The DNA repair kinase ATM regulates CD13 expression and cell migration

Louise K Stevenson1,2, Amy J Page1, Matthew Dowson1

  • 1School of Biosciences, Healthy Lifespan and Neuroscience Institutes, University of Sheffield, Sheffield, United Kingdom.

Insights

The ATM kinase regulates aminopeptidase-N (CD13) protein levels, not mRNA, by inhibiting its degradation. This ATM-CD13 pathway is crucial for cell migration.

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Cancer Research

Background:

  • The ATM kinase is classically known for DNA damage repair.
  • ATM has non-canonical roles including angiogenesis, potentially via p38 signaling.
  • The link between ATM, p38 signaling, and metalloproteinases is not fully understood.

Purpose of the Study:

  • To investigate the regulatory role of ATM on aminopeptidase-N (CD13) expression.
  • To elucidate the mechanism by which ATM influences CD13 protein levels.
  • To determine the functional significance of the ATM-CD13 interaction in cell migration.

Main Methods:

  • Western blotting to assess protein levels in wildtype and ATM knockout cells.
  • Quantitative PCR (qPCR) and analysis of public RNAseq data to evaluate mRNA levels.
  • Treatment with ATM inhibitor (ATMi) and proteasome inhibitors.
  • Cell migration assays.

Main Results:

  • ATM activity positively correlates with CD13 protein expression.
  • ATM regulates CD13 at the protein level, not mRNA, suggesting control over protein degradation.
  • Proteasome inhibition restores CD13 levels in ATMi-treated cells.
  • Inhibition of ATM or CD13 impairs cell migration, with no additive effect.

Conclusions:

  • ATM negatively regulates the degradation of CD13 protein.
  • ATM and CD13 function within the same pathway to influence cell migration.
  • This study reveals a novel functional interaction between ATM and CD13.

Related Concept Videos

DNA Damage can Stall the Cell Cycle02:37

DNA Damage can Stall the Cell Cycle

In response to DNA damage, cells can pause the cell cycle to assess and repair the breaks. However, the cell must check the DNA at certain critical stages during the cell cycle. If the cell cycle pauses before DNA replication, the cells will contain twice the amount of DNA. On the other hand, if cells arrest after DNA replication but before mitosis, they will contain four times the normal amount of DNA. With a host of specialized proteins at their disposal,cells must use the right protein at...
9.1K
Inhibition of Cdk Activity02:34

Inhibition of Cdk Activity

The orderly progression of the cell cycle depends on the activation of Cdk protein by binding to its cyclin partner. However, the cell cycle must be restricted when undergoing abnormal changes. Most cancers correlate to the deregulated cell cycle, and since Cdks are a central component of the cell cycle, Cdk inhibitors are extensively studied to develop anticancer agents. For instance, cyclin D associates with several Cdks, such as Cdk 4/6, to form an active complex. The cyclin D-Cdk4/6 complex...
4.7K
DNA Damage Can Stall the Cell Cycle02:37

DNA Damage Can Stall the Cell Cycle

2.6K
Negative Regulator Molecules01:23

Negative Regulator Molecules

Positive regulators allow a cell to advance through cell cycle checkpoints. Negative regulators have an equally important role as they terminate a cell’s progression through the cell cycle—or pause it—until the cell meets specific criteria.
35.3K
PI3K/mTOR/AKT Signaling Pathway01:22

PI3K/mTOR/AKT Signaling Pathway

The mammalian target of rapamycin  (mTOR) is a serine/threonine kinase that regulates growth, proliferation, and cell survival in response to hormones, growth factors, or nutrient availability. This kinase exists in two structurally and functionally distinct forms: mTOR complex 1  (mTORC1) and mTOR complex 2  (mTORC2). The first form (mTORC1) is composed of a rapamycin-sensitive Raptor and proline-rich Akt substrate, PRAS40. In contrast,  mTORC2 consists of a...
3.5K
The Intrinsic Apoptotic Pathway01:31

The Intrinsic Apoptotic Pathway

Internal cellular stress, such as cellular injury or hypoxia, triggers intrinsic apoptosis. The B-cell lymphoma 2 (Bcl-2) family of proteins are the primary regulators of the intrinsic apoptotic pathway. For example, during DNA damage, checkpoint proteins, such as Ataxia Telangiectasia Mutated (ATM protein) and Checkpoints Factor-2 (Chk2) proteins, are activated. These proteins phosphorylate p53 which further activates pro-apoptotic proteins, such as Bax, Bak, PUMA, and Noxa, and inhibits...
6.5K