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Inhibition of Ferroptosis by Mesenchymal Stem Cell-Derived Exosomes in Acute Spinal Cord Injury: Role of Nrf2/GCH1/BH4 Axis

Neurospine 2024;21(2):642-655.
Published online: June 30, 2024

Department of Rehabilitation, Xiangya Hospital of Central South University, Changsha, China

Corresponding Author Yixin Chen Department of Rehabilitation, Xiangya Hospital of Central South University, NO. 87, Xiangya Road, Changsha 410008, China Email: chenyxxy@126.com

Yixin Chen and Bingfa Li contributed equally to this study as co-first authors.

• Received: January 5, 2024   • Revised: March 26, 2024   • Accepted: April 6, 2024

Copyright © 2024 by the Korean Spinal Neurosurgery Society

This is an open access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/4.0/) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

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Inhibition of Ferroptosis by Mesenchymal Stem Cell-Derived Exosomes in Acute Spinal Cord Injury: Role of Nrf2/GCH1/BH4 Axis
Neurospine. 2024;21(2):642-655.   Published online June 30, 2024
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Inhibition of Ferroptosis by Mesenchymal Stem Cell-Derived Exosomes in Acute Spinal Cord Injury: Role of Nrf2/GCH1/BH4 Axis
Neurospine. 2024;21(2):642-655.   Published online June 30, 2024
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Inhibition of Ferroptosis by Mesenchymal Stem Cell-Derived Exosomes in Acute Spinal Cord Injury: Role of Nrf2/GCH1/BH4 Axis
Image Image Image Image Image Image Image
Fig. 1. Lipopolysaccharide (LPS) induced ferroptosis in BV2 cells. BV2 cells were treated with LPS at 100 ng/mL for 24 hours. (A) Morphological observation of BV2 cells (scale bar, 100 μm). (B) Cell proliferation was evaluated with methylthiazolyldiphenyl- tetrazolium bromide (n=3). (C) Quantitative real-time polymerase chain reaction analysis of GPX4, PTGS2, FTH1, and SLC7A11 (n=3). (D) The relative Fe2+ level (n=3). (E) Level of reactive oxygen species (ROS) (n=3). (F) Level of malonaldehyde (MDA) (n=3). GPX4, glutathione peroxidase 4; PTGS2, prostaglandin-endoperoxide synthase 2; FTH1, ferritin heavy chain 1; SLC7A11, solute carrier family 7 member 11. *p<0.05. **p<0.01.
Fig. 2. Characterization of mesenchymal stem cell (MSC)-derived exosomes. (A) Primary MSCs were isolated and cultured. The morphology of passage 1 (P1), 2 (P2), and 3 (P3) MSCs was examined and imaged. (B) Nanoparticle tracking analysis of exosome. (C) Transmission electron microscopy examination. (D) Protein levels of CD63, CD81, and TSG101 in MSC-derived exosomes and MSCs (n=3).
Fig. 3. Mesenchymal stem cell-derived exosomes (MSC-Exo) suppressed ferroptosis in BV2 cells. (A) BV2 cells were treated with lipopolysaccharide (LPS) at 0, 25, 50, or 100 ng/mL for 48 hours. Cell proliferation was analyzed with methylthiazolyldiphenyltetrazolium bromide (MTT) (n=3). (B) LPS-induced BV2 cells were cocultured with MSC-Exo at 0.5, 1, or 1.5 μg/mL for 24 hours. Cell proliferation was analyzed with MTT (n=3). BV2 cells were treated with LPS at 100 ng/mL, LPS+MSC-Exo at 1.5 μg/mL or LPS+exosome-depleted supernatant. (C) Quantitative real-time polymerase chain reaction analysis of GPX4, PTGS2, FTH1, and SLC7A11 (n=3). (D) The relative ratio of reactive oxygen species (ROS)-positive BV2 cells (n=3). (E) Levels of malonaldehyde (MDA) (n=3). (F) The relative Fe2+ level (n=3). (G) Cell proliferation was analyzed with MTT (n=3). GPX4, glutathione peroxidase 4; PTGS2, prostaglandin-endoperoxide synthase 2; FTH1, ferritin heavy chain 1; SLC7A11, solute carrier family 7 member 11. *p<0.05. **p<0.01. ***p<0.001.
