1.Loss-of-function of zebrafish cdt1 causes retarded body growth and underdeveloped gonads resembling human Meier-Gorlin syndrome.
Yinan HE ; Yong WANG ; Yanqing ZHU ; Li Jan LO
Journal of Zhejiang University. Science. B 2023;24(11):1037-1046
染色质许可和DNA复制因子1(Cdt1)是复制起始许可的主要调控因子,也是组成复制前复合物的核心成员。细胞通过依赖Cdt1的波动水平,且在每个周期中通过调节其总量以确保DNA仅复制一次。Cdt1功能缺陷会造成DNA过度复制,最终导致基因组不稳定。虽然酵母中cdt1和人类Meier-Gorlin综合征(MGS)患者中的CDT1已被广泛研究,但缺乏脊椎动物模型。我们发现在硬骨鱼类分支的几个鲤形目物种(包括斑马鱼)中,Cdt1蛋白在其N末端插入一段其他脊椎动物中没有的独特无序序列。通过分析在cdt1基因中携带移码缺失的遗传性斑马鱼突变体(命名为cdt1zju1 ),我们发现突变胚胎虽然几乎无任何早期胚胎表型异常,但成年突变斑马鱼却表现出侏儒症、生存能力降低的症状,以及性腺发育不全且不育。此外,我们同样发现除转录本cdt1-201外,斑马鱼还存在第二个cdt1转录本——cdt1-202,它是通过跳过外显子2产生,这在其他生物中暂无报道。有意思的是cdt1-202在cdt1-201纯合突变体中显著上调。上述研究结果表明,cdt1-202转录本可能可以补偿cdt1-201在早期发育过程中的功能损失,但不能补偿后期生长,这可支持斑马鱼作为研究人类MGS的遗传模型。
Animals
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Humans
;
Zebrafish
;
Growth Disorders
;
Cell Cycle Proteins
;
Gonads
2.Construction of fluorescent transgenic zebrafish Tg (ttn.2: EGFP).
Jiale CHEN ; Qiuxiang CAO ; Hui CAO ; Xiangding CHEN ; Yun DENG
Chinese Journal of Biotechnology 2023;39(4):1804-1814
In order to develop a transgenic zebrafish line with green fluorescent protein (enhanced green fluorescent protein, EGFP) expressed specifically in muscle and heart, the recombinant expression vector constructed using the zebrafish ttn.2 gene promoter fragment and EGFP gene coding sequence and the capped mRNA of Tol2 transposase were co-injected into the zebrafish 1-cell stage embryos. The stable genetic Tg (ttn.2: EGFP) transgenic zebrafish line was successfully developed by fluorescence detection, followed by genetic hybridization screening and molecular identification. Fluorescence signals and whole-mount in situ hybridization showed that EGFP expression was located in muscle and heart, the specificity of which was consistent with the expression of ttn.2 mRNA. Inverse PCR showed that EGFP was integrated into chromosomes 4 and 11 of zebrafish in No. 33 transgenic line, while integrated into chromosome 1 in No. 34 transgenic line. The successful construction of this fluorescent transgenic zebrafish line, Tg (ttn.2: EGFP), laid a foundation for the research of muscle and heart development and related diseases. In addition, the transgenic zebrafish lines with strong green fluorescence can also be used as a new ornamental fish.
Animals
;
Zebrafish/genetics*
;
Animals, Genetically Modified/genetics*
;
Green Fluorescent Proteins/metabolism*
;
Zebrafish Proteins/genetics*
;
Promoter Regions, Genetic
3.Kunxian Capsule Extract Inhibits Angiogenesis in Zebrafish Embryos via PI3K/AKT-MAPK-VEGF Pathway.
Rui-Jiao MA ; Maharajan KANNAN ; Qing XIA ; Shan-Shan ZHANG ; Peng-Fei TU ; Ke-Chun LIU ; Yun ZHANG
Chinese journal of integrative medicine 2023;29(2):137-145
OBJECTIVE:
To investigate the anti-angiogenic activity of Kunxian Capsule (KX) extract and explore the underlying molecular mechanism using zebrafish.
