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Published on: March 15, 2018
LRP8-dependent cholesterol metabolism modulates mTORC1 signaling and apoptotic pathways in multiple myeloma
Yue Wang1, Tianwei Lan1, Chi Zhou1
1Department of Hematology, Zhongshan Hospital, Fudan University, Shanghai, China.
Abstract:
Cholesterol plays a crucial role in tumor metabolism. Studies have shown that the serum cholesterol level of multiple myeloma (MM) patients significantly decreases, probably owing to the augmented uptake by MM cells. Despite its significance for MM, research on its metabolism within MM is limited. Our analysis of clinical data from 703 newly diagnosed MM patients revealed that low serum cholesterol is associated with poor prognosis, and it stems from the elevated cholesterol consumption by MM cells. By exploring the transcriptome and single-cell RNA-seq data of patients with different cholesterol levels in our center, we identified LRP8 as a key regulator of cholesterol metabolism in MM, which is closely related to prognosis and disease stages. We verified the oncogenic role of LRP8 in vitro and in vivo. Knockdown of LRP8 can facilitate apoptosis and cell cycle arrest in MM cells. Meanwhile, we employed mouse xenograft tumor model to replicate the phenomenon that MM cells with high LRP8 expression consume cholesterol, causing low serum cholesterol. Mechanistically, high LRP8 expression enhances cholesterol utilization and uptake by MM cells; LRP8 inhibition reduces cholesterol absorption, further weakening the activity of the cholesterol-dependent mTORC1 pathway in MM cells and inducing apoptosis. Concurrently, it triggers an upregulation of protective autophagy. Further suppression of autophagy can lead to extensive apoptosis of MM cells. Our study reveals that LRP8 regulates cholesterol metabolism in MM cells and influences the processes of cell apoptosis and autophagy through metabolic-related pathways. LRP8 holds potential as a therapeutic target for MM.
Insights
Low serum cholesterol in multiple myeloma (MM) patients indicates poor prognosis due to increased cancer cell consumption. LRP8 regulates this cholesterol metabolism, offering a potential therapeutic target for MM.
Area of Science:
- Oncology
- Molecular Biology
- Metabolic Research
Background:
- Cholesterol is vital for tumor metabolism, with decreased serum levels observed in multiple myeloma (MM) patients.
- Limited research exists on cholesterol metabolism within MM, despite its significance.
Purpose of the Study:
- To investigate the role of cholesterol metabolism in MM.
- To identify key regulators of cholesterol metabolism and their prognostic significance in MM.
Main Methods:
- Analysis of clinical data from 703 newly diagnosed MM patients.
- Exploration of transcriptome and single-cell RNA-seq data.
- In vitro and in vivo experiments using mouse xenograft models.
Main Results:
- Low serum cholesterol is linked to poor prognosis in MM, driven by elevated MM cell consumption.
- LRP8 identified as a key regulator of cholesterol metabolism in MM, correlating with prognosis and disease stage.
- LRP8 knockdown induced apoptosis and cell cycle arrest; LRP8 inhibition weakened mTORC1 pathway and induced apoptosis, with autophagy upregulation.
Conclusions:
- LRP8 regulates cholesterol metabolism in MM cells, impacting apoptosis and autophagy.
- LRP8 inhibition shows potential for MM therapy by disrupting cellular metabolism and inducing apoptosis.
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