Fig. 4. Mesenchymal stem cell-derived exosomes (MSC-Exo) suppressed ferroptosis in lipopolysaccharide (LPS)-treated BV2 cells. BV2 cells were treated with LPS at 100 ng/mL or LPS in combination with MSC-Exo at 1.5 μg/mL for 24 hours. (A–C) IF staining of GPX4 (red) and FSP1 (green). GPX4, glutathione peroxidase 4; FSP1, ferroptosis suppressor protein 1; DAPI, 4′,6-diamidino-2-phenylindole. Scale bar, 25 μm. *p<0.05. **p<0.01.
Fig. 5. The Nrf2/GCH1/BH4 signaling suppressed ferroptosis in BV2 cells. BV2 cells were treated with lipopolysaccharide (LPS), LPS in combination with tert-butylhydroquinone (TBHQ) at 25 μM for 24 hours. Nrf2-knockdwon cells were treated with LPS. (A) Quantitative real-time polymerase chain reaction (qRT-PCR) analysis of Nrf2 and GCH1 (n=3). (B) BH4 generation was examined using enzyme-linked immunosorbent assay (n=3). (C) Reactive oxygen species (ROS) (green) staining in BV2 cells. Scale bar, 200 μm. (D) qRT-PCR analysis of GPX4, PTGS2, FTH1, and SLC7A11 (n=3). Nrf2, NF-E2 related factor 2; GCH1, GTP cyclolase I; BH4, tetrahydrobiopterin; GPX4, glutathione peroxidase 4; PTGS2, prostaglandin-endoperoxide synthase 2; FTH1, ferritin heavy chain 1; SLC7A11, solute carrier family 7 member 11. *p<0.05. **p<0.01. ***p<0.001.
Fig. 6. Mesenchymal stem cell-derived exosomes (MSC-Exo) restrained ferroptosis through activation of the Nrf2/GCH1/BH4 signaling. BV2 cells were treated with LPS, LPS+MSC-Exo, or LPS+FIN56 (5 μM) for 24 hours. (A) Quantitative real-time polymerase chain reaction analysis of Nrf2 and GCH1 (n=3). (B) BH4 generation was examined using enzyme-linked immunosorbent assay (n=3). (C) Reactive oxygen species (ROS) (green) staining in BV2 cells. Scale bar, 200 μm. (D) Protein levels of GPX4 and FSP1 (n=3). (E) Expression analysis of Fe2+, PTGS2, FTH1, and SLC7A11 (n=3). Nrf2, NF-E2 related factor 2; GCH1, GTP cyclolase I; BH4, tetrahydrobiopterin; GPX4, glutathione peroxidase 4; FSP1, ferroptosis suppressor protein 1; PTGS2, prostaglandin- endoperoxide synthase 2; FTH1, ferritin heavy chain 1; SLC7A11, solute carrier family 7 member 11. *p<0.05. **p<0.01. ***p<0.001.
Fig. 7. Mesenchymal stem cell-derived exosomes (MSC-Exo) administration improved neurological rehabilitation after spinal cord injury (SCI) in rats. Rats were divided into control, SCI, SCI+normal saline, and SCI+MSC-Exo groups (n=3). (A) Basso, Beattie, and Bresnahan (BBB) scores of the hind limbs of SCI rats. (B) Varying degrees of ferroptosis such as hemolysis, mitochondrial shrinkage, and increased membrane density were observed in the injured spinal cord tissues. Scale bar, 2 μm. (C) Hematoxyling and eosinstaining of spinal cord tissues. Scale bars: upper, 100 μm; lower, 25 μm. (D) Cavity area of spinal cord tissues (n=3). (E) Protein levels of GPX4, PTGS2, Nrf2, and GCH1 in spinal cord tissues (n=3). (F) The reactive oxygen species (ROS)-positive rate in spinal cord tissues (n=3). (G) Levels of malonaldehyde (MDA) in spinal cord tissues (n=3). (H) The relative Fe2+ level in spinal cord tissues (n=3). GPX4, glutathione peroxidase 4; PTGS2, prostaglandin-endoperoxide synthase 2; Nrf2, NF-E2 related factor 2; GCH1, GTP cyclolase I. *p<0.05. **p<0.01. ***p<0.001.
Inhibition of Ferroptosis by Mesenchymal Stem Cell-Derived Exosomes in Acute Spinal Cord Injury: Role of Nrf2/GCH1/BH4 Axis
Gene Primer sequence
FTH1 Forward: 5′-CAGACCGTGATGACTGGGAG-3′
Reverse: 5′-CTCAATGAAGTCACATAAGTGGGG-3′
PTGS2 Forward: 5′-GCTTCAAACAGTTTCTCTACAACAA-3′
Reverse: 5′-CATTTCTTCCCCCAGCAAC-3′
SLC7A11 Forward: 5′-ATCTCCCCCAAGGGCATACT-3′
Reverse: 5′-GCATAGGACAGGGCTCCAAA-3′
Nrf2 Forward: 5′-GCAGCCATGACTGATTTAAGC-3′
Reverse: 5′-CAGCCAGCTGCTTGTTTTC-3′
GCH1 Forward: 5′-TGCTTACTCGTCCATTCTGC-3′
Reverse: 5′-CCTTCACAATCACCATCTCG-3′
GAPDH Forward: 5′-GTCTTCCTGGGCAAGCAGTA-3′
Reverse: 5′-CTGGACAGAAACCCCACTTC-3′
Table 1. Quantitative real-time polymerase chain reaction primers

FTH1, ferritin heavy chain 1; PTGS2, prostaglandin-endoperoxide synthase 2; SLC7A11, solute carrier family 7 member 11; Nrf2, NFE2 related factor 2; GCH1, GTP cyclolase I.