Significance of aberrant immunophenotypes in childhood acute lymphoid leukemia

A S Kurec1, P Belair, C Stefanu

  • 1Department of Pathology, SUNY Health Science Center, Syracuse.

Cancer
|June 15, 1991
PubMed

Insights

Pediatric acute lymphoid leukemia (ALL) with myeloid antigens on blasts is common, affecting 49% of cases. These patients face shorter remission durations and survival times compared to those without myeloid antigens.

Area of Science:

  • Pediatric Hematology Oncology
  • Immunophenotyping
  • Acute Lymphoid Leukemia

Background:

  • Acute lymphoid leukemia (ALL) is a common childhood cancer.
  • Immunophenotyping is crucial for classifying ALL subtypes.
  • Aberrant antigen expression in ALL can impact prognosis.

Purpose of the Study:

  • To investigate the prevalence and clinical significance of aberrant antigen expression in pediatric ALL.
  • To compare outcomes between conventional and aberrant ALL subtypes.
  • To assess the impact of myeloid antigen expression on remission and survival in pediatric ALL.

Main Methods:

  • Flow cytometry was used to analyze leukemic cells from 51 pediatric ALL patients.
  • A panel of monoclonal antibodies targeted T-cell, B-cell, myeloid, and HLA-DR antigens.
  • Patients were categorized into conventional ALL and aberrant ALL groups, including myeloid antigen-positive ALL.

Main Results:

  • Aberrant antigen expression was observed in 49% of pediatric ALL cases.
  • Myeloid antigen-positive ALL occurred in 16% of patients.
  • Myeloid antigen-positive ALL was associated with significantly shorter duration of first remission and survival compared to myeloid antigen-negative ALL.

Conclusions:

  • Nearly half of pediatric ALL cases exhibit aberrant antigen expression.
  • The presence of myeloid antigens on ALL blasts identifies a high-risk subgroup.
  • Further research is warranted to explore targeted therapies for myeloid antigen-positive pediatric ALL.

Related Concept Videos

Disorders of Leukocytes01:27

Disorders of Leukocytes

Leukocyte disorders can lead to either leukopenia, characterized by an abnormally low leukocyte count, or leukocytosis, marked by a very high leukocyte number.
Leukopenia may result from bone marrow disorders, autoimmune diseases, and infectious diseases. For example, conditions such as multiple myeloma and aplastic anemia can impair the bone marrow's ability to produce adequate leukocytes. Similarly, autoimmune diseases like lupus and viral infections such as HIV can prompt the immune system...
Special Features of Adaptive Immunity01:20

Special Features of Adaptive Immunity

The adaptive immune system, a crucial component of the overall immune response, offers a highly specialized defense against pathogens. It involves specific cell types and features, enabling it to combat infections effectively and efficiently.
The primary cell types involved in adaptive immunity are T cells and B cells. Each type has a unique role in defending the body against pathogens. T cells are responsible for cell-mediated immunity. They identify and eliminate infected cells directly,...
Cells of the Adaptive Immune Response01:23

Cells of the Adaptive Immune Response

The T and B lymphocytes of the adaptive immune system develop from common lymphoid progenitor cells in the bone marrow. These progenitors give rise to precursors that eventually develop into both T and B lymphocytes. As these precursors mature, they gain the ability to detect and respond to foreign antigens in the body, a process known as immunocompetence. Additionally, these precursors acquire self-tolerance, a process that ensures they do not react to self-antigens. This intricate system...
Diversity of Antigen Receptors01:28

Diversity of Antigen Receptors

Antigen receptors are essential components of the immune system crucial in defending the body against foreign invaders. These receptors are present on the surface of B and T cells, enabling them to recognize antigens and mount an appropriate immune response.
Before encountering any antigen, lymphocytes express these receptors. On B cells, the antigen receptor is a membrane-bound antibody molecule called BCR; on T cells, it is a T cell receptor or TCR. B and T cell receptors are composed of two...