METHODS:
The KX extract was prepared with 5.0 g in 100 mL of 40% methanol followed by ultrasonication and freeze drying. Freeze dried KX extract of 10.00 mg was used as test stock solution. Triptolide and icariin, the key bioactive compounds of KX were analyzed using ultra-high performance liquid chromatography. The transgenic zebrafish Tg(flk1:GFP) embryos were dechorionated at 20-h post fertilization (hpf) and treated with PTK 787, and 3.5, 7, 14 and 21 µg/mL of KX extract, respectively. After 24-h post exposure (hpe), mortality and malformation (%), intersegmental vessels (ISV) formation, and mRNA expression level of angiogenic pathway genes including phosphoinositide 3-kinase (PI3K), protein kinase B (AKT), extracellular signal-regulated kinases (ERKs), mitogen-activated protein kinase (MAPK), vascular endothelial growth factor (VEGF) and fibroblast growth factor (FGF-2) were determined. Further, the embryos at 72 hpf were treated with KX extract to observe the development of sub-intestinal vein (SIV) after 24 hpe.
RESULTS:
The chromatographic analysis of test stock solution of KX extract showed that triptolide and icariin was found as 0.089 mg/g and 48.74 mg/g, respectively, which met the requirements of the national drug standards. In zebrafish larvae experiment, KX extract significantly inhibited the ISV (P<0.01) and SIV formation (P<0.05). Besides, the mRNA expression analysis showed that KX extract could significantly suppress the expressions of PI3K and AKT, thereby inhibiting the mRNA levels of ERKs and MAPK. Moreover, the downstream signaling cascade affected the expression of VEGF and its receptors (VEGFR and VEGFR-2). FGF-2, a strong angiogenic factor, was also down-regulated by KX treatment in zebrafish larvae.
CONCLUSION
KX extract exhibited anti-angiogenic effects in zebrafish embryos by regulating PI3K/AKT-MAPK-VEGF pathway and showed promising potential for RA treatment.
Animals
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Fibroblast Growth Factor 2
;
Human Umbilical Vein Endothelial Cells
;
Mitogen-Activated Protein Kinases/metabolism*
;
Phosphatidylinositol 3-Kinase
;
Phosphatidylinositol 3-Kinases/metabolism*
;
Proto-Oncogene Proteins c-akt/metabolism*
;
Vascular Endothelial Growth Factor A/metabolism*
;
Zebrafish
4.Improvement situation on indexes of the zebrafish disease model of non-alcoholic fatty liver disease with FGF21 analogues.
Xiao Xiao MI ; Jian YAN ; Jun Ping SHI
Chinese Journal of Hepatology 2023;31(7):742-749
Objective: To detect the therapeutic efficacy of FGF21 analogues on the zebrafish model of non-alcoholic fatty liver disease. Methods: A zebrafish model of non-alcoholic fatty liver disease was established by providing the normal diet fed to wild-type zebrafish three times daily. PF-05231023 was administered exogenously at a final concentration of 0.5 μmol/L. Body length, body weight, triglycerides, and other indexes were measured after 20 days. Pathological changes were evaluated in liver tissue sections by HE staining. Quantitative PCR was used to identify expressional changes in genes related to lipid metabolism, endoplasmic reticulum stress, and inflammation. Results: QPCR and immunofluorescence staining results showed that FGF21 was highly expressed in the zebrafish model group. The addition of the FGF21 analogue PF-05231023 significantly reduced the body length and body weight (P < 0.01), and the triglyceride content (P < 0.05) in the zebrafish model group. The liver HE staining results showed that PF-05231023 had alleviated the large and tiny bullae fat, lesions, and others in the zebrafish model group. The quantitative PCR results demonstrated that PF-05231023 reduced the expression of lipogenic factors (P < 0.01), inflammatory-related factors (P < 0.001), and genes related to endoplasmic reticulum stress (P < 0.05), but raised lipid-oxidation-related factors (P < 0.05) in the zebrafish model group. The addition of PF-05231023 reduced oleic acid-induced lipid and triglyceride levels in HepG2 cells. Conclusion: FGF21 analogue addition can improve indexes in the zebrafish disease model of non-alcoholic fatty liver disease.
