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Published on: December 13, 2018
Methylcrotonyl-CoA carboxylase subunit 1 (MCCA) regulates multidrug resistance in multiple myeloma
Yu Feng1, Jingcao Huang1, Fangfang Wang1
1Department of Hematology, West China Hospital, Sichuan University, China.
Aims:
This study aimed to investigate the effect and mechanism of methylcrotonyl-CoA carboxylase subunit 1 (MCCA) on multidrug resistance in multiple myeloma (MM).
Materials And Methods:
The apoptosis kit and CCK-8 reagent were used to detect drug-induced cell apoptosis and viability. Immunoprecipitation, immunofluorescence staining, and protein structural simulation were used to detect the interaction between MCCA and Bad. Immunodeficient mice were injected with ARD cells and treated with bortezomib. Changes in tumor burden were recorded by bioluminescence imaging, and κ light chain content in the blood of mice was detected by enzyme-linked immunoassay.
Key Findings:
Patients with high MCCA expression from a primary MM dataset had superior overall survival. After treatment with different anti-MM drugs, MCCA knockdown MM (MCCA-KD) cells had higher survival rates than control knockdown (CTR-KD) cells (p < 0.05). Mechanistic studies have revealed that MCCA-KD cells had dysfunctional mitochondria with decreased Bax and Bad levels and increased Bcl-xl and Mcl-1 levels. Furthermore, that MCCA and Bad demonstrated protein-protein interactions. The half-life of Bad in MCCA-KD cells is significantly shorter than that in CTR-KD cells (7.34 vs. 2.42 h, p < 0.05). In a human MM xenograft mouse model, we confirmed that MCCA-KD tumors had a poor response to anti-MM drugs in vivo. Finally, we showed that MCCA might contribute to multidrug resistance in different human cancers, particularly in solid tumors.
Significance:
Our findings demonstrated a novel function of MCCA in multidrug resistance. The lack of MCCA expression promoted antiapoptotic cell signaling in MM cells.
Insights
Methylcrotonyl-CoA carboxylase subunit 1 (MCCA) promotes drug resistance in multiple myeloma by stabilizing the anti-apoptotic protein Bad. Lowering MCCA expression enhances cancer cell survival against chemotherapy.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Multiple myeloma (MM) is a hematological malignancy characterized by drug resistance.
- Understanding the molecular mechanisms underlying multidrug resistance (MDR) is crucial for improving MM treatment outcomes.
Purpose of the Study:
- To investigate the role and mechanism of methylcrotonyl-CoA carboxylase subunit 1 (MCCA) in mediating multidrug resistance in multiple myeloma.
- To explore the potential of targeting MCCA for overcoming drug resistance in cancer therapy.
Main Methods:
- Cell viability and apoptosis assays (CCK-8, apoptosis kit) were employed to assess drug responses.
- Protein interaction studies (immunoprecipitation, immunofluorescence, structural simulation) were conducted to elucidate MCCA's mechanism.
- In vivo studies using a human MM xenograft mouse model evaluated the therapeutic efficacy of targeting MCCA.
Main Results:
- High MCCA expression correlated with superior overall survival in MM patients.
- MCCA knockdown in MM cells led to increased survival rates and dysfunctional mitochondria, with altered levels of apoptosis-related proteins (Bax, Bad, Bcl-xl, Mcl-1).
- MCCA directly interacts with Bad, and MCCA deficiency significantly reduces Bad's half-life, promoting cell survival.
Conclusions:
- MCCA plays a novel role in promoting multidrug resistance in multiple myeloma.
- The absence of MCCA expression enhances anti-apoptotic signaling, contributing to cancer cell survival.
- MCCA may represent a potential therapeutic target for overcoming drug resistance in various cancers, including solid tumors.
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