1.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
2.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
;
Animals, Genetically Modified
;
Green Fluorescent Proteins/pharmacology*
;
Microtubules/metabolism*
;
Motor Neurons
;
Zebrafish/genetics*
;
Zebrafish Proteins/genetics*
3.Preparation of transgenic Musca domestica by microinjection method.
Lanchen WANG ; Yang YANG ; Xiaoli SHANG ; Bing WANG ; Lin YUAN ; Guiming ZHU
Chinese Journal of Biotechnology 2021;37(2):655-662
The transposon vector containing enhanced green fluorescent protein (EGFP) was injected into early housefly (Musca domestica L.) eggs by microinjection method to realize stable gene expression in vivo for verification, and to study housefly gene function. A borosilicate glass micro injection needle suitable for microinjection of housefly eggs was made, the softening treatment conditions of housefly egg shells were explored, and a microinjection technology platform suitable for housefly was constructed with a high-precision microsyringe Nanoject Ⅲ as the main body. The recombinant plasmid PiggyBac-[3×P3]-EGFP containing the eye-specific 3×P3 promoter and EGFP and the stable genetic expression helper plasmid pHA3pig helper were microinjected into the treated housefly eggs. After emergence, the eye luminescence was observed, and the expression and transcription level of EGFP were detected. The results showed that the normal hatching rate of housefly eggs was 55% when rinsed in bleaching water for 35 s. The hardness of the egg shell treated for 35 s was suitable for injection and the injection needle was not easy to break. About 3% of the emerged housefly eyes had green fluorescence. Through further molecular detection, EGFP specific fragments with a size of 750 bp were amplified from DNA and RNA of housefly. Through the technical platform, the stable expression of reporter genes in housefly can be conveniently and effectively realized, and a bioreactor with housefly as the main body can be established, which provides certain reference value for subsequent research on housefly gene function.
Animals
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Animals, Genetically Modified
;
Gene Expression
;
Genes, Reporter
;
Green Fluorescent Proteins/genetics*
;
Houseflies/genetics*
;
Microinjections
4.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
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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*
5.Cooperation-based sperm clusters mediate sperm oviduct entry and fertilization.
Yongcun QU ; Qi CHEN ; Shanshan GUO ; Chiyuan MA ; Yonggang LU ; Junchao SHI ; Shichao LIU ; Tong ZHOU ; Taichi NODA ; Jingjing QIAN ; Liwen ZHANG ; Xili ZHU ; Xiaohua LEI ; Yujing CAO ; Wei LI ; Wei LI ; Nicolas PLACHTA ; Martin M MATZUK ; Masahito IKAWA ; Enkui DUAN ; Ying ZHANG ; Hongmei WANG
Protein & Cell 2021;12(10):810-817
Animals
;
Antigens, Surface/genetics*
;
Cell Communication/genetics*
;
Copulation/physiology*
;
Fallopian Tubes/metabolism*
;
Female
;
Fertilization/genetics*
;
GPI-Linked Proteins/genetics*
;
Gene Expression Regulation
;
Genes, Reporter
;
Green Fluorescent Proteins/metabolism*
;
Litter Size
;
Luminescent Proteins/metabolism*
;
Male
;
Mice
;
Mice, Inbred C57BL
;
Mice, Knockout
;
Mitochondria/metabolism*
;
Reproduction/genetics*
;
Signal Transduction
;
Sperm Count
;
Sperm Motility/genetics*
;
Spermatozoa/metabolism*
;
Uterus/metabolism*
6.Development of a purification tag to produce thermostable fused protein.
Weixin ZHAO ; Song LIU ; Liming LIU ; Jian CHEN ; Guocheng DU
Chinese Journal of Biotechnology 2019;35(4):626-635
Self-assembling amphipathic peptides (SAPs) have alternating hydrophilic and hydrophobic residues and can affect the thermal stabilities and catalytic properties of the fused enzymes. In this study, a novel multifunctional tag, S1vw (HNANARARHNANARARHNANARARHNARARAR) was developed to modify fused enzymes. After fusing S1vw at the enzymes/proteins N-terminus through a PT-linker, the crude enzymatic activities of polygalacturonate lyase and lipoxygenase were enhanced 3.1- and 1.89-fold, respectively, compared to the wild-type proteins. The relative fluorescence intensity of the green fluorescent protein was enhanced 16.22-fold. All the three S1vw fusions could be purified by nickel column with high purities and acceptable recovery rates. Moreover, S1vw also induced the thermostabilities enhancement of the fusions, with polygalacturonate lyase and lipoxygenase fusions exhibiting 2.16- and 3.2-fold increase compared with the corresponding wild-type, respectively. In addition, S1vw could enhance the production yield of green fluorescent protein in Escherichia coli and Bacillus subtilis while the production of GFP and its S1vw fusion changed slightly in Pichia pastoris. These results indicated that S1vw could be used as a multifunctional tag to benefit the production, thermal stability and purification of the fusion protein in prokaryotic expression system.
