Genomic and Immunologic Correlates in Prostate Cancer with High Expression of KLK2

Lucía Paniagua-Herranz1, Irene Moreno2, Cristina Nieto-Jiménez1

  • 1Experimental Therapeutics Unit, Oncology Department, Hospital Clínico San Carlos (HCSC), Instituto de Investigación Sanitaria San Carlos (IdISSC), 28040 Madrid, Spain.

Insights

Targeting kallikrein 2 (KLK2) in prostate cancer (PRAD) may offer new therapies. High KLK2 expression correlates with an inert immune microenvironment, potentially impacting treatment response.

Area of Science:

  • Oncology
  • Immunology
  • Genomics

Background:

  • Surfaceome protein identification is crucial for developing antibody-based cancer therapies.
  • Kallikrein 2 (KLK2), a kallikrein specifically expressed in prostate cancer (PRAD), is a target for T cell engager therapies currently in early clinical development.

Purpose of the Study:

  • To investigate the immune microenvironment and genomic profile of prostate tumors with high KLK2 expression.
  • To identify potential biomarkers associated with KLK2 expression and immune response in PRAD.

Main Methods:

  • Analysis of genomic information from various sources to assess immune cell populations and T cell activation markers.
  • Evaluation of correlations between KLK2 expression, Gleason score, TMPRSS2 deletion, and specific surface proteins.
  • Assessment of gene expression associations with treatment outcomes and immune cell infiltration.

Main Results:

  • KLK2 was specifically expressed in PRAD but not significantly associated with Gleason score or immune cell populations.
  • High KLK2 expression correlated with TMPRSS2 deletion and elevated levels of surface proteins (CHRNA2, FAM174B, OR51E2, TSPAN1, PTPRN2) linked to poor response to immune checkpoint inhibitors (ICIs).
  • These genes did not show association with PRAD outcomes or immune cell infiltration.

Conclusions:

  • Prostate tumors with high KLK2 expression exhibit an immune microenvironment that may predict response to ICIs in other cancer types.
  • Therapeutic strategies targeting KLK2, such as T cell engagers or antibody-drug conjugates, warrant further investigation to determine their clinical efficacy.

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