, TRAP staining, ELISA, qPCR) for osteogenesis and osteoclastogenesis.
- In vivo studies (X-ray, bone histomorphometry) to assess bone resorption and formation.
- Exosome isolation and characterization, RNA pull-down, RIP, coimmunoprecipitation, and luciferase assays to analyze molecular interactions and miRNA processing.
Main Results:
- Myeloma cell hnRNPA2B1 upregulates miR-92a-2-5p and miR-373-3p expression.
- These miRNAs are exosome-transported to monocytes/MSCs, activating osteoclastogenesis and suppressing osteoblastogenesis by inhibiting IRF8/RUNX2.
- Clinical studies show a positive correlation between hnRNPA2B1 levels and osteolytic bone lesions in MM patients.
Conclusions:
- hnRNPA2B1 plays a critical role in myeloma-associated bone destruction by regulating miRNA processing and exosomal transport.
- This mechanism involves modulating osteoclast and osteoblast activity.
- hnRNPA2B1 represents a potential therapeutic target for preventing bone disease in multiple myeloma.
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