Escherichia coli
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Green Fluorescent Proteins
;
Hydrophobic and Hydrophilic Interactions
;
Peptides
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Pichia
;
Recombinant Fusion Proteins
;
metabolism
7.Establishment of STO Cell Lines Expressing Green Fluorescent Protein and Mouse Leukemia Inhibitory Factor.
Chuan-Miao LIU ; Hong-Jun LI ; Tian-Hua YANG ; Xiao-Huai YANG ; Zheng-Hong LI ; Yong-Hai LI
Journal of Experimental Hematology 2019;27(2):606-612
OBJECTIVE:
To establish the STO cell lines expressing green fluorescent protein (GFP) and mouse leukemia inhibitory factor (LIF) , and try to culture the mouse embryonic stem cells (mESCs) by using the established STO-GFP-mLIF cells as the feeder layer.
METHODS:
The lentiviral particles containing GFP and mLIF and puromycin-resistance gene were constructed and transduced into STO cell lines. The cell lines stably expressing GFP and mLIF genes were screened out. The expression level of the inserted exogenous LIF gene was tested by Western blot and ELISA. The STO-GFP-mLIF cells were treated with different concentrations of mitomycin C (5, 10, 15, 20 µg/ml) for different time (1.5, 2.5, 3, 3.5 hours) to prepare feeder layers and the cell proliferation level on feeder layer was observed. Mouse embryonic stem cells were cultured on mitomycin C-treated feeder layer and the growth of cell colonies was observed.
RESULTS:
The expression level of LIF protein in STO-GFP-mLIF cells was up-regulated, as compared with STO cells (P<0.05). It was confirmed that the optimal concentration and time for inhibiting the proliferetion of STO-GFP-mLIF cells by mitomycin C were 10 µg/ml and 3 hours respectively. The observation also found that the embryonic stem cells could develop into typic "birdnest" shaped stem cell colony on mitomycin C-treated feeder layer.
CONCLUSION
The stable STO cell lines effectively expressing green fluorescent protein and mouse leukemia inhibitory factor have been established successfully, which can maintain the undifferentiated state of mouse embryonic stem cells.
Animals
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Cell Differentiation
;
Cell Line
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Cell Separation
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Embryonic Stem Cells
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Feeder Cells
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Green Fluorescent Proteins
;
Leukemia Inhibitory Factor
;
Mice
8.Inhibition of autophagy suppresses osteogenic differentiation of stem cells from apical papilla.
Ying HUANG ; Huacui XIONG ; Ke CHEN ; Xiaobin ZHU ; Xiaoping YIN ; Yun LIANG ; Wei LUO ; Qiyin LEI
Journal of Southern Medical University 2019;39(1):106-112
OBJECTIVE:
To investigate the effects of autophagy on osteogenic differentiation of stem cells from the apical papilla (SCAPs) in the presence of tumor necrosis factor- (TNF-) stimulation .
METHODS:
SCAPs treated with TNF- (0, 5, and 10 ng/mL) with or without 5 mmol/L 3-MA were examined for the expression of autophagy marker LC3-Ⅱ using Western blotting. The cells were transfected with GFP-LC3 plasmid and fluorescence microscopy was used for quantitative analysis of intracellular GFP-LC3; AO staining was used to detect the acidic vesicles in the cells. The cell viability was assessed with CCK-8 assays and the cell apoptosis rate was analyzed using flow cytometry. The cells treated with TNF- or with TNF- and 3-MA were cultured in osteogenic differentiation medium for 3 to 14 days, and real- time PCR was used to detect the mRNA expressions of osteogenesis-related genes (ALP, BSP, and OCN) for evaluating the cell differentiation.
RESULTS:
TNF- induced activation of autophagy in cultured SCAPs. Pharmacological inhibition of TNF--induced autophagy by 3-MA significantly decreased the cell viability and increased the apoptosis rate of SCAPs ( < 0.05). Compared with the cells treated with TNF- alone, the cells treated with both TNF- and 3-MA exhibited decreased expressions of the ALP and BSP mRNA on days 3, 7 and 14 during osteogenic induction ( < 0.05) and decreased expression of OCN mRNA on days 3 and 7 during the induction ( < 0.05).
CONCLUSIONS
Autophagy may play an important role during the osteogenic differentiation of SCAPs in the presence of TNF- stimulation.
