Transferrin Promotes Oligodendroglial Differentiation Independently of Iron Binding and Release

. A long-standing question, however, has been whether these effects depend on iron delivery or instead reflect an intrinsic trophic property of the protein. To directly address this point, we used the oligodendroglial precursor cell line Oli-Neu and two previously characterized non-glycosylated human Tf mutants with selective defects in iron handling: TfY (Y95F/Y188F/Y426F/Y517F), an iron-binding-deficient mutant unable to bind iron, in either lobe, and TfK (K206E/E534A), an iron-release-deficient mutant that binds iron but cannot release it. We first confirmed that Oli-Neu cells express endogenous Tf and Tf receptor 1 (TfR1), internalize exogenous human Tf, and display low, non-colocalizing TfR2 expression. Transient expression of wild-type Tf, TfY, or TfK increased myelin basic protein (MBP) immunoreactivity and induced complex oligodendrocyte-like morphologies compared with non-transfected cells. Both mutants promoted maturation despite their opposite iron-binding defects, with TfK generating highly branched arbors and TfY inducing a more compact process architecture. AlphaFold-based structural modelling demonstrated the preservation of the canonical bilobalTf scaffold in both mutants. These findings provide direct evidence that the promyelinating and promaturational actions of Tf do not require iron binding or release, but rather reside in the protein itself. By decoupling Tf's biological activity from iron metabolism, this work expands the current understanding of Tf biology and identifies Tf as an iron-independent signaling cue for oligodendrocyte differentiation.This insight opens new avenues for developing Tf-based or Tf-mimetic therapeutic strategies to enhance remyelination in demyelinating disorders such as multiple sclerosis.

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ASN NEURO
Published
2026-08-24
DOI
https://doi.org/10.1080/17590914.2026.2720203
Primary Topic
Neurogenesis and neuroplasticity mechanisms
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article
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article

Transferrin Promotes Oligodendroglial Differentiation Independently of Iron Binding and Release

Agustín Jesús Byrne, María Julia Pérez, Paula Franco, Hugo P. Adamo et al.
ASN NEURO
Neurogenesis and neuroplasticity mechanisms
article

Transferrin Promotes Oligodendroglial Differentiation Independently of Iron Binding and Release

Agustín Jesús Byrne, María Julia Pérez, Paula Franco, Hugo P. Adamo, Jorge Correale, Estefanía Chamorro-Aguirre, Martina Garmendia, Jorge Correale
article en

Abstract

. A long-standing question, however, has been whether these effects depend on iron delivery or instead reflect an intrinsic trophic property of the protein. To directly address this point, we used the oligodendroglial precursor cell line Oli-Neu and two previously characterized non-glycosylated human Tf mutants with selective defects in iron handling: TfY (Y95F/Y188F/Y426F/Y517F), an iron-binding-deficient mutant unable to bind iron, in either lobe, and TfK (K206E/E534A), an iron-release-deficient mutant that binds iron but cannot release it. We first confirmed that Oli-Neu cells express endogenous Tf and Tf receptor 1 (TfR1), internalize exogenous human Tf, and display low, non-colocalizing TfR2 expression. Transient expression of wild-type Tf, TfY, or TfK increased myelin basic protein (MBP) immunoreactivity and induced complex oligodendrocyte-like morphologies compared with non-transfected cells. Both mutants promoted maturation despite their opposite iron-binding defects, with TfK generating highly branched arbors and TfY inducing a more compact process architecture. AlphaFold-based structural modelling demonstrated the preservation of the canonical bilobalTf scaffold in both mutants. These findings provide direct evidence that the promyelinating and promaturational actions of Tf do not require iron binding or release, but rather reside in the protein itself. By decoupling Tf's biological activity from iron metabolism, this work expands the current understanding of Tf biology and identifies Tf as an iron-independent signaling cue for oligodendrocyte differentiation.This insight opens new avenues for developing Tf-based or Tf-mimetic therapeutic strategies to enhance remyelination in demyelinating disorders such as multiple sclerosis.

ASN NEUROVol. 18(1)
Fundación para la Lucha contra las Enfermedades Neurológicas de la Infancia (AR), Instituto de Química y Fisicoquímica Biológicas (AR)
Openalex Percentile: Top 14%
Neurogenesis and neuroplasticity mechanisms
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