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Strategies for Tracking Anastasis, A Cell Survival Phenomenon that Reverses Apoptosis
Published on: February 16, 2015
Dysregulated CREB3 cleavage at the nuclear membrane induces karyoptosis-mediated cell death
Ga-Eun Lee1,2, Geul Bang3, Jiin Byun1,2
1College of Pharmacy, The Catholic University of Korea, Bucheon-si, Gyeonggi-do, 14662, Republic of Korea.
Abstract:
Cancer cells often exhibit resistance to apoptotic cell death, but they may be vulnerable to other types of cell death. Elucidating additional mechanisms that govern cancer cell death is crucial for developing new therapies. Our research identified cyclic AMP-responsive element-binding protein 3 (CREB3) as a crucial regulator and initiator of a unique cell death mechanism known as karyoptosis. This process is characterized by nuclear shrinkage, deformation, and the loss of nuclear components following nuclear membrane rupture. We found that the N-terminal domain (aa 1-230) of full-length CREB3 (CREB3-FL), which is anchored to the nuclear inner membrane (INM), interacts with lamins and chromatin DNA. This interaction maintains a balance between the outward force exerted by tightly packed DNA and the inward constraining force, thereby preserving INM integrity. Under endoplasmic reticulum (ER) stress, aberrant cleavage of CREB3-FL at the INM leads to abnormal accumulation of the cleaved form of CREB3 (CREB3-CF). This accumulation disrupts the attachment of CREB3-FL to the INM, resulting in sudden rupture of the nuclear membrane and the onset of karyoptosis. Proteomic studies revealed that CREB3-CF overexpression induces a DNA damage response akin to that caused by UVB irradiation, which is associated with cellular senescence in cancer cells. These findings demonstrated that the dysregulation of CREB3-FL cleavage is a key factor in karyoptotic cell death. Consequently, these findings suggest new therapeutic strategies in cancer treatment that exploit the process of karyoptosis.
Insights
Researchers discovered cyclic AMP-responsive element-binding protein 3 (CREB3) initiates a unique cancer cell death pathway called karyoptosis. Dysregulation of CREB3 cleavage triggers this process, offering new therapeutic targets for cancer treatment.
Area of Science:
- Molecular Biology
- Cell Biology
- Cancer Research
Background:
- Cancer cells often resist apoptosis, necessitating research into alternative cell death mechanisms.
- Identifying novel pathways for cancer cell elimination is critical for developing innovative therapies.
Purpose of the Study:
- To identify novel regulators of cancer cell death pathways.
- To elucidate the role of cyclic AMP-responsive element-binding protein 3 (CREB3) in a unique cell death mechanism.
Main Methods:
- Investigated the function of CREB3 in cancer cell death.
- Utilized proteomic studies to analyze cellular responses to CREB3 cleavage.
- Examined the interaction of CREB3 with nuclear components and the nuclear inner membrane.
Main Results:
- Identified CREB3 as a key initiator of karyoptosis, a distinct cell death process.
- Demonstrated that CREB3 cleavage at the nuclear inner membrane leads to nuclear rupture and karyoptosis.
- Showed CREB3 cleavage induces DNA damage responses and cellular senescence in cancer cells.
Conclusions:
- Dysregulation of CREB3 cleavage is a critical factor in inducing karyoptosis.
- Targeting CREB3-mediated karyoptosis presents a potential new therapeutic strategy for cancer treatment.
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