PP4 deficiency leads to DNA replication stress that impairs immunoglobulin class switch efficiency

Ming-Yu Chen1, Wei-Chan Hsu1, Shu-Ching Hsu2,3,4

  • 1Immunology Research Center, National Health Research Institutes (NHRI), Zhunan, Miaoli County, Taiwan.

Insights

The serine/threonine phosphatase PP4 is crucial for B cell antibody switching. Its absence causes DNA damage and impairs IgG1 production, but this can be partially rescued by deleting p53.

Area of Science:

  • Immunology
  • Molecular Biology
  • Cell Biology

Background:

  • The serine/threonine phosphatase PP4 plays a role in DNA damage repair and cell cycle regulation.
  • Previous studies indicated PP4's necessity for B cell development, germinal center formation, and immunoglobulin class switch recombination (CSR).

Purpose of the Study:

  • To investigate the mechanisms by which PP4 influences B cell function, particularly during immunoglobulin class switch recombination.
  • To elucidate PP4's role in preventing DNA replication stress that could impede CSR and antibody switching.

Main Methods:

  • Analysis of PP4-deficient murine B lymphocytes.
  • Assessment of DNA damage response pathways (ATM/p53, ATR), cell proliferation, and DNA repair complex retention (γH2AX-NBS1).
  • Conditional deletion of PP4 and p53 using AID/cre system in B cells.

Main Results:

  • PP4-deficient B cells exhibit proliferation defects and induced DNA damage response pathways (ATM/p53).
  • These cells show inefficient ATR phosphorylation and reduced γH2AX-NBS1 complex retention, compromising IgG1 switching.
  • Conditional deletion of PP4 restores IgG1 production, and co-deletion with p53 partially rescues IgG1 switching in vivo.

Conclusions:

  • PP4 is essential for preventing DNA replication stress during the humoral immune response, thereby facilitating antibody switching.
  • PP4's function is critical for maintaining genomic stability and efficient CSR in B cells.

Related Concept Videos

DNA Replication02:40

DNA Replication

DNA replication involves the separation of the two strands of the double helix, with each strand serving as a template from which the new complementary strand is copied.  After replication, each double-stranded DNA includes one parental or “old” strand and one “new” strand. This is known as semiconservative replication. The resulting DNA molecules have the same sequence and are divided equally into the two daughter cells.
Replication in Prokaryotes
DNA replication...
59.5K
The DNA Replication Fork01:02

The DNA Replication Fork

An organism’s genome needs to be duplicated in an efficient and error-free manner for its growth and survival. The replication fork is a Y-shaped active region where two strands of DNA are separated and replicated continuously. The coupling of DNA unzipping and complementary strand synthesis is a characteristic feature of a replication fork.   Organisms with small circular DNA, such as E. coli, often have a single origin of replication; therefore, they have only two replication...
41.1K
The DNA Replication Fork01:02

The DNA Replication Fork

18.5K
Replication in Eukaryotes02:31

Replication in Eukaryotes

Overview
205.1K
Replication in Prokaryotes02:35

Replication in Prokaryotes

Overview
98.3K
S-Cdk Initiates DNA Replication02:38

S-Cdk Initiates DNA Replication

The cell cycle is a series of events leading to DNA duplication followed by the division of cell content to form two daughter cells. The cell cycle progresses in four stages—the cell increases in size (gap 1 or G1-phase), duplicates its DNA (synthesis or S-phase), prepares to divide (gap 2 or G2-phase), and divides (mitosis or M-phase).
Two states at the origin of replication
In eukaryotes, the initiation of replication occurs at many sites on the chromosomes, called the origins of...
5.7K