Animals
;
Body Weight
;
Diet, High-Fat
;
Lipids
;
Liver/pathology*
;
Non-alcoholic Fatty Liver Disease/pathology*
;
Triglycerides/metabolism*
;
Zebrafish/metabolism*
;
Zebrafish Proteins
5.Establishment of a microtubule-fluorescent fusion protein mosaically labeled zebrafish motor neuron system.
Fang YUAN ; Pei-Pei QIAN ; Xin WANG ; Jia-Jing SHENG ; Dong LIU ; Jie GONG
Acta Physiologica Sinica 2022;74(3):411-418
Motor neurons are an important type of neurons that control movement. The transgenic fluorescent protein (FP)-labeled motor neurons of zebrafish line is disadvantageous for studying the morphogenesis of motor neurons. For example, the individual motor neuron is indistinguishable in this transgenic line due to the high density of the motor neurons and the interlaced synapses. In order to optimize the in vivo imaging methods for the analysis of motor neurons, the present study was aimed to establish a microtubule-fluorescent fusion protein mosaic system that can label motor neurons in zebrafish. Firstly, the promotor of mnx1, which was highly expressed in the spinal cord motor neurons, was subcloned into pDestTol2pA2 construct combined with the GFP-α-Tubulin fusion protein sequence by Gateway cloning technique. Then the recombinant constructs were co-injected with transposase mRNA into the 4-8 cell zebrafish embryos. Confocal imaging analysis was performed at 72 hours post fertilization (hpf). The results showed that the GFP fusion protein was expressed in three different types of motor neurons, and individual motor neurons were mosaically labeled. Further, the present study analyzed the correlation between the injection dose and the number and distribution of the mosaically labeled neurons. Fifteen nanograms of the recombinant constructs were suggested as an appropriate injection dose. Also, the defects of the motor neuron caused by the down-regulation of insm1a and kif15 were verified with this system. These results indicate that our novel microtubule-fluorescent fusion protein mosaic system can efficiently label motor neurons in zebrafish, which provides a more effective model for exploring the development and morphogenesis of motor neurons. It may also help to decipher the mechanisms underlying motor neuron disease and can be potentially utilized in drug screening.
Animals
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Animals, Genetically Modified
;
Green Fluorescent Proteins/pharmacology*
;
Microtubules/metabolism*
;
Motor Neurons
;
Zebrafish/genetics*
;
Zebrafish Proteins/genetics*
6.Bi-FoRe: an efficient bidirectional knockin strategy to generate pairwise conditional alleles with fluorescent indicators.
Bingzhou HAN ; Yage ZHANG ; Xuetong BI ; Yang ZHOU ; Christopher J KRUEGER ; Xinli HU ; Zuoyan ZHU ; Xiangjun TONG ; Bo ZHANG
Protein & Cell 2021;12(1):39-56
Gene expression labeling and conditional manipulation of gene function are important for elaborate dissection of gene function. However, contemporary generation of pairwise dual-function knockin alleles to achieve both conditional and geno-tagging effects with a single donor has not been reported. Here we first developed a strategy based on a flipping donor named FoRe to generate conditional knockout alleles coupled with fluorescent allele-labeling through NHEJ-mediated unidirectional targeted insertion in zebrafish facilitated by the CRISPR/Cas system. We demonstrated the feasibility of this strategy at sox10 and isl1 loci, and successfully achieved Cre-induced conditional knockout of target gene function and simultaneous switch of the fluorescent reporter, allowing generation of genetic mosaics for lineage tracing. We then improved the donor design enabling efficient one-step bidirectional knockin to generate paired positive and negative conditional alleles, both tagged with two different fluorescent reporters. By introducing Cre recombinase, these alleles could be used to achieve both conditional knockout and conditional gene restoration in parallel; furthermore, differential fluorescent labeling of the positive and negative alleles enables simple, early and efficient real-time discrimination of individual live embryos bearing different genotypes prior to the emergence of morphologically visible phenotypes. We named our improved donor as Bi-FoRe and demonstrated its feasibility at the sox10 locus. Furthermore, we eliminated the undesirable bacterial backbone in the donor using minicircle DNA technology. Our system could easily be expanded for other applications or to other organisms, and coupling fluorescent labeling of gene expression and conditional manipulation of gene function will provide unique opportunities to fully reveal the power of emerging single-cell sequencing technologies.
