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The anti-amoebic activity of Pinus densiflora leaf extract against the brain-eating amoeba Naegleria fowleri
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Original Article

The anti-amoebic activity of Pinus densiflora leaf extract against the brain-eating amoeba Naegleria fowleri

Parasites, Hosts and Diseases 2024;62(2):169-179.
Published online: May 31, 2024

1Department of Parasitology and Tropical Medicine, Institute of Health Science, Gyeongsang National University College of Medicine, Jinju 52727, Korea

2Department of Convergence Medical Science, Gyeongsang National University, Jinju 52727, Korea

3Department of Biomedical Science, Chosun University, Gwangju 61453, Korea

4Institute of Well-Aging Medicare, Chosun University, Gwangju 61452, Korea

*Correspondence (bkna@gnu.ac.kr)
• Received: October 16, 2023   • Accepted: February 14, 2024

© 2024 The Korean Society for Parasitology and Tropical Medicine

This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (https://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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Citations

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  • A xanthone O-glucoside isolated from Iris setosa Pall. ex Link exhibits promising anti-amoebic activity against the brain-eating amoeba Naegleria fowleri
    Hương Giang Lê, Buyng Su Hwang, Ji-Su Choi, Yong Tae Jeong, Tuấn Cường Võ, Minkyoung Cho, Yeonchul Hong, Jeong Ho Kim, Young Taek Oh, Byoung-Kuk Na
    Phytomedicine.2025; 147: 157199.     CrossRef
  • From nose to neurons: The lethal journey of the brain-eating amoeba Naegleria fowleri
    Arindam Mitra, Débora Brito Goulart
    The Microbe.2025; 8: 100537.     CrossRef

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The anti-amoebic activity of Pinus densiflora leaf extract against the brain-eating amoeba Naegleria fowleri
Parasites Hosts Dis. 2024;62(2):169-179.   Published online May 27, 2024
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The anti-amoebic activity of Pinus densiflora leaf extract against the brain-eating amoeba Naegleria fowleri
Parasites Hosts Dis. 2024;62(2):169-179.   Published online May 27, 2024
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The anti-amoebic activity of Pinus densiflora leaf extract against the brain-eating amoeba Naegleria fowleri
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Fig. 1 Anti-amoebic activity of PLE on N. fowleri trophozoites. (A) Morphological change. Treatment with PLE (500 or 1,000 μg/ml) for 48 h induced significant morphological changes in N. fowleri trophozoites. (B) Viability. Different concentrations of PLE (0 to 1,000 μg/ml) were added to N. fowleri trophozoites or C6 cells and incubated for 48 h. PLE caused a remarkable reduction in the viability of N. fowleri trophozoites with an IC50 value of 62.33±0.95 μg/ml. However, it did not significantly affect the viability of the C6 glial cells. The viability of the amoebae and C6 cells is presented as a percentage relative to the negative controls (not treated with PLE). The results are presented as the mean and standard deviation (error bar) from 3 independent assays. *P<0.01, **P<0.001, ***P<0.0001.
Fig. 2 Transmission electron microscopy (TEM) analysis of N. fowleri trophozoites treated with PLE. Naeglaria fowleri trophozoites treated with PLE (500 μg/ml) for 24 h and 48 h showed remarkable ultrastructural morphological changes. Red circles indicate putative apoptotic bodies. Blebs (blue arrowheads). Autophagy-like vacuoles (yellow arrowheads). Magnification, 6,000× or 10,000×. CV, contractile vacuoles; M, mitochondria; N, nucleus.
Fig. 3 DEGs in the PLE-treated and non-treated N. fowleri. (A) MA plot for the DEGs. The red crosses represent significantly upregulated or downregulated genes, and the black spots indicate the non-DEGs. Pink spots represent DEGs, but they were not statistically significant. (B) DEG expression pattern. RNA-seq analysis revealed 5,846 DEGs (2,189 upregulated and 3,657 downregulated) in the PLE-treated N. fowleri. (C) Gene ontology (GO) analysis. The top 11 significantly enriched GO terms of the target genes were related to biological processes, cellular components, and molecular function.
Fig. 4 Semi-quantitative RT-PCR. The expression levels of genes encoding N. fowleri Kelch repeat protein (NF0105540), attractin-like protein 1 (ATRNL1; NF0044360), NADH azoreductase (NF0044710), and pyridoxine 5-phosphate oxidase (NF0073400) were comparatively analyzed in the PLE-treated and non-treated N. fowleri. Glyceraldehyde-3-phosphate dehydrogenase (GAPDH) was amplified as an internal control.
The anti-amoebic activity of Pinus densiflora leaf extract against the brain-eating amoeba Naegleria fowleri

Top 20 up-regulated and down-regulated DEGs in PLE-treated N. fowleri

Gene Gene ID log2 (FC)
Up-regulation
 Succinate dehydrogenase NF0040010 8.58
 Unspecified product NF0132120 7.31
 Unspecified product NF0114330 7.11
 Unspecified product NF0041760 7.05
 Unspecified product NF0004850 6.74
 Kelch repeat protein NF0105540 6.56
 WD-40 repeat-containing protein NF0076760 6.40
 NADH azoreductase NF0044710 6.40
 Alkane 1-monooxygenase NF0077100 6.35
 Serine protease family NF0106810 6.29
 PX domain-containing protein kinase-like protein NF0059050 6.25
 Unspecified product NF0015450 6.08
 Unspecified product NF0002010 6.05
 Attractin-like protein 1 (ATRNL1) NF0044360 6.05
 Predicted protein NF0007650 5.95
 Unspecified product NF0043100 5.91
 Predicted protein NF0011170 5.82
 NADP-dependent oxidoreductase NF0072900 5.64
 Unspecified product NF0045970 5.61
 Unspecified product NF0127400 5.41

Down-regulation
 Hemerythrin-like metal-binding protein NF0127030 −9.79
 Predicted protein NF0115530 −8.32
 Dynein heavy chain NF0014710 −7.97
 Nucleolar basal body binding protein bn46 51 small subunit NF0104690 −7.87
 Unspecified product NF0013060 −7.59
 Unspecified product NF0121520 −7.40
 Unspecified product NF0092320 −7.30
 PB1 domain containing protein NF0081890 −7.28
 Transforming protein NF0112230 −7.28
 Ankyrin repeat domain protein NF0110610 −7.19
 Predicted protein NF0107550 −7.06
 Synaptobrevin vesicle-associated membrane protein (VAMP) NF0078380 −7.03
 PB1 domain containing protein NF0050000 −6.99
 Predicted protein NF0079120 −6.93
 Dynein gamma flagellar outer arm NF0014700 −6.89
 Predicted protein NF0061820 −6.84
 Membrane protein NF0031290 −6.84
 Predicted protein NF0034030 −6.78
 Hypothetical protein NF0059600 −6.75
 Pyridoxine 5-phosphate oxidase NF0073400 −6.66
 Unspecified product NF0035330 −6.66
Table 1 Top 20 up-regulated and down-regulated DEGs in PLE-treated N. fowleri