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Giardia intraflagellar transport protein 88 is involved in flagella formation
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Original Article

Giardia intraflagellar transport protein 88 is involved in flagella formation

Parasites, Hosts and Diseases 2025;63(1):12-24.
Published online: February 25, 2025

Department of Tropical Medicine, Institute of Tropical Medicine, Yonsei University College of Medicine, Seoul 03722, Korea

*Correspondence: (jk, zhuri@yuhs.ac; sjp, sjpark615@yuhs.ac)
• Received: August 30, 2024   • Accepted: December 31, 2024

© 2025 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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  • Identification and confirmation of SUMOylation-modified proteins in Giardia trophozoites
    Hye Rim Yeo, Mee Young Shin, Juri Kim, Soon-Jung Park
    Parasites, Hosts and Diseases.2025; 63(3): 264.     CrossRef

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Giardia intraflagellar transport protein 88 is involved in flagella formation
Parasites Hosts Dis. 2025;63(1):12-24.   Published online February 25, 2025
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Giardia intraflagellar transport protein 88 is involved in flagella formation
Parasites Hosts Dis. 2025;63(1):12-24.   Published online February 25, 2025
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Giardia intraflagellar transport protein 88 is involved in flagella formation
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Fig. 1 A schematic strategy and confirmation of the integration of intraflagellar transport (ift)-mNeonGreen (mNG) genes into Giardia genomic DNA (gDNA). (A) A schematic diagram of the construct of a full-length ift gene fused with an mNG tag based on a neomycin resistance cassette-containing plasmid. Pift, the promoter of each ift; α-tub 3′ UTR, 3′ untranslated region of Giardia α-tubulin (GL508003_103676); Pggir, the promoter region of Giardia giardin gene; gdh 3′ UTR, 3′ untranslated region of Giardia glutamate dehydrogenase (GL50803_21942); R, resistance. The open reading frame number of the IFTs for construct is as follows: 2 IFT-A components, IFT121 (GL508003_87817) and IFT140 (GL50803_17251), 5 IFT-B components, IFT20 (GL50803_3581), IFT46 (GL50803_7664), IFT52 (GL50803_0040995), IFT81 (GL50803_15428), and IFT88 (GL50803_0016660), 2 motor-related proteins, kinesin-2b (Kin-2b, GL50803_16456), kinesin-13 (Kin-13, GL50803_16945). The arrow indicates the enzyme site in each mNG-tagged construct to make a linearized form. (B) As schematic diagram of the incorporation of the ift-mNG gene into endogenous gDNA via homologues recombination. Arrows indicate the positions of primers used to confirm the integration of the constructs. The primer specific to each ift gene was designed as a forward primer, and then used along a reverse primer annealing to the neomycin resistance gene. (C) PCR analysis of IFT complex A-related genes: Lane 1, 1 kb DNA ladder; Lane 2 and 4, WB gDNA; Lane 3, IFT121-mNG gDNA; Lane 4, IFT140-mNG gDNA. (D) PCR analysis of IFT complex B-related genes: Lane 1, 1 kb DNA ladder; Lane 2, 4, 6, 8, and 10, WB gDNA; Lane 3, IFT20-mNG gDNA; Lane 5, IFT46-mNG gDNA; Lane 7, IFT52-mNG gDNA; Lane9, IFT81-mNG gDNA; Lane 11, IFT88-mNG gDNA. (E) PCR analysis of motor protein genes: Lane 1, 1Kb DNA ladder; Lane 2 and 4, WB gDNA; Lane 3, Kin-2b-mNG gDNA; Lane 5, Kin-13-mNG gDNA. Arrows indicate PCR products expected to be amplified from the mNG-tagged genes. Asterisks indicate a nonspecific PCR product.
Fig. 2 Localization of mNeonGreen (mNG)-tagged intraflagellar transport (IFT) complex proteins in Giardia trophozoites. (A) Illustration of Giardia trophozoite. The cell has 2 nuclei (blue), an adhesive disc (dark gray), and 4 pairs of flagella; anterior, posterolateral, ventral, and caudal. The red dots in the cartoon indicate the flagellar pores. The localization of IFT complex proteins was observed on the fixed cells using fluorescence microscopy. (B) Localization of the IFT complex A-components, IFT121- and IFT140-mNG proteins. (C) Localization of the IFT complex B-components, IFT20-, 46-, 52-, 81-, and 88-mNG proteins. (D) Localization of the motor proteins, kinesin-13 and kinesin-2b. All scale bars are 5 μm.
Fig. 3 CRISPRi-mediated IFT88 knockdown (KD) altered Giardia flagellar length. (A) IFT88 KD was confirmed by quantitative real-time PCR. The gene expression of ift88 in the IFT88 KD cells (gray bar) was compared with the nonspecific guide RNA-expressing cells (closed bar). IFT88 expression was normalized to that of actin expression in the same cells. (B) Effect of IFT88 KD on lengths of 4 pairs of flagella, designated anterior (AF), posterolateral (PF), ventral (VF), and caudal (CF). Both IFT88 KD (gray bars) and control cells (closed bars) were stained with Giemsa solution and scored for flagellar length. At least 35 cells were analyzed for each strain. Data are presented as the mean of 3 independent experiments. In all panels, error bars represent 95% confidence intervals, and significance was assessed using Student t-test. **P<0.01 and ***P<0.0001.
Fig. 4 CRISPRi-mediated kinesin-2b knockdown (KD) caused alteration of Giardia flagellar length. (A) Determination of kinesin-2b mRNA level in kinesin-2b KD cells (open bars) and control cells (closed bars) by quantitative real-time PCR. The expression of kinesin-2b transcript was normalized to that of Giardia actin. (B) Effect of kinesin-2b KD on flagellar length of anterior (AF), posterolateral (PF), ventral (VF), and caudal flagella (CF). Control (closed bars) and kinesin-2b KD cells (open bars) were stained with Giemsa solution. At least 35 cells were analyzed for each group. Data are presented as the mean of 3 independent experiments. Student t-test, **P<0.01.
Fig. 5 IFT88 accumulates in flagella pore (FP) region. (A) Live-cell imaging of Giardia trophozoites expressing IFT88-mNeonGreen. Live-cell imaging was recorded for 140 sec (Supplementary Video S1). Video was recorded at 1 frame per second and played at 20×increased speeds. Time is indicated in the upper left corner. (B) Time-series images were presented at approximately 30 sec intervals (0, 31, 63, 93, 121, and 140 sec). Time is indicated in the upper left corner. IFT88-mNeonGreen was observed mainly in posterolateral and ventral cytoplasmic axonemal regions and accumulated in 8 FP regions of the Giardia cells. Arrows indicate 8 FPs, and arrowheads indicate posterolateral cytoplasmic axonemes. Scale bar=5 μm.
Giardia intraflagellar transport protein 88 is involved in flagella formation