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Updated: Aug 8, 2026

Generation of Human CD40-activated B cells
Published on: October 17, 2009
B lymphocytes from patients with chronic lymphoproliferative disorders are equipped with different costimulatory
L Trentin1, R Zambello, R Sancetta
1Department of Clinical and Experimental Medicine, Padua University School of Medicine, Italy.
Insights
This study reveals distinct expression patterns of costimulatory molecules in B-cell malignancies. These tumor necrosis factor receptor (TNFR) and ligand (TNFL) superfamily molecules can differentiate between normal and malignant B cells and classify different chronic B-cell disorders.
Area of Science:
- Immunology
- Hematology
- Oncology
Background:
- Costimulatory molecules are crucial for B lymphocyte differentiation and T-B cell interactions.
- Malignant B lymphocytes in chronic B-cell malignancies may exhibit altered expression of these key molecules.
Purpose of the Study:
- To investigate the expression of tumor necrosis factor receptor (TNFR) and tumor necrosis factor ligand (TNFL) superfamily molecules, along with CD80 and CD86, on malignant B lymphocytes from various chronic B-cell disorders.
- To determine if these molecules can differentiate between normal B cells and malignant B cells, and among different types of chronic B-cell malignancies.
Main Methods:
- Flow cytometry and reverse transcription PCR analyses were employed.
- Expression of TNFR and TNFL superfamily molecules, CD80, and CD86 was analyzed in normal B cells and in B-cell chronic lymphocytic leukemia (CLL), mantle cell lymphoma, hairy cell leukemia (HCL), and HCL variant.
Main Results:
- Distinct expression patterns of TNFR and TNFL molecules were observed across different B-cell malignancies.
- CD40 was expressed on all B cells, while CD40L was found on CLL and HCL but not other disorders.
- CD27 was absent in normal B cells but present in all malignancies, with high density in mantle cell lymphoma. CD70 was on tumor B cells but not normal CD5+ counterparts. CD30 expression varied, being strong in HCL variant and weak in CLL.
- TNFR II (CD120b) and CD80 were generally expressed at intermediate to high levels on neoplastic B cells, while CD86 was present at lower intensity.
Conclusions:
- TNFR and TNFL molecules are valuable for differentiating B-cell malignancies from normal B cells (e.g., CD27, CD70, CD40L, CD30, CD80).
- These molecules also aid in classifying distinct chronic B-cell disorders (e.g., CD40L, CD27, CD30).
- Co-expression of receptor-ligand pairs (CD40/CD40L, CD30/CD30L, CD27/CD70) on the same cell suggests their role in initiating and sustaining neoplastic processes through B-T and B-B interactions.
Abstract:
Several costimulatory molecules play a key role in the differentiation of B lymphocytes and in T-B-cell interactions. In this study, we addressed the question of whether different receptors and counter-receptors may be expressed on malignant B lymphocytes from chronic B-cell malignancies. Using flow cytometry and reverse transcription PCR analyses, the expression of molecules belonging to the tumor necrosis factor receptor (TNFR) and tumor necrosis factor ligand (TNFL) families, as well as the expression of CD80 and CD86 molecules, was analyzed in normal B cells and in different chronic lymphoproliferative disorders of B-cell type, including B-cell chronic lymphocytic leukemia (CLL), mantle cell lymphoma, hairy cell leukemia (HCL), and HCL variant. Different patterns of expression of TNFR and TNFL superfamily molecules were demonstrated among B-cell malignancies. In particular, CD40 was commonly observed on all B cells (both tumor and normal), whereas its ligand (CD40L), which is usually undetectable on resting normal B lymphocytes, was expressed in CLL and HCL but not in other chronic lymphoproliferative disorders. CD27 was not shown in normal B cells, although it was present in all malignancies and with particularly high density in mantle cell lymphoma. CD70 was widely distributed on tumor B lymphocytes, but not on the CD5+ normal counterpart. CD30 was strongly expressed in HCL variant and weakly in B-cell CLL, whereas its ligand showed a wide pattern of expression, including all neoplastic and normal B cells. TNFR II (CD120b) and CD80 were distributed on neoplastic B cells from all groups, usually at an intermediate to high degree of intensity, whereas the CD86 molecule was present at lower intensity than CD80. Finally, reverse transcription PCR analysis confirmed the presence of CD40L, CD30, and CD30L mRNAs in those B cells expressing the corresponding membrane-bound proteins at low density. Our data indicate that TNFR and TNFL molecules are of use clinically both in differentiating B-cell malignancies from the normal counterpart (i.e., CD27, CD70, CD40L, CD30, and CD80) and in defining different chronic B-cell disorders (i.e., CD40L, CD27, and CD30). Interestingly, the observation that several receptors and their ligands (i.e., CD40/CD40L, CD30/CD30L, and CD27/CD70) can be expressed on the same cell suggests that these molecules play a role in initiating and maintaining the neoplastic process by mediating B-T and B-B interactions.
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