A feedback regulation of CREB activation through the CUL4A and ERK signaling

Cheemala Ashok1, Sheikh Owais1, Loudu Srijyothi1

  • 1Department of Biotechnology, Pondicherry Central University, Pondicherry, 605014, India.

Insights

The study reveals that CREB activates CUL4A transcription, which in turn activates CREB via the ERK1/2 pathway, forming an auto-regulatory loop. This CUL4A-CREB-ERK1/2 signaling may drive cancer cell proliferation.

Area of Science:

  • Molecular Biology
  • Cell Cycle Regulation
  • Cancer Signaling Pathways

Background:

  • Cullin 4A (CUL4A) is an E3 ubiquitin ligase crucial for degrading cell cycle inhibitors like p21 and p27.
  • While CUL4A's targets are known, its transcriptional regulation, especially at the promoter level, remains uncharacterized.

Purpose of the Study:

  • To investigate the transcriptional regulation of CUL4A.
  • To determine the role of cAMP responsive element-binding protein (CREB) in regulating CUL4A transcription.

Main Methods:

  • Computational analysis to identify cAMP responsive elements (CREs) in the CUL4A promoter.
  • Chromatin immunoprecipitation (ChIP) assays to assess CREB and pCREB binding to CUL4A promoter CREs.
  • Gene expression analysis following CREB manipulation (overexpression/knockdown) and ERK pathway inhibition (U0126).

Main Results:

  • CREB binds to CREs (-926 and -764) on the CUL4A promoter.
  • CREB overexpression increases CUL4A expression, while CREB knockdown decreases it.
  • ERK pathway inhibition reduces CREB activation and CUL4A levels, increasing levels of CUL4A substrates (p21, p27).
  • A positive auto-regulatory loop between CREB, CUL4A, and the ERK1/2 pathway was identified.

Conclusions:

  • CREB positively regulates CUL4A transcription.
  • CUL4A, via the ERK1/2 pathway, positively feeds back to activate CREB, forming an auto-regulatory loop.
  • This CUL4A-CREB-ERK1/2 signaling axis may contribute to cancer cell proliferation.

Related Concept Videos

Cell Signaling Feedback Loops01:07

Cell Signaling Feedback Loops

Positive and negative feedback loops are crucial for regulating biological signaling systems. These feedback loops are processes that connect output signals to their inputs.
Negative feedback loops
Most signaling systems have negative feedback loops that can perform different functions such as output limiter, and adaptation.
Output limiter
Upon receiving an input signal, the cellular response rapidly increases until a threshold is reached. Beyond this threshold, a negative feedback loop...
7.4K
Feedback Regulation of Calcium Concentration01:27

Feedback Regulation of Calcium Concentration

Calcium is an essential signaling molecule required for various cellular functions. Calcium pumps and ion channels on cell and organellar membranes, such as those on the endoplasmic reticulum (ER), regulate calcium concentrations inside the cell. They remain closed, keeping the cytosolic calcium levels low at a resting state.
Various transmembrane receptors, such as G protein-coupled receptors (GPCRs), elicit a response to extracellular signals by increasing cytosolic calcium. Activated GPCRs...
4.0K
Feedback Inhibition00:46

Feedback Inhibition

Biochemical reactions are occurring constantly in cells, converting starting substances to different products, usually with the help of enzymes that speed the reactions. Without enzymes, it would take far too long for most reactions to occur to be useful to the cell!
57.1K
Intracellular Signaling Cascades01:24

Intracellular Signaling Cascades

Once a ligand binds to a receptor, the signal is transmitted through the membrane and into the cytoplasm. The continuation of a signal in this manner is called signal transduction. Signal transduction only occurs with cell-surface receptors, which cannot interact with most components of the cell, such as DNA. Only internal receptors can interact directly with DNA in the nucleus to initiate protein synthesis. When a ligand binds to its receptor, conformational changes occur that affect the...
53.5K
Endocrine Signaling01:45

Endocrine Signaling

Endocrine cells produce hormones to communicate with remote target cells found in other organs. The hormone reaches these distant areas using the circulatory system. This exposes the whole organism to the hormone but only those cells expressing hormone receptors or target cells are affected. Thus, endocrine signaling induces slow responses from its target cells but these effects also last longer.
68.1K
Feedback Loops01:01

Feedback Loops

In most cases, excessive hormone production is prevented by negative feedback—a loop that starts with a stimulus inducing the release of a particular substance, like a hormone, to maintain a certain level before triggering a signal that results in a decrease in further release of the hormone.
64.4K