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Detection and Visualization of DNA Damage-induced Protein Complexes in Suspension Cell Cultures Using the Proximity Ligation Assay
Published on: June 9, 2017
RAD23A promotes multiple myeloma cell survival through DNA damage response, proteostasis and enhanced metabolic
Hongxiu Liu1, Yihua Wang2, Xunru Liu1
1The Second Clinical Medical College, Shanxi Medical University, Taiyuan, Shanxi, China; Hematology department, The second hospital of Shanxi Medical University, Taiyuan, Shanxi, China.
Abstract:
Multiple myeloma (MM) remains incurable and is characterized by the abnormal proliferation of malignant plasma cells in the bone marrow. RAD23A is a multifunctional protein involved in the ubiquitin-proteasome system (UPS) and DNA damage repair; however, its role in MM remains unclear. Here, we analyzed RAD23A expression and its prognostic relevance across multiple MM cohorts. The biological functions of RAD23A in MM cells were predicted using bulk RNA-seq and single-cell RNA-seq data. Experimental validation was performed in H929 and RPMI8226 MM cell lines. Flow cytometry was used to assess cell cycle progression and apoptosis. Oxygen consumption rate (OCR), extracellular acidification rate (ECAR), and glucose uptake assays were performed to evaluate mitochondrial respiration, glycolytic activity, and glucose uptake, respectively, and RNA sequencing was conducted to further verify the role of RAD23A in MM. Our results showed that RAD23A is upregulated in MM and that high RAD23A expression is associated with greater disease burden and more advanced disease stage. Bioinformatics analyses revealed that RAD23A high MM cells exhibited elevated metabolic activity and increased protein transport. RAD23A knockdown suppressed MM cell growth both in vitro and in vivo, induced DNA damage and endoplasmic reticulum stress, and caused G2/M cell cycle arrest and apoptosis. Moreover, RAD23A knockdown enhanced the sensitivity of MM cells to bortezomib (BTZ) and impaired mitochondrial respiration, glycolytic activity, and glucose uptake. These findings suggest that RAD23A may serve as a multifunctional regulator and potential therapeutic target in MM.
Insights
RAD23A protein is upregulated in multiple myeloma (MM) and drives cancer cell growth. Inhibiting RAD23A suppresses MM progression and enhances drug sensitivity, suggesting it as a potential therapeutic target.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Multiple myeloma (MM) is an incurable plasma cell malignancy.
- The role of RAD23A, involved in DNA repair and the ubiquitin-proteasome system, in MM is undefined.
Purpose of the Study:
- To investigate RAD23A expression, prognostic significance, and functional role in multiple myeloma.
- To explore RAD23A as a potential therapeutic target for MM.
Main Methods:
- Analysis of RAD23A expression in MM cohorts.
- Bioinformatic prediction of RAD23A functions using RNA-seq data.
- Experimental validation in MM cell lines (H929, RPMI8226) including flow cytometry, metabolic assays (OCR, ECAR, glucose uptake), and RNA sequencing.
Main Results:
- RAD23A is upregulated in MM, correlating with disease burden and stage.
- High RAD23A expression is linked to increased metabolic activity and protein transport in MM cells.
- RAD23A knockdown inhibited MM cell growth, induced DNA damage and ER stress, caused G2/M arrest and apoptosis, and sensitized cells to bortezomib.
Conclusions:
- RAD23A is upregulated in multiple myeloma and promotes cancer progression.
- RAD23A knockdown impairs MM cell metabolism and enhances sensitivity to bortezomib.
- RAD23A represents a potential therapeutic target for multiple myeloma treatment.
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