Alleles
;
Animals
;
CRISPR-Cas Systems
;
DNA End-Joining Repair
;
DNA, Circular/metabolism*
;
Embryo, Nonmammalian
;
Gene Editing/methods*
;
Gene Knock-In Techniques
;
Gene Knockout Techniques
;
Genes, Reporter
;
Genetic Loci
;
Genotyping Techniques
;
Green Fluorescent Proteins/metabolism*
;
Integrases/metabolism*
;
Luminescent Proteins/metabolism*
;
Mutagenesis, Insertional
;
Single-Cell Analysis
;
Zebrafish/metabolism*
7.Tripterygium wilfordii multiglycoside-induced hepatotoxicity via inflammation and apoptosis in zebrafish.
Xiu-Ying DUAN ; Rui-Jiao MA ; Chung-Der HSIAO ; Zhen-Zhou JIANG ; Lu-Yong ZHANG ; Yun ZHANG ; Ke-Chun LIU
Chinese Journal of Natural Medicines (English Ed.) 2021;19(10):750-757
Tripterygium wilfordii multiglycoside (GTW) is a commonly used compound for the treatment of rheumatoid arthritis (RA) and immune diseases in clinical practice. However, it can induce liver injury and the mechanism of hepatotoxicity is still not clear. This study was designed to investigate GTW-induced hepatotoxicity in zebrafish larvae and explore the mechanism involved. The 72 hpf (hours post fertilization) zebrafish larvae were administered with different concentrations of GTW for three days and their mortality, malformation rate, morphological changes in the liver, transaminase levels, and histopathological changes in the liver of zebrafish larvae were detected. The reverse transcription-polymerase chain reaction (RT-PCR) was used to examine the levels of microRNA-122 (miR-122) and genes related to inflammation, apoptosis, cell proliferation and liver function. The results showed that GTW increased the mortality of zebrafish larvae, while significant malformations and liver damage occurred. The main manifestations were elevated levels of alanine aminotransferase (ALT) and aspartate aminotransferase (AST), significant liver atrophy, vacuoles in liver tissue, sparse cytoplasm, and unclear hepatocyte contours. RT-PCR results showed that the expression of miR-122 significantly decreased by GTW; the mRNA levels of inflammation-related genes il1β, il6, tnfα, il10, cox2 and ptges significantly increased; the mRNA level of tgfβ significantly decreased; the mRNA levels of apoptosis-related genes, caspase-8 and caspase-9, significantly increased; the mRNA level of bcl2 significantly decreased; the mRNA levels of cell proliferation-related genes, top2α and uhrf1, significantly reduced; the mRNA levels of liver function-related genes, alr and cyp3c1, significantly increased; and the mRNA level of cyp3a65 significantly decreased. In zebrafish, GTW can cause increased inflammation, enhanced apoptosis, decreased cell proliferation, and abnormal expression of liver function-related genes, leading to abnormal liver structure and function and resulting in hepatotoxicity.
Animals
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Apoptosis
;
Chemical and Drug Induced Liver Injury/genetics*
;
Inflammation/genetics*
;
Trans-Activators
;
Tripterygium
;
Zebrafish/genetics*
;
Zebrafish Proteins
8.Expression optimization and molecular modification of heparin C5 epimerase.
