OBJECTIVE: To investigate the effects of resveratrol (RV) in reprogramming mouse embryonic fibroblasts (MEFs) into induced pluripotent stem cells (iPSCs) and the related mechanism. METHODS: Primary MEFs were i...OBJECTIVE: To investigate the effects of resveratrol (RV) in reprogramming mouse embryonic fibroblasts (MEFs) into induced pluripotent stem cells (iPSCs) and the related mechanism. METHODS: Primary MEFs were isolated from E13.5 embryos and used within three passages. Retroviruses expressing Sox2 and Oct4 were produced by transfecting GP2-293t cells with recombinant plasmids murine stern cell virus (MSCV)-Sox2 and MSCV-Oct4. Supernatants containing retroviruses were obtained after 48-hour transfection and MEFs were then infected. Different concentrations (0, 5, 10 and 20 IJmol/L) of RV were added to embryonic stem cell (ESC) medium to culture MEFs 48 h post-infection, iPSC clones emerged and were further cultured. Expression of pluripotent markers of iPSCs was identified by cell immunofluorescence and reverse transcription-polymerase chain reaction. Both cytotoxicity and cell proliferation were assayed by Western blot analysis after RV was added into ESC medium. The ultrastructure change of mitochondria was observed by electron microscopy. RESULTS: More than 2.9-fold and 1.3-fold increases in colony number were observed by treatment with RV at 5 and 10 pmol/L, respectively. The reprogramming efficiency was significantly decreased by treatment with 20 pmol/L RV. The proliferation effect on MEFs or MEFs infected by two factors Sox2/Oct4 (2 factors-MEFs, 2F-MEFs) was investigated after RV treatment. At 20 pmol/L RV, induced cell apoptosis and proliferation inhibition were more obvious than those of 5 and 10 IJmol/L treatments. Clones were selected from the 10 pmol/L RV-treated group and cultured. Green fluorescent protein expression from one typical clone was silenced one month later which expressed ESC-associated marker genes Gdf3, Nanog, Ecatl, Fgf4 and Foxd3. Electron transmission microscope showed obvious cavitations in mitochondria. The expression of hypoxia-inducible factor-la was up-regulated when 2F-MEFs were treated with RV compared to the control group. CONCLUSION: RV improved the efficiency of reprogramming 2F-MEFs into iPSCs at low and moderate concentrations (5 and 10 pmol/L). The effect of 10 pmol/L RV on reprogramming was much greater than that of 5 pmol/L RV. However, high concentration of RV (20 pmol/L) led to more severe cavitations in mitochondria and caused cytotoxic effects. Taken together, these findinqs suqclest that RV mimics hypoxia in cells and promotes reprogramming at a low concentration.展开更多
In ethnopharmacology, and especially in traditional Chinese medicine, medicinal plants have been used for thousands of years. Similarly, agricultural plants have been used throughout the history of mankind. The recent...In ethnopharmacology, and especially in traditional Chinese medicine, medicinal plants have been used for thousands of years. Similarly, agricultural plants have been used throughout the history of mankind. The recent development of the genetic engineering of plants to produce plants with desirable features adds a new and growing dimension to humanity’s usage of plants. The biotechnology of plants has come of age and a plethora of bioengineering applications in this context have been delineated during the past few decades. Callus cultures and suspension cell cultures offer a wide range of usages in pharmacology and pharmacy (including Chinese medicine), as well as in agriculture and horticulture. This review provides a timely overview of the advancements that have been made with callus cultures in these scientific fields. Genetically modified callus cultures by gene technological techniques can be used for the synthesis of bioactive secondary metabolites and for the generation of plants with improved resistance against salt, draft, diseases, and pests. Although the full potential of callus plant culture technology has not yet been exploited, the time has come to develop and market more callus culture-based products.展开更多
The molecular mechanism of the maintenance and differentiation of plant stem cells is an eternal theme in studies on plant growth and development.Recent advances in single-cell RNA sequencing(scRNAseq)methods have com...The molecular mechanism of the maintenance and differentiation of plant stem cells is an eternal theme in studies on plant growth and development.Recent advances in single-cell RNA sequencing(scRNAseq)methods have completely changed the understanding of cell heterogeneity and cell function,allowing research precision to identify the differentiation trajectory of stem cells maintained and differentiated at the cellular level.This review aimed to mainly discuss the novel insights provided by scRNA-seq for the maintenance and initiation of plant stem cells,cell differentiation,cell response to environmental changes,and improvement strategies for scRNA-seq.In addition,it highlighted additional perspectives beyond scRNA-seq,such as spatial transcriptomes,epigenomes,and single-cell multiomics,for a renewed understanding of stem cell maintenance and cell differentiation,thus providing potential targets and theoretical foundations for crop improvement.展开更多
基金supported by the National Basic Research Program of China(973 Program,No.2010CB530400)the Key Project of National Natural Science Foundation of China(No.30930111)+3 种基金Changjiang Scholar Chair Professor Project(Teach people(2009) 17)Shanghai Education Innovation Project(No.08YZ56)"Shu Guang" project supported by Shanghai Municipal Education Commission and Shanghai Education Development Foundation(No.10GG20)Shanghai University Innovation Team Programmer(Shanghai Education Commission, Division 6(2009))
文摘OBJECTIVE: To investigate the effects of resveratrol (RV) in reprogramming mouse embryonic fibroblasts (MEFs) into induced pluripotent stem cells (iPSCs) and the related mechanism. METHODS: Primary MEFs were isolated from E13.5 embryos and used within three passages. Retroviruses expressing Sox2 and Oct4 were produced by transfecting GP2-293t cells with recombinant plasmids murine stern cell virus (MSCV)-Sox2 and MSCV-Oct4. Supernatants containing retroviruses were obtained after 48-hour transfection and MEFs were then infected. Different concentrations (0, 5, 10 and 20 IJmol/L) of RV were added to embryonic stem cell (ESC) medium to culture MEFs 48 h post-infection, iPSC clones emerged and were further cultured. Expression of pluripotent markers of iPSCs was identified by cell immunofluorescence and reverse transcription-polymerase chain reaction. Both cytotoxicity and cell proliferation were assayed by Western blot analysis after RV was added into ESC medium. The ultrastructure change of mitochondria was observed by electron microscopy. RESULTS: More than 2.9-fold and 1.3-fold increases in colony number were observed by treatment with RV at 5 and 10 pmol/L, respectively. The reprogramming efficiency was significantly decreased by treatment with 20 pmol/L RV. The proliferation effect on MEFs or MEFs infected by two factors Sox2/Oct4 (2 factors-MEFs, 2F-MEFs) was investigated after RV treatment. At 20 pmol/L RV, induced cell apoptosis and proliferation inhibition were more obvious than those of 5 and 10 IJmol/L treatments. Clones were selected from the 10 pmol/L RV-treated group and cultured. Green fluorescent protein expression from one typical clone was silenced one month later which expressed ESC-associated marker genes Gdf3, Nanog, Ecatl, Fgf4 and Foxd3. Electron transmission microscope showed obvious cavitations in mitochondria. The expression of hypoxia-inducible factor-la was up-regulated when 2F-MEFs were treated with RV compared to the control group. CONCLUSION: RV improved the efficiency of reprogramming 2F-MEFs into iPSCs at low and moderate concentrations (5 and 10 pmol/L). The effect of 10 pmol/L RV on reprogramming was much greater than that of 5 pmol/L RV. However, high concentration of RV (20 pmol/L) led to more severe cavitations in mitochondria and caused cytotoxic effects. Taken together, these findinqs suqclest that RV mimics hypoxia in cells and promotes reprogramming at a low concentration.
文摘In ethnopharmacology, and especially in traditional Chinese medicine, medicinal plants have been used for thousands of years. Similarly, agricultural plants have been used throughout the history of mankind. The recent development of the genetic engineering of plants to produce plants with desirable features adds a new and growing dimension to humanity’s usage of plants. The biotechnology of plants has come of age and a plethora of bioengineering applications in this context have been delineated during the past few decades. Callus cultures and suspension cell cultures offer a wide range of usages in pharmacology and pharmacy (including Chinese medicine), as well as in agriculture and horticulture. This review provides a timely overview of the advancements that have been made with callus cultures in these scientific fields. Genetically modified callus cultures by gene technological techniques can be used for the synthesis of bioactive secondary metabolites and for the generation of plants with improved resistance against salt, draft, diseases, and pests. Although the full potential of callus plant culture technology has not yet been exploited, the time has come to develop and market more callus culture-based products.
基金support from the Development Plan for Youth Innovation Team of Shandong Provincial(2019KJE012)Shandong Province Key Research and Development Program(2019GSF107079)+1 种基金the Science and Technology Demonstration Project of “Bohai Granary” of Shandong Province(2019BHLC002)the National Natural Science Research Foundation of China(31871538,U1906204).
文摘The molecular mechanism of the maintenance and differentiation of plant stem cells is an eternal theme in studies on plant growth and development.Recent advances in single-cell RNA sequencing(scRNAseq)methods have completely changed the understanding of cell heterogeneity and cell function,allowing research precision to identify the differentiation trajectory of stem cells maintained and differentiated at the cellular level.This review aimed to mainly discuss the novel insights provided by scRNA-seq for the maintenance and initiation of plant stem cells,cell differentiation,cell response to environmental changes,and improvement strategies for scRNA-seq.In addition,it highlighted additional perspectives beyond scRNA-seq,such as spatial transcriptomes,epigenomes,and single-cell multiomics,for a renewed understanding of stem cell maintenance and cell differentiation,thus providing potential targets and theoretical foundations for crop improvement.