1.Cloning and gene expression of sall4b gene in pig.
Xinmiao ZHANG ; Xiaojiao HAN ; Wenteng HE ; Shichao LIU ; Yanshuang MU ; Kui HU ; Zhonghua LIU
Chinese Journal of Biotechnology 2012;28(10):1164-1174
Sall4, a member of sall4 gene family, plays important roles in embryo development; organogenesis as well as pluripotency maintenance and re-establishment. There are two isoforms of Sall4, Sall4A and Sall4B. The sequence of porcine sall4 gene is still not reported. Because of its distinct role in maintaining the pluripotent state of stem cells, we cloned and sequenced porcine sall4 gene and assessed its expression in pig tissues and embryos. One 2 372 bp nucleotide sequence representing the full-length cDNA of pig sall4 was obtained by 5'and 3'RACE. Analyses of putative protein sequence showed a 70% to 80% identity with isoform Sall4B of human and mouse. Comparing with Sall4A, the identity reduced to 30% to 55% because of the loss of a zinc-finger domain-rich fragment. Assessment of sall4b expression in porcine tissues by Real-time PCR showed that it expressed most strongly in ovary and stronger in spleen, lung, heart and testis. For preimplantation embryos, the expression level was lower in 4-cell embryos compared with other stages. Immuno-fluorescence analysis of Sall4 on porcine preimplantation embryos indicated that it expressed in all the preimplantation embryos and located in nucleus, in blastocyst it preferentially limited in ICM cells. Expression pattern in early embryos suggest that pig sall4b is associated with pluripotency and might be a new and useful reprogramming factor for establishing pig induced pluripotent stem cell lines.
Amino Acid Sequence
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Animals
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Base Sequence
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Cloning, Molecular
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DNA-Binding Proteins
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genetics
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Embryonic Development
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genetics
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Female
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Gene Expression Regulation, Developmental
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Humans
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Mice
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Molecular Sequence Data
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Ovary
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metabolism
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Swine
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embryology
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genetics
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metabolism
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Transcription Factors
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genetics
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Transcription, Genetic
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physiology
2.Porcine VHL gene cloning and construction of VHL knockdown cloned embryos.
Honghong JIN ; Jianyu WANG ; Fang WANG ; Jing MA ; Yanshuang MU ; Zhonghua LIU
Chinese Journal of Biotechnology 2013;29(6):716-725
Von Hippel-Lindau (VHL) disease is an autosomal dominant disorder and its clinical manifestation including haemangioblastomas of the central nervous system, renal cell carcinoma, haeochromocytomas, and pancreatic cyst. The deletion, mutation and promoter methylation of VHL gene can cause VHL disease. Swine is considered as an ideal model for human disease because of its physiological and anatomical similarity to human. We cloned pig VHL gene that is 2 725 bp in length. VHL highly expressed in adrenal gland, liver, pancreas, heart and testis. We designed 5 shRNAs and screened the most effective interference RNA fragment with a knockdown efficiency of 72%. Porcine embryonic fibroblasts stably transfected with pGenesil-shRNA vector were used as donor cells for nuclear transfer and there was no significant difference of embryo development compared with the control group. Moreover, VHL was efficiently knocked-down with efficiency of 71% in porcine cloned blastocyst, these results lay a solid foundation for constructing the VHL knock-down model of pig.
Animals
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Cloning, Molecular
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Disease Models, Animal
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Embryo, Mammalian
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Gene Knockdown Techniques
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Swine
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Von Hippel-Lindau Tumor Suppressor Protein
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genetics
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von Hippel-Lindau Disease
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genetics
3.Exploring differentially expressed genes related to metabolism by RNASeq in porcine embryonic fibroblast after insulin treatment
Yingjuan LIANG ; Jinpeng WANG ; Xinyu LI ; Shuang WU ; Chaoqian JIANG ; Yue WANG ; Xuechun LI ; Zhong-Hua LIU ; Yanshuang MU
Journal of Veterinary Science 2022;23(6):e90-
Background:
Insulin regulates glucose homeostasis and has important effects on metabolism, cell growth, and differentiation. Depending on the cell type and physiological context, insulin signal has specific pathways and biological outcomes in different tissues and cells. For studying the signal pathway of insulin on glycolipid metabolism in porcine embryonic fibroblast (PEF), we used high-throughput sequencing to monitor gene expression patterns regulated by insulin.
Objectives:
The goal of our research was to see how insulin affected glucose and lipid metabolism in PEFs.
Methods:
We cultured the PEFs with the addition of insulin and sampled them at 0, 48, and 72 h for RNA-Seq analysis in triplicate for each time point.
Results:
At 48 and 72 h, 801 and 1,176 genes were differentially expressed, respectively. Of these, 272 up-regulated genes and 264 down-regulated genes were common to both time points. Gene Ontology analysis was used to annotate the functions of the differentially expressed genes (DEGs), the biological processes related to lipid metabolism and cell cycle were dominant. And the DEGs were significantly enriched in interleukin-17 signaling pathway, phosphatidylinositol-3-kinase-protein kinase B signaling pathway, pyruvate metabolism, and others pathways related to lipid metabolism by Kyoto Encyclopedia of Genes and Genomes enrichment analysis.
Conclusions
These results elucidate the transcriptomic response to insulin in PEF. The genes and pathways involved in the transcriptome mechanisms provide useful information for further research into the complicated molecular processes of insulin in PEF.
4.The length of guide RNA and target DNA heteroduplex effects on CRISPR/Cas9 mediated genome editing efficiency in porcine cells
Jiawei LV ; Shuang WU ; Renyue WEI ; Yan LI ; Junxue JIN ; Yanshuang MU ; Yu ZHANG ; Qingran KONG ; Xiaogang WENG ; Zhonghua LIU
Journal of Veterinary Science 2019;20(3):e23-
The clustered regularly interspaced short palindrome repeats (CRISPR)/CRISPR-associated protein 9 (Cas9) system is a versatile genome editing tool with high efficiency. A guide sequence of 20 nucleotides (nt) is commonly used in application of CRISPR/Cas9; however, the relationship between the length of the guide sequence and the efficiency of CRISPR/Cas9 in porcine cells is still not clear. To illustrate this issue, guide RNAs of different lengths targeting the EGFP gene were designed. Specifically, guide RNAs of 17 nt or longer were sufficient to direct the Cas9 protein to cleave target DNA sequences, while 15 nt or shorter guide RNAs had loss-of-function. Full-length guide RNAs complemented with mismatches also showed loss-of-function. When the shortened guide RNA and target DNA heteroduplex (gRNA:DNA heteroduplex) was blocked by mismatch, the CRISPR/Cas9 would be interfered with. These results suggested the length of the gRNA:DNA heteroduplex was a key factor for maintaining high efficiency of the CRISPR/Cas9 system rather than weak bonding between shortened guide RNA and Cas9 in porcine cells.
Base Sequence
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Complement System Proteins
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CRISPR-Cas Systems
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DNA
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Genome
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Nucleotides
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RNA, Guide
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Swine