Bingbing WANG ; Zhengxiong ZHOU ; Xuerong JIN ; Jianghua LI ; Zhongping SHI ; Zhen KANG
Chinese Journal of Biotechnology 2020;36(7):1450-1458
Heparin and heparan sulfate are a class of glycosaminoglycans for clinical anticoagulation. Heparosan N-sulfate-glucuronate 5-epimerase (C5, EC 5.1.3.17) is a critical modifying enzyme in the synthesis of heparin and heparan sulfate, and catalyzes the inversion of carboxyl group at position 5 on D-glucuronic acid (D-GlcA) of N-sulfoheparosan to form L-iduronic acid (L-IdoA). In this study, the heparin C5 epimerase gene Glce from zebrafish was expressed and molecularly modified in Escherichia coli. After comparing three expression vectors of pET-20b (+), pET-28a (+) and pCold Ⅲ, C5 activity reached the highest ((1 873.61±5.42) U/L) with the vector pCold Ⅲ. Then we fused the solution-promoting label SET2 at the N-terminal for increasing the soluble expression of C5. As a result, the soluble protein expression was increased by 50% compared with the control, and the enzyme activity reached (2 409±6.43) U/L. Based on this, site-directed mutations near the substrate binding pocket were performed through rational design, the optimal mutant (V153R) enzyme activity and specific enzyme activity were (5 804±5.63) U/L and (145.1±2.33) U/mg, respectively 2.41-fold and 2.28-fold of the original enzyme. Modification and expression optimization of heparin C5 epimerase has laid the foundation for heparin enzymatic catalytic biosynthesis.
Animals
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Carbohydrate Epimerases
;
biosynthesis
;
chemistry
;
genetics
;
Escherichia coli
;
Gene Expression
;
Heparin
;
metabolism
;
Heparitin Sulfate
;
metabolism
;
Iduronic Acid
;
metabolism
;
Zebrafish Proteins
;
biosynthesis
;
chemistry
;
genetics
9.Effect of dhfr gene overexpression on ethanol-induced abnormal cardiovascular development in zebrafish embryos.
Shu-Na SUN ; Qiu JIANG ; Ding LU ; Yong-Hao GUI
Chinese Journal of Contemporary Pediatrics 2020;22(8):916-922
OBJECTIVE:
To study the effect of dhfr gene overexpression on ethanol-induced abnormal cardiac and vascular development in zebrafish embryos and underlying mechanisms.
METHODS:
dhfr mRNA was transcribed in vitro and microinjected into zebrafish fertilized eggs to induce the overexpression of dhfr gene, and the efficiency of overexpression was verified. Wild-type zebrafish were divided into a control group, an ethanol group, and an ethanol+dhfr overexpression group (microinjection of 6 nL dhfr mRNA). The embryonic development was observed for each group. The transgenic zebrafish Tg (cmlc2:mcherry) with heart-specific red fluorescence was used to observe atrial and ventricular development. Fluorescence microscopy was performed to observe the development of cardiac outflow tract and blood vessels. Heart rate and ventricular shortening fraction were used to assess cardiac function. Gene probes were constructed, and embryo in situ hybridization and real-time PCR were used to measure the expression of nkx2.5, tbx1, and flk-1 in the embryo.
RESULTS:
Compared with the ethanol group, the ethanol+dhfr overexpression group had a significant reduction in the percentage of abnormal embryonic development and a significant increase in the percentage of embryonic survival (P<0.05), with significant improvements in the abnormalities of the atrium, ventricle, outflow tract, and blood vessels and cardiac function. Compared with the control group, the ethanol group had significant reductions in the expression of nkx2.5, tbx1, and flk-1 (P<0.05), and compared with the ethanol group, the ethanol+dhfr overexpression group had significant increases in the expression of nkx2.5, tbx1, and flk-1 (P<0.05), which were still lower than their expression in the control group.
CONCLUSIONS
The overexpression of the dhfr gene can partially improve the abnormal development of embryonic heart and blood vessels induced by ethanol, possibly by upregulating the decreased expression of nkx2.5, tbx1, and flk-1 caused by ethanol.
Animals
;
Ethanol
;
Gene Expression Regulation, Developmental
;
Heart
;
Heart Ventricles
;
Zebrafish
;
Zebrafish Proteins

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