Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

KLF4 Regulates Metabolic Homeostasis in Response to Stress

View through CrossRef
Cancerous cells are detrimental to the human body and can be incredibly resilient against treatments because of the complexities of molecular carcinogenic pathways. In particular, cancer cells are able to sustain increased growth under metabolic stress due to phenomena like the Warburg effect. Krüppel-like factor 4 (KLF4), a context-dependent transcription factor that can act as both a tumor suppressor and an oncogene, is involved in many molecular pathways that respond to low glucose and increased reactive oxygen species (ROS), raising the question of its role in metabolic stress as a result of increased proliferation of tumor cells. In this study, metabolic assays were performed, showing enhanced efficiency of energy production in cells expressing KLF4. Western blotting showed that KLF4 increases the expression of essential glycolytic proteins. Furthermore, we used immunostaining to show that KLF4 increases the localization of glucose transporter 1 (GLUT1) to the cellular membrane. 2′,7′-Dichlorodihydrofluorescein diacetate (H2DCF-DA) was used to analyze the production of ROS, and we found that KLF4 reduces stress-induced ROS within cells. Finally, we demonstrated increased autophagic death in KLF4-expressing cells in response to glucose starvation. Collectively, these results relate KLF4 to non-Warburg metabolic behaviors that support its role as a tumor suppressor and could make KLF4 a target for new cancer treatments.
Title: KLF4 Regulates Metabolic Homeostasis in Response to Stress
Description:
Cancerous cells are detrimental to the human body and can be incredibly resilient against treatments because of the complexities of molecular carcinogenic pathways.
In particular, cancer cells are able to sustain increased growth under metabolic stress due to phenomena like the Warburg effect.
Krüppel-like factor 4 (KLF4), a context-dependent transcription factor that can act as both a tumor suppressor and an oncogene, is involved in many molecular pathways that respond to low glucose and increased reactive oxygen species (ROS), raising the question of its role in metabolic stress as a result of increased proliferation of tumor cells.
In this study, metabolic assays were performed, showing enhanced efficiency of energy production in cells expressing KLF4.
Western blotting showed that KLF4 increases the expression of essential glycolytic proteins.
Furthermore, we used immunostaining to show that KLF4 increases the localization of glucose transporter 1 (GLUT1) to the cellular membrane.
2′,7′-Dichlorodihydrofluorescein diacetate (H2DCF-DA) was used to analyze the production of ROS, and we found that KLF4 reduces stress-induced ROS within cells.
Finally, we demonstrated increased autophagic death in KLF4-expressing cells in response to glucose starvation.
Collectively, these results relate KLF4 to non-Warburg metabolic behaviors that support its role as a tumor suppressor and could make KLF4 a target for new cancer treatments.

Related Results

Abstract 1656: Mouse embryonic fibroblasts null for krüppel-like factor 4 show reduced autophagy and elevated mTOR activity.
Abstract 1656: Mouse embryonic fibroblasts null for krüppel-like factor 4 show reduced autophagy and elevated mTOR activity.
Abstract Krüppel-like factor 4 (KLF4) is a zinc-finger transcription factor named for its homology to the Drosophila protein Krüppel. KLF4 negatively regulates cel...
KLF4/MLL3 Compass Complex Regulates NRBP2 to Eliminate Acute Myeloid Leukemia Cells
KLF4/MLL3 Compass Complex Regulates NRBP2 to Eliminate Acute Myeloid Leukemia Cells
Acute myeloid leukemia (AML) is recognized as a complex disease involving hematopoietic stem cell disorders. Despite advanced in therapy, the prognosis for AML patients remains poo...
Abstract 477: The dynamic changes of KLF4 in the oral squamous cell carcinogenesis
Abstract 477: The dynamic changes of KLF4 in the oral squamous cell carcinogenesis
Abstract KLF4 (formerly GKLF) is a zinc-finger transcription factor expressed in the epithelia of the skin, lungs, gastrointestinal tract and several other organs. I...
Expression of stem cell biomarkers Bmi1 and KLF4 in osteosarcoma and its clinical significance
Expression of stem cell biomarkers Bmi1 and KLF4 in osteosarcoma and its clinical significance
Abstract Objective To observe the expression of osteosarcoma stem cell biomarkers Bmi1 and KLF4 in osteosarcoma tissues and explore their value in the diagnosis, treatment...
KLF4 orchestrates a Ccl2+ fibroblast-mediated inflammatory network driving preterm birth
KLF4 orchestrates a Ccl2+ fibroblast-mediated inflammatory network driving preterm birth
Background Preterm birth (PTB) remains the leading cause of neonatal mortality and long-term complications, yet its molecular mechanisms are incompletely unders...
Krüppel-like factor 4 promotes autophagy in macrophages under high glucose concentration by inhibiting the AKT/mTOR signaling pathway
Krüppel-like factor 4 promotes autophagy in macrophages under high glucose concentration by inhibiting the AKT/mTOR signaling pathway
Background: Diabetic atherosclerosis (AS) is the main cause of disability and death in diabetes. In the progression of AS, autophagic activity plays an important role. Krüppel-like...
KLF4 Induces Mesenchymal–Epithelial Transition (MET) by Suppressing Multiple EMT-Inducing Transcription Factors
KLF4 Induces Mesenchymal–Epithelial Transition (MET) by Suppressing Multiple EMT-Inducing Transcription Factors
Epithelial–Mesenchymal Plasticity (EMP) refers to reversible dynamic processes where cells can transition from epithelial to mesenchymal (EMT) or from mesenchymal to epithelial (ME...
KLF4 induces Mesenchymal - Epithelial Transition (MET) by suppressing multiple EMT-inducing transcription factors
KLF4 induces Mesenchymal - Epithelial Transition (MET) by suppressing multiple EMT-inducing transcription factors
AbstractEpithelial-Mesenchymal Plasticity (EMP) refers to reversible dynamic processes where cells can transition from epithelial to mesenchymal (EMT) or from mesenchymal to epithe...

Back to Top