Autophagy
;
drug effects
;
physiology
;
Cell Differentiation
;
drug effects
;
physiology
;
Cell Survival
;
drug effects
;
Cells, Cultured
;
Dental Papilla
;
cytology
;
Green Fluorescent Proteins
;
Humans
;
Osteogenesis
;
physiology
;
Stem Cells
;
drug effects
;
physiology
;
Transfection
;
Tumor Necrosis Factor-alpha
;
administration & dosage
;
antagonists & inhibitors
;
pharmacology
9.Comparative study on infection rate of different adeno-associated virus for knee joint cartilage in mice.
Jia-Ming HU ; Quan CHEN ; Jin-Yi ZHOU ; Jin-Ting WU ; Huan YU ; Fang-da FU ; Hong-Feng RUAN ; Lu-Wei XIAO ; Cheng-Liang WU ; Pei-Jian TONG
China Journal of Orthopaedics and Traumatology 2019;32(8):750-755
OBJECTIVE:
To explore infection rate of different adeno-associated virus (AAV) on knee joint cartilage in mice and to find a good gene editing tool for mice chondrocytes of knee joint.
METHODS:
Forty-five 4-week-old SPF C57BL/6 weighed(14.3±0.2) g were selected. According to different injections(6 μl) for right knee joint, mice were divided into 9 different groups, 5 mice in each group. The groups were such as following:control group (normal saline), Vigene 2 group (AAV2 from vigene biosciences, titer for 1×10¹³ vg/ml), Vigene 5 group (AAV5 from vigene biosciences, titer for 1×10¹³ vg/ml), Vigene 6 group (AAV6 from vigene biosciences, titer for 1×10¹³ vg/ml), Vigene 7 group (AAV7 from vigene biosciences, titer for 1×10¹³ vg/ml), Vigene 8 group (AAV8 from vigene biosciences, titer for 1×10¹³ vg/ml), Vigene 9 group (AAV9 from vigene biosciences, titer for 1×10¹³ vg/ml), Hanbio DJ group(AAV2-DJ from Hanbio, titer for 1×10¹² vg/ml), Hanbio 5 group (AAV5 from Hanbio, titer for 1×10¹² vg/ml). All AAVs were over-expressed green fluorescent protein(GFP). Knee joint specimens were taken and observed injury of cartilage under stereomicroscope at 30 days after injection, then 10 μm thick frozen sections were prepared. Distribution of green fluorescent protein of meniscus and cartilage of knee joint was observed under fluorescence microscope.
RESULTS:
Stereomicroscope observation indicated that no obvious lesion was observed in knee joint cartilage of mice after intra-articular injection of AAV. According to frozen sections of knee joints, strong green fluorescence was observed in knee joint cartilage in all AAV experimental groups. Compared with other groups, significantly stronger green fluorescence were observed both in AAV2 and AAV7 groups, whose average fluorescence density was 0.077±0.020 and 0.061±0.022. There were significant differences between two groups and other groups.
CONCLUSIONS
AAV could infect chondrocyte of knee joint in vivo by injecting into knee joint cavity. Higher infection efficiency of AAV2 and AAV7 on knee joint cartilage were observed. Local injection of AAV into knee joint cavity could be used as an effective tool for gene editing of knee joint chondrocyte.
Animals
;
Cartilage
;
Dependovirus
;
Green Fluorescent Proteins
;
Knee Joint
;
Mice
;
Mice, Inbred C57BL
10.Rapid and Sparse Labeling of Neurons Based on the Mutant Virus-Like Particle of Semliki Forest Virus.
Fan JIA ; Xutao ZHU ; Pei LV ; Liang HU ; Qing LIU ; Sen JIN ; Fuqiang XU
Neuroscience Bulletin 2019;35(3):378-388
Sparse labeling of neurons contributes to uncovering their morphology, and rapid expression of a fluorescent protein reduces the experiment range. To achieve the goal of rapid and sparse labeling of neurons in vivo, we established a rapid method for depicting the fine structure of neurons at 24 h post-infection based on a mutant virus-like particle of Semliki Forest virus. Approximately 0.014 fluorescent focus-forming units of the mutant virus-like particle transferred enhanced green fluorescent protein into neurons in vivo, and its affinity for neurons in vivo was stronger than for neurons in vitro and BHK21 (baby hamster kidney) cells. Collectively, the mutant virus-like particle provides a robust and convenient way to reveal the fine structure of neurons and is expected to be a helper virus for combining with other tools to determine their connectivity. Our work adds a new tool to the approaches for rapid and sparse labeling of neurons in vivo.
Animals
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Cells, Cultured
;
Gene Expression
;
Genetic Vectors
;
genetics
;
metabolism
;
Green Fluorescent Proteins
;
genetics
;
metabolism
;
Immunohistochemistry
;
methods
;
Male
;
Mice, Inbred C57BL
;
Microscopy, Fluorescence
;
methods
;
Neurons
;
cytology
;
metabolism
;
Purkinje Cells
;
cytology
;
metabolism
;
Semliki forest virus
;
genetics

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