Common Pathway for K562 Cells Endocytosis and Release of GaC‐Tf and Ga2‐Tf via a Transferrin Receptor
Yingqi Li, Bin Liu, Chungui Zhao, Binsheng Yang
Abstract
Yingqi Li, Bin Liu, Chungui Zhao, Binsheng Yang
Abstract
Abstract There has been an increasing interest in the use of gallium in anticancer activity. However, whether the uptakes of two species of transferrin, including digallium transferrin (Ga2‐Tf) and the C‐terminal monogallium transferrin (GaC‐Tf) by cells, are different is not well understood. In this work the mechanism of both species passing in and out K562 cells has been established by using 125I‐labeled transferrin. There were about (1.5±0.08)×105 binding sites per cell surface. Both Ga2‐Tf and GaC‐Tf were recycled to the cell exterior with a protracted endocytic cycle compared to apotransferrin (apoTf). The cycling time from the internalization to release was calculated about t1/2= (3.15±0.055) min for apoTf, t1/2= (4.69±0.09) min for Ga2‐Tf and t1/2= (4.78±0.15) min for GaC‐Tf. The result implies that metal dissociating from transferrin in acidic endosomes was likely to be the key step. Both Ga2‐Tf and GaC‐Tf into K562 cells are transferrin receptor‐mediated process with a similar rate of endocytosis and release. Our present observations provide useful information for better targeted drugs in specific therapy.
OpenAlex reports 1 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
Abstract There has been an increasing interest in the use of gallium in anticancer activity. However, whether the uptakes of two species of transferrin, including digallium transferrin (Ga2‐Tf) and the C‐terminal monogallium transferrin (GaC‐Tf) by cells, are different is not well understood. In this work the mechanism of both species passing in and out K562 cells has been established by using 125I‐labeled transferrin. There were about (1.5±0.08)×105 binding sites per cell surface. Both Ga2‐Tf and GaC‐Tf were recycled to the cell exterior with a protracted endocytic cycle compared to apotransferrin (apoTf). The cycling time from the internalization to release was calculated about t1/2= (3.15±0.055) min for apoTf, t1/2= (4.69±0.09) min for Ga2‐Tf and t1/2= (4.78±0.15) min for GaC‐Tf. The result implies that metal dissociating from transferrin in acidic endosomes was likely to be the key step. Both Ga2‐Tf and GaC‐Tf into K562 cells are transferrin receptor‐mediated process with a similar rate of endocytosis and release. Our present observations provide useful information for better targeted drugs in specific therapy.
Key concepts: Transferrin, Endocytosis, Chemistry, Transferrin receptor, Endocytic cycle, Endosome, Internalization, K562 cells