An Extended PD-L2 Cytoplasmic Domain Results From Alternative Splicing in NSCLC Cells

Lisa Loksø Dietz1, Natasja Toft Furman1, Trine Vilsbøll Larsen1

  • 1Department of Biomedicine, Aarhus University, Denmark.

Insights

Alternative splicing of the PDCD1LG2 gene in non-small cell lung cancer (NSCLC) generates novel PD-L2 isoforms, including isoform V. These isoforms, with altered cytoplasmic domains, may impact the PD-1 immune checkpoint pathway and offer new immunotherapy targets.

Area of Science:

  • Immunology
  • Molecular Biology
  • Oncology

Background:

  • Antibody-based immunotherapy targeting PD-1/PD-L1 interactions shows efficacy in NSCLC.
  • Regulatory mechanisms of the PD-1 immune checkpoint pathway require further elucidation.
  • PD-L2 is a second ligand for PD-1, structurally similar to PD-L1.

Purpose of the Study:

  • To investigate alternative mRNA splicing of the PDCD1LG2 gene in NSCLC.
  • To identify and characterize novel PD-L2 isoforms generated by alternative splicing.
  • To explore the functional implications of these PD-L2 isoforms in the PD-1 immune checkpoint pathway.

Main Methods:

  • Analysis of alternative splicing events in NSCLC cell lines and tumor biopsies.
  • Identification and characterization of PD-L2 isoforms using molecular biology techniques.
  • Assessment of PD-L2 isoform localization and potential functional impact.

Main Results:

  • Potentially eight different PD-L2 isoforms generated from the PDCD1LG2 gene in NSCLC.
  • A prominent splicing event extends exon 6, creating PD-L2 isoform V with a 10 amino acid extension in its cytoplasmic domain.
  • PD-L2 isoform V is present in 13% of transcripts in NSCLC cell lines and 22% in tumor biopsies, with altered cell surface localization.

Conclusions:

  • Alternative splicing of PDCD1LG2 generates diverse PD-L2 isoforms with distinct cytoplasmic domains in NSCLC.
  • PD-L2 isoform V exhibits altered membrane localization, suggesting modified functionality.
  • Understanding these novel PD-L2 isoforms and their cytoplasmic domains is crucial for future PD-1 pathway research and immunotherapy development.