Abstract

BackgroundHuman adipose-derived stem cells (hADSCs) have been used in various fields of tissue engineering because of their promising therapeutic efficacy. However, the stemness of hADSCs cannot be maintained for long durations, and their therapeutic cellular functions, such as paracrine factor secretion decrease during long-term cell culture. To facilitate the use of long-term-cultured hADSCs (L-ADSCs), we designed a novel therapeutic anti-senescence ion-delivering nanocarrier (AIN) that is capable of recovering the therapeutic properties of L-ADSCs. In the present study, we introduced a low-pH-responsive ion nanocarrier capable of delivering transition metal ions that can enhance angiogenic paracrine factor secretion from L-ADSCs. The AINs were delivered to L-ADSCs in an intracellular manner through endocytosis.ResultsLow pH conditions within the endosomes induced the release of transition metal ions (Fe) into the L-ADSCs that in turn caused a mild elevation in the levels of reactive oxygen species (ROS). This mild elevation in ROS levels induced a downregulation of senescence-related gene expression and an upregulation of stemness-related gene expression. The angiogenic paracrine factor secretion from L-ADSCs was significantly enhanced, and this was evidenced by the observed therapeutic efficacy in response to treatment of a wound-closing mouse model with conditioned medium obtained from AIN-treated L-ADSCs that was similar to that observed in response to treatment with short-term-cultured adipose-derived stem cells.ConclusionsThis study suggests a novel method and strategy for cell-based tissue regeneration that can overcome the limitations of the low stemness and therapeutic efficacy of stem cells that occurs during long-term cell culture.Graphical

Highlights

  • Human adipose-derived stem cells have been used in various fields of tissue engineering because of their promising therapeutic efficacy

  • D Mass detection of iron ions in conditioned media (CM) harvested from long-term-cultured Human adipose-derived stem cells (hADSCs) (L-ADSCs) at passage 15 without anti-senes‐ cence ion-delivering nanocarrier (AIN) treatment (15 N-CM) and from L-ADSCs at passage 15 with AIN treatment (15 A-CM) as quantified by inductively coupled plasma optical emission spectrometer (ICP-OES) (n = 4)

  • In the present study, we designed a novel anti-senescence nanomaterial that can respond to low pH conditions and release iron ions in an intracellular manner to recover the therapeutic properties of L-ADSCs

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Summary

Introduction

Human adipose-derived stem cells (hADSCs) have been used in various fields of tissue engineering because of their promising therapeutic efficacy. The stemness of hADSCs cannot be maintained for long durations, and their therapeutic cellular functions, such as paracrine factor secretion decrease during long-term cell culture. Transition metal-based nanoparticles have been widely studied for use in biomedical applications, such as hyperthermic therapy, drug delivery, and bio-imaging [1, 2]. These nanoparticles have been applied to stem cells to improve their therapeutic efficacy [3]. To prohibit the cellular damages such as ferroptosis [9, 10] and enhance the therapeutic effect on stem cells, we first optimized the concentration of Fe for cell treatment and evaluated the cellular functions

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