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Aroma peculiarities of apricot (Armeniaca vulgaris Lam.) and cherry-plum (Prunus cerasifera Ehrh.) flowers 全文
2013
Горіна, В. М | Ріхтер, О. О | Виноградов, Б. О
Aroma peculiarities of apricot (Armeniaca vulgaris Lam.) and cherry-plum (Prunus cerasifera Ehrh.) flowers 全文
2013
Горіна, В. М | Ріхтер, О. О | Виноградов, Б. О
In the component composition of volatile solutions determining fragrance of the flowers in apricot and cherry-plum varieties and Prunus brigantiaca Vill. x Armeniaca vulgaris Lam. hybrids there are 36 highest hydrocarbons and benzaldehyde that prevail. There are fewer amounts of the solutions which scare bees (benzaldehyde) in the fragrance of cherry-plum varieties as compared to the flowers of apricot and hybrids. At the same time, the content of tricosane, pentacosane, docosane, heneycosane, eicosane, nonadecan that probably attract bees is higher in the cherry-plum flowers than in the fragrance of apricot and hybrid flowers. The average three years yield of cherry-plum plants (Nikitska Zhovta 10,7 and Salgirskaya Rumjanaya 28,5 t/ ha) is higher than for apricot (Recolte de Schatene 0,3; Rodnik 2,9; Ananasniy Tsurupinsky 7,4 t/ha) and hybrids (8110 – 5,2; 8098 – 6,4 t/ha) that could be explained with better pollination of flowers and better fruit formation. Prevailing components of flower aroma of these plants and their possible link with yield of the objects in questions have been analyzed.
显示更多 [+] 显示较少 [-]Aroma peculiarities of apricot (Armeniaca vulgaris Lam.) and cherry-plum (Prunus cerasifera Ehrh.) flowers 全文
2013
В. М. Горіна | О. О. Ріхтер | Б. О. Виноградов
In the component composition of volatile solutions determining fragrance of the flowers in apricot and cherry-plum varieties and Prunus brigantiaca Vill. x Armeniaca vulgaris Lam. hybrids there are 36 highest hydrocarbons and benzaldehyde that prevail. There are fewer amounts of the solutions which scare bees (benzaldehyde) in the fragrance of cherry-plum varieties as compared to the flowers of apricot and hybrids. At the same time, the content of tricosane, pentacosane, docosane, heneycosane, eicosane, nonadecan that probably attract bees is higher in the cherry-plum flowers than in the fragrance of apricot and hybrid flowers. The average three years yield of cherry-plum plants (Nikitska Zhovta 10,7 and Salgirskaya Rumjanaya 28,5 t/ ha) is higher than for apricot (Recolte de Schatene 0,3; Rodnik 2,9; Ananasniy Tsurupinsky 7,4 t/ha) and hybrids (8110 – 5,2; 8098 – 6,4 t/ha) that could be explained with better pollination of flowers and better fruit formation. Prevailing components of flower aroma of these plants and their possible link with yield of the objects in questions have been analyzed.
显示更多 [+] 显示较少 [-]Apricot (Prunus armeniaca L.) drought resistance and its connection with thickness of leaf blade 全文
2008
Корзін, В. В | Горіна, В. М | Ільницький, О. А | Одинцова, В. А
Apricot (Prunus armeniaca L.) drought resistance and its connection with thickness of leaf blade 全文
2008
Корзін, В. В | Горіна, В. М | Ільницький, О. А | Одинцова, В. А
The studying results of drought resistance for 15 varieties and 6 forms of apricot in the condition of South of the Ukraine have been given. The plants with different level of drought resistance have been selected from apricot varieties and forms introduced on the South Coast of the Crimea. From the studied varieties the most drought resistance ones are: Vardaguin Vagdaas, Luchak Sumbarskiy, Sulina, LE-132. Two best apricot varieties have been recommended for use in selection on this character
显示更多 [+] 显示较少 [-]Apricot (Prunus armeniaca L.) drought resistance and its connection with thickness of leaf blade 全文
2008
В. В. Корзін | В. М. Горіна | О. А. Ільницький | В. А. Одинцова
The studying results of drought resistance for 15 varieties and 6 forms of apricot in the condition of South of the Ukraine have been given. The plants with different level of drought resistance have been selected from apricot varieties and forms introduced on the South Coast of the Crimea. From the studied varieties the most drought resistance ones are: Vardaguin Vagdaas, Luchak Sumbarskiy, Sulina, LE-132. Two best apricot varieties have been recommended for use in selection on this character
显示更多 [+] 显示较少 [-]The content of phenolic compounds in plant generative organs of cherry-plum and apricot varieties with different susceptibility to Sclerotinia (Monilinia) laxa 全文
2012
Горіна, В. М | Ріхтер, О. О | Зайцев, Г. П
The content of phenolic compounds in plant generative organs of cherry-plum and apricot varieties with different susceptibility to Sclerotinia (Monilinia) laxa 全文
2012
Горіна, В. М | Ріхтер, О. О | Зайцев, Г. П
The high content of phenolic compounds (quercetin-3-O-glycoside, izoramnetine-3-O-glycoside, 4'-metoxykempferol-3-O-glycoside, 4'-metoxyqvercetine-3-0-glycoside, apigenine and luteoline) in flowers of Prunus cerasifera Ehrh. in comparison with Prunus armeniaca L. has been shown. That can be the reason weak susceptibility of generative organs of cherry-plum to Sclerotinia (Monilinia) laxa (Aderh et Ruhl.) Honey.
显示更多 [+] 显示较少 [-]The content of phenolic compounds in plant generative organs of cherry-plum and apricot varieties with different susceptibility to Sclerotinia (Monilinia) laxa 全文
2012
В. М. Горіна | О. О. Ріхтер | Г. П. Зайцев
The high content of phenolic compounds (quercetin-3-O-glycoside, izoramnetine-3-O-glycoside, 4'-metoxykempferol-3-O-glycoside, 4'-metoxyqvercetine-3-0-glycoside, apigenine and luteoline) in flowers of Prunus cerasifera Ehrh. in comparison with Prunus armeniaca L. has been shown. That can be the reason weak susceptibility of generative organs of cherry-plum to Sclerotinia (Monilinia) laxa (Aderh et Ruhl.) Honey.
显示更多 [+] 显示较少 [-]Inheritance of a sign of apricot color of ray flowers of sunflower (Helianthus annuus L.) 全文
2019
Ведмедєва, К. В
Inheritance of a sign of apricot color of ray flowers of sunflower (Helianthus annuus L.) 全文
2019
Ведмедєва, К. В
Purpose. To reveal the nature of the inheritance of apricot color of the ray flowers of the sunflower and the type of interaction of genes causing different colors. Methods. Field experiment, genetic analysis. The statistical validity of the results was evaluated using Pearson’s criterion. Results. We conducted crosses of the ‘KG13’ line as the source of the sign of apricot color with sunflower lines that had yellow, orange and lemon colors of the ray flowers. In the first generation, from crossing the ‘KG13’ line with five lines, which had a yellow color, only a yellow color of ray flowers was observed. In the