Insulin receptor activation and down-regulation by cationic lipid transfection reagents

Camilla Pramfalk1, Johanna Lanner, Monica Andersson

  • 1Department of Biosciences, Novum, Karolinska Institute, Huddinge, Stockholm, Sweden. Camilla.Pramfalk@biosci.ki.se

BMC Cell Biology
|January 27, 2004
PubMed
Abstract

Insights

Cationic lipid transfection reagents can cause insulin resistance in cultured cells by activating and down-regulating the insulin receptor. Reducing reagent concentration mitigates this effect without compromising transfection efficiency.

Area of Science:

  • Cell biology
  • Molecular biology
  • Biochemistry

Background:

  • Cationic lipid transfection agents are common tools for introducing DNA into cell cultures.
  • Cells treated with agents like LipofectAMINE 2000 and FuGENE-6 often exhibit reduced responsiveness to insulin.
  • This insulin resistance affects various cellular processes, including insulin receptor signaling and glucose uptake.

Purpose of the Study:

  • To investigate the mechanism behind insulin resistance induced by cationic lipid transfection agents.
  • To determine if reduced concentrations of transfection reagents can prevent insulin receptor down-regulation.
  • To optimize transfection protocols to maintain cellular insulin sensitivity.

Main Methods:

  • Examined insulin receptor phosphorylation in Chinese hamster ovary cells expressing the human insulin receptor.
  • Assessed transfection efficiency using a green fluorescent protein construct.
  • Tested varying concentrations of LipofectAMINE 2000.

Main Results:

  • Cationic lipid agents fully activate, then down-regulate the insulin receptor during transfection.
  • Lower concentrations of LipofectAMINE 2000 than recommended are effective for transfection.
  • Reduced reagent concentrations prevent significant loss of insulin receptor expression.

Conclusions:

  • Transfection reagents activate and subsequently reduce insulin receptor expression, leading to insulin unresponsiveness.
  • Using lower concentrations of cationic lipid transfection reagents can avoid this insulin resistance.
  • Optimized reagent concentrations maintain transfection efficiency while preserving cellular insulin sensitivity.

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