Related Experiment Video
Updated: Jul 28, 2026

Isolation and Flow Cytometric Analysis of Glioma-infiltrating Peripheral Blood Mononuclear Cells
Published on: November 28, 2015
Multivalent cations depress ligand binding to cell-associated insulin-like growth factor binding protein-5 on human
1The Department of Animal Sciences, The University of Illinois, Urbana 61801, USA.
Abstract:
The current studies quantified the effect of the multivalent cations zinc, cadmium, lanthanum, chromium, and gold (Zn2+, Cd2+, La3+, Cr3+, and Au3+) on [125I]-insulin-like growth factor ([125I]-IGF) binding to T98G human glioblastoma cells. The major binding site for the IGFs on T98G cells is IGF binding protein-5 (IGFBP-5), as determined by affinity labeling. Competitive binding studies, using either [125I]-IGF-I or [125I]-IGF-II, indicated that La3+ and Cr3+ did not affect [125I]-IGF-I or [125I]-IGF-II binding to cell-associated IGFBP-5. Zn2+, Au3+, and Cd2+ depressed binding of both [125I]-IGF-I and [125I]-IGF-II. [125I]-IGF-I and [125I]-IGF-II binding resulted in nonlinear concave-down Scatchard plots, indicating the presence of high- and low-affinity equilibrium constant of association (Ka) sites. Assuming a preexisting asymmetric model with independent high (KaHi) and low (KaLo) sites; Zn2+, Cd2+, and Au3+ eliminated KaHi and Zn2+, and Au3+ lowered KaLo, compared with control values. The same results were found, independent of whether [125I]-IGF-I or [125I]-IGF-II was used. Similarly, assuming a ligand-induced model of negative cooperativity, all three cations eliminated the initial affinity for the high affinity sites (Ka), whereas Zn2+ and Au2+ reduced the final affinity for the low affinity sites (Kf). Dose-response studies indicated that Zn2+, Au3+, and Cd2+ depressed binding with half-maximal activities of approximately 20 microM, 14-60 microM, and 50-65 microM, respectively. Zn2+, Au3+, and Cd2+ bind to similar sites on proteins (a zinc-binding motif), indicating similar mechanisms of action. A zinc-binding motif is present within the IGFBPs but not the IGFs. We demonstrate, for the first time, that multivalent cations have the potential to modulate IGF activity by decreasing the amount of IGF bound to cell-associated IGFBP-5.
Insights
Certain multivalent cations like zinc, cadmium, and gold inhibit insulin-like growth factor (IGF) binding to T98G glioblastoma cells by affecting IGF binding protein-5 (IGFBP-5). This modulation of IGF-IGFBP-5 interaction by cations offers new insights into IGF signaling pathways.
Area of Science:
- Biochemistry
- Cell Biology
- Pharmacology
Background:
- Insulin-like growth factors (IGFs) play crucial roles in cell growth and differentiation.
- IGF binding proteins (IGFBP-5) modulate IGF bioavailability and activity.
- The influence of multivalent cations on IGF-IGFBP interactions is not well understood.
Purpose of the Study:
- To investigate the effects of specific multivalent cations (Zn2+, Cd2+, La3+, Cr3+, Au3+) on [125I]-IGF binding to T98G human glioblastoma cells.
- To elucidate the mechanism by which these cations modulate IGF binding to cell-associated IGFBP-5.
Main Methods:
- Competitive binding assays using radiolabeled IGF-I and IGF-II ([125I]-IGF-I, [125I]-IGF-II).
- Affinity labeling to identify the primary IGF binding protein on T98G cells (IGFBP-5).
- Scatchard plot analysis to determine binding affinities (KaHi, KaLo, Ka, Kf) under different cation conditions.
- Dose-response studies to quantify the inhibitory concentrations of cations.
Main Results:
- La3+ and Cr3+ did not significantly affect [125I]-IGF binding to IGFBP-5.
- Zn2+, Cd2+, and Au3+ significantly reduced [125I]-IGF-I and [125I]-IGF-II binding to T98G cells.
- These inhibitory cations eliminated high-affinity binding sites and reduced low-affinity binding.
- Half-maximal inhibitory concentrations (IC50) were approximately 20 μM for Zn2+, 14-60 μM for Au3+, and 50-65 μM for Cd2+.
- Cations likely act via a zinc-binding motif present in IGFBP-5.
Conclusions:
- Multivalent cations Zn2+, Cd2+, and Au3+ can modulate IGF activity by decreasing IGF binding to cell-associated IGFBP-5.
- This cation-mediated modulation of IGF-IGFBP-5 interaction represents a novel mechanism influencing IGF signaling.
- The findings highlight the potential role of metal ions in regulating growth factor pathways.
More Related Videos
10:28Flow Cytometry-based Drug Screening System for the Identification of Small Molecules That Promote Cellular Differentiation of Glioblastoma Stem Cells
Published on: January 10, 2018
09:33Preparation Of Neovascular Tissues from Human Glioma Tissues for Quantitative Proteomics Analysis of Tumor Angiogenesis
Published on: March 20, 2026