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Published on: January 7, 2019
CUX1 transcription factors: from biochemical activities and cell-based assays to mouse models and human diseases
1Goodman Cancer Centre, McGill University, 1160 Pine avenue West, Montreal, Quebec, Canada H3A 1A3.
Abstract:
ChIP-chip and expression analyses indicated that CUX1 transcription factors regulate a large number of genes and microRNAs involved in multiple cellular processes. Indeed, in proliferating cells CUX1 was shown to regulate several genes involved in DNA replication, progression into S phase and later, the spindle assembly checkpoint that controls progression through mitosis. siRNA-mediated knockdown established that CUX1 is required for cell motility. Moreover, higher expression of short CUX1 isoforms, as observed in many cancers, was shown to stimulate cell migration and invasion. In parallel, elevated expression particularly in higher grade tumors of breast and pancreatic cancers implicated CUX1 in tumor initiation and progression. Indeed, transgenic mouse models demonstrated a causal role of CUX1 in cancers originating from various cell types. These studies revealed that higher CUX1 expression or activity not only stimulates cell proliferation and motility, but also promotes genetic instability. CUX1 has also been implicated in the etiology of polycystic kidney diseases, both from a transgenic approach and the analysis of CUX1 activity in multiple mouse models of this disease. Studies in neurobiology have uncovered a potential implication of CUX1 in cognitive disorders, neurodegeneration and obesity. CUX1 was shown to be expressed specifically in pyramidal neurons of the neocortex upper layers where it regulates dendrite branching, spine development, and synapse formation. In addition, modulation of CUX1 expression in neurons of the hypothalamus has been associated with changes in leptin receptor trafficking in the vicinity of the primary cilium resulting in altered leptin signaling and ultimately, eating behavior. Overall, studies in various fields have allowed the development of several cell-based assays to monitor CUX1 function and have extended the range of organs in which CUX1 plays an important role in development and tissue homeostasis.
Insights
The CUX1 transcription factor regulates genes vital for cell division, motility, and development. Dysregulation of CUX1 is linked to cancer, kidney disease, and neurological disorders, highlighting its broad biological significance.
Area of Science:
- Molecular Biology
- Genetics
- Developmental Biology
Background:
- CUX1 transcription factors control numerous genes and microRNAs involved in diverse cellular functions.
- CUX1 plays a role in DNA replication, cell cycle progression, and mitosis in proliferating cells.
Purpose of the Study:
- To investigate the multifaceted roles of CUX1 in cellular processes, disease etiology, and tissue homeostasis.
- To elucidate the impact of CUX1 expression levels and isoforms on cell behavior and disease development.
Main Methods:
- ChIP-chip and gene expression analyses to identify CUX1-regulated targets.
- siRNA-mediated knockdown to assess CUX1's role in cell motility.
- Transgenic mouse models to establish CUX1's causal role in cancer and polycystic kidney disease.
- Neurobiological studies examining CUX1's function in neurons.
Main Results:
- CUX1 regulates genes essential for DNA replication, cell cycle progression, and mitosis.
- CUX1 is critical for cell motility, migration, and invasion, with short isoforms promoting these processes.
- Elevated CUX1 expression is implicated in tumor initiation and progression in breast and pancreatic cancers, promoting proliferation, motility, and genetic instability.
- CUX1 is involved in the etiology of polycystic kidney diseases.
- CUX1 influences neuronal development, synapse formation, and eating behavior via leptin signaling.
Conclusions:
- CUX1 is a key regulator of fundamental cellular processes, including proliferation, motility, and genetic stability.
- Aberrant CUX1 expression and activity contribute to cancer development and progression.
- CUX1 has significant roles in the etiology of polycystic kidney disease and has implications for cognitive disorders, neurodegeneration, and obesity.
- CUX1 is crucial for development and tissue homeostasis across various organs.
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