Molecular determinants of treatment response in human germ cell tumors

Frank Mayer1, Hans Stoop, George L Scheffer

  • 1Department of Pathology/Laboratory for Experimental Patho-Oncology, Erasmus Medical Center/Daniel, Josephine Nefkens Institute, 3000 DR Rotterdam, The Netherlands.

Abstract

Insights

Chemosensitivity in germ cell tumors (GCTs) is multifactorial, involving apoptosis pathways rather than cell cycle arrest. Mature teratomas show resistance due to specific protein expressions.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cancer Research

Background:

  • Germ cell tumors (GCTs) exhibit high sensitivity to cisplatin-based chemotherapy, a phenomenon not fully understood.
  • Intrinsic chemotherapy resistance in mature teratomas and refractory GCTs remains unexplained.
  • Cellular pathways are implicated in chemotherapy efficacy but require comprehensive investigation in GCT subgroups.

Purpose of the Study:

  • To investigate proteins regulating apoptosis, cell cycle control, and drug transport in GCT patient samples.
  • To correlate protein expression with clinical subgroups: unselected GCTs, advanced metastatic disease in remission, and chemotherapy-refractory GCTs.
  • To analyze mature teratoma components separately for distinct protein expression profiles.

Main Methods:

  • Immunohistochemical analysis of apoptosis regulators (p53, BAX, BCL-2, BCL-X(L)), cell cycle proteins (p21, RB), and drug transporters (P-glycoprotein, MRPs, BCRP, LRP, MT, GSTpi).
  • Terminal deoxynucleotidyl transferase-mediated nick end labeling (TUNEL) assay to determine the apoptotic index.
  • Separate analysis of mature teratoma components within tumor samples.

Main Results:

  • A correlation was observed between wild-type p53 and the apoptotic index in invasive GCTs (r(s) = 0.66; P < 0.001).
  • Low levels of antiapoptotic proteins BCL-2 and BCL-X(L) were generally detected. p21 was rarely detectable and did not correlate with p53.
  • No significant differences in investigated parameters were found among the three GCT patient groups (P > 0.08).
  • Mature teratomas showed distinct profiles: intense p21 and RB staining, and frequent positivity for MRP2, LRP, and GSTpi.

Conclusions:

  • GCT chemosensitivity appears multifactorial, linked to a lack of cisplatin transporters, low BCL-2 family expression, and intact apoptosis downstream of p53.
  • Findings suggest a preference for apoptosis over cell cycle arrest following p53 up-regulation in GCTs.
  • No single examined parameter explains the resistance in refractory GCTs.
  • Mature teratoma resistance may stem from up-regulated factors inhibiting chemotherapy and enabling p21-induced cell cycle arrest.

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