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Published on: September 13, 2019
Midbody Remnants as Signaling Centers in Cell Fate Determination and Tumorigenesis
Hongbin Li1, Xiaoli Ma1, Jing Liang1
1School of Life Science and Engineering, Lanzhou University of Technology, Lanzhou, People's Republic of China.
Abstract:
During final cell division, the cleaved midbody is either released or asymmetrically retained as a midbody remnant (MBR). MBRs play critical roles in cell communication, signal transduction, and translation regulation, influencing cellular fate. Here, we synthesize their functions as RNA-processing granules, polarity regulators, and signaling platforms, emphasizing their role in primary cilia formation. In polarized epithelial cells, the MBR moves along the apical surface to the centrosome, delivering membrane components to permit ciliogenesis. In ductal carcinoma cells, MBR-localized Shc1-binding protein (SHCBP1) interacts with TBC1 domain family member 30 (TBC1D30 to antagonize Ras-related protein Rab-8 (Rab8) GTPase activity, blocking MBR-centrosome proximity and silencing ciliogenesis. Beyond ciliary regulation, MBRs integrate Wnt, PDGF, TGF-β, and genomic stability networks, acting as dynamic signaling hubs during cancer development. Regarding therapeutic strategies targeting MBRs, High SHCBP1 expression correlates with ciliary loss and poor prognosis in breast, pancreatic, and cholangiocarcinoma. Targeting the SHCBP1/Rab8 axis to restore ciliogenesis by reestablishing MBR-centrosome proximity offers a potential therapeutic strategy. In addition, secreted MBRs are enriched in signaling components and transcripts, serving as intercellular carriers of oncogenic cargoes and promising liquid biopsy biomarkers. In summary, by tracing MBRs from their postmitotic origin to their pathogenic roles, we highlight vulnerabilities within MBR regulatory networks and provide novel insights for cancer therapeutics.
Insights
Midbody remnants (MBRs) are crucial for cell communication and primary cilia formation. Dysregulation of MBRs, particularly the SHCBP1/Rab8 axis, contributes to cancer and offers potential therapeutic targets.
Area of Science:
- Cell Biology
- Cancer Biology
- Molecular Signaling
Background:
- Midbody remnants (MBRs) are cellular structures formed during cell division, involved in various cellular processes.
- MBRs function as RNA-processing granules, polarity regulators, and signaling platforms.
- Their role in primary cilia formation is critical for cellular communication and fate.
Purpose of the Study:
- To synthesize the diverse functions of MBRs.
- To elucidate the role of MBRs in primary cilia formation and ciliogenesis.
- To explore MBRs as potential therapeutic targets in cancer.
Main Methods:
- Literature synthesis and review of MBR functions.
- Analysis of MBR localization and interactions in epithelial and cancer cells.
- Investigation of the SHCBP1/Rab8 axis in regulating ciliogenesis.
Main Results:
- MBRs are essential for ciliogenesis, moving to the centrosome to deliver membrane components.
- In cancer cells, SHCBP1 antagonizes Rab8 activity, blocking MBR-centrosome proximity and ciliogenesis.
- High SHCBP1 expression correlates with ciliary loss and poor prognosis in several cancers.
- Secreted MBRs act as intercellular carriers of oncogenic cargoes and potential liquid biopsy biomarkers.
Conclusions:
- MBRs are dynamic signaling hubs integrating multiple cellular networks, crucial in cancer development.
- Targeting the SHCBP1/Rab8 axis to restore ciliogenesis presents a novel therapeutic strategy.
- Secreted MBRs offer potential as diagnostic biomarkers and therapeutic delivery vehicles.
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