flow cytometer (ploidy analyser pa i, partec) (Partec)
90
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Partec
flow cytometer (ploidy analyser pa i, partec)
Flow Cytometer (Ploidy Analyser Pa I, Partec), supplied by Partec, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/flow+cytometer+(ploidy+analyser+pa+i%2C+partec)/flow+cytometer/10__1007_slash_s10681___018___2232___1-81-35-42
Average 90 stars, based on 1 article reviews
Flow Cytometer (Ploidy Analyser Pa I, Partec), supplied by Partec, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/flow+cytometer+(ploidy+analyser+pa+i%2C+partec)/flow+cytometer/10__1007_slash_s10681___018___2232___1-81-35-42
Average 90 stars, based on 1 article reviews
flow cytometer (ploidy analyser pa i, partec) - by Bioz Stars,
2026-10
90/100 stars
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Flow Cytometry:Article Title: Ploidy dependent expression of apomixis and its components in guinea grass (Panicum maximum Jacq.) Article Snippet: Panicum maximum (guinea grass) is a model crop for apomixis and polyploidy studies.. It is predominantly tetraploid (2n = 32) and is characterized by gametophytic apomixis, Panicum-type apospory and pseudogamous endosperm development.. The three components of apomixis, viz. apomeiosis, parthenogenesis and functional endosperm development, can be uncoupled in this crop. Article Title: Orchid Propagation: From Laboratories to Greenhouses—Methods and Protocols Article Snippet: 4.2.2 Preparation of Standard Samples 4.2.3 Preparation of the Article Title: Physical mapping of 5S and 45S rDNA genes and ploidy levels of Iranian Asparagus species Article Snippet: Twelve asparagus accessions collected from natural regions of Iran were analyzed by flow cytometry to assess their ploidy level.. These accessions belong to both cultivated and wild species (A. officinalis, A. persicus, A. breslerianus, A. verticillatus) from the Asparagus subgenus (x = 10).. Different ploidy levels (diploid, tetraploid, octoploid and decaploid) were found in A. officinalis. Software:Article Title: Ploidy dependent expression of apomixis and its components in guinea grass (Panicum maximum Jacq.) Article Snippet: Panicum maximum (guinea grass) is a model crop for apomixis and polyploidy studies.. It is predominantly tetraploid (2n = 32) and is characterized by gametophytic apomixis, Panicum-type apospory and pseudogamous endosperm development.. The three components of apomixis, viz. apomeiosis, parthenogenesis and functional endosperm development, can be uncoupled in this crop. Article Title: Orchid Propagation: From Laboratories to Greenhouses—Methods and Protocols Article Snippet: 4.2.2 Preparation of Standard Samples 4.2.3 Preparation of the Article Title: Physical mapping of 5S and 45S rDNA genes and ploidy levels of Iranian Asparagus species Article Snippet: Twelve asparagus accessions collected from natural regions of Iran were analyzed by flow cytometry to assess their ploidy level.. These accessions belong to both cultivated and wild species (A. officinalis, A. persicus, A. breslerianus, A. verticillatus) from the Asparagus subgenus (x = 10).. Different ploidy levels (diploid, tetraploid, octoploid and decaploid) were found in A. officinalis. In Vitro:Article Title: Ploidy dependent expression of apomixis and its components in guinea grass (Panicum maximum Jacq.) Article Snippet: Panicum maximum (guinea grass) is a model crop for apomixis and polyploidy studies.. It is predominantly tetraploid (2n = 32) and is characterized by gametophytic apomixis, Panicum-type apospory and pseudogamous endosperm development.. The three components of apomixis, viz. apomeiosis, parthenogenesis and functional endosperm development, can be uncoupled in this crop. Article Title: Orchid Propagation: From Laboratories to Greenhouses—Methods and Protocols Article Snippet: 4.2.2 Preparation of Standard Samples 4.2.3 Preparation of the Article Title: Physical mapping of 5S and 45S rDNA genes and ploidy levels of Iranian Asparagus species Article Snippet: Twelve asparagus accessions collected from natural regions of Iran were analyzed by flow cytometry to assess their ploidy level.. These accessions belong to both cultivated and wild species (A. officinalis, A. persicus, A. breslerianus, A. verticillatus) from the Asparagus subgenus (x = 10).. Different ploidy levels (diploid, tetraploid, octoploid and decaploid) were found in A. officinalis. Isolation:Article Title: Ploidy dependent expression of apomixis and its components in guinea grass (Panicum maximum Jacq.) Article Snippet: Panicum maximum (guinea grass) is a model crop for apomixis and polyploidy studies.. It is predominantly tetraploid (2n = 32) and is characterized by gametophytic apomixis, Panicum-type apospory and pseudogamous endosperm development.. The three components of apomixis, viz. apomeiosis, parthenogenesis and functional endosperm development, can be uncoupled in this crop. Article Title: Orchid Propagation: From Laboratories to Greenhouses—Methods and Protocols Article Snippet: 4.2.2 Preparation of Standard Samples 4.2.3 Preparation of the Article Title: Physical mapping of 5S and 45S rDNA genes and ploidy levels of Iranian Asparagus species Article Snippet: Twelve asparagus accessions collected from natural regions of Iran were analyzed by flow cytometry to assess their ploidy level.. These accessions belong to both cultivated and wild species (A. officinalis, A. persicus, A. breslerianus, A. verticillatus) from the Asparagus subgenus (x = 10).. Different ploidy levels (diploid, tetraploid, octoploid and decaploid) were found in A. officinalis. Staining:Article Title: Ploidy dependent expression of apomixis and its components in guinea grass (Panicum maximum Jacq.) Article Snippet: Panicum maximum (guinea grass) is a model crop for apomixis and polyploidy studies.. It is predominantly tetraploid (2n = 32) and is characterized by gametophytic apomixis, Panicum-type apospory and pseudogamous endosperm development.. The three components of apomixis, viz. apomeiosis, parthenogenesis and functional endosperm development, can be uncoupled in this crop. Article Title: Orchid Propagation: From Laboratories to Greenhouses—Methods and Protocols Article Snippet: 4.2.2 Preparation of Standard Samples 4.2.3 Preparation of the Article Title: Physical mapping of 5S and 45S rDNA genes and ploidy levels of Iranian Asparagus species Article Snippet: Twelve asparagus accessions collected from natural regions of Iran were analyzed by flow cytometry to assess their ploidy level.. These accessions belong to both cultivated and wild species (A. officinalis, A. persicus, A. breslerianus, A. verticillatus) from the Asparagus subgenus (x = 10).. Different ploidy levels (diploid, tetraploid, octoploid and decaploid) were found in A. officinalis. Extraction:Article Title: Ploidy dependent expression of apomixis and its components in guinea grass (Panicum maximum Jacq.) Article Snippet: Panicum maximum (guinea grass) is a model crop for apomixis and polyploidy studies.. It is predominantly tetraploid (2n = 32) and is characterized by gametophytic apomixis, Panicum-type apospory and pseudogamous endosperm development.. The three components of apomixis, viz. apomeiosis, parthenogenesis and functional endosperm development, can be uncoupled in this crop. Article Title: Orchid Propagation: From Laboratories to Greenhouses—Methods and Protocols Article Snippet: 4.2.2 Preparation of Standard Samples 4.2.3 Preparation of the Article Title: Physical mapping of 5S and 45S rDNA genes and ploidy levels of Iranian Asparagus species Article Snippet: Twelve asparagus accessions collected from natural regions of Iran were analyzed by flow cytometry to assess their ploidy level.. These accessions belong to both cultivated and wild species (A. officinalis, A. persicus, A. breslerianus, A. verticillatus) from the Asparagus subgenus (x = 10).. Different ploidy levels (diploid, tetraploid, octoploid and decaploid) were found in A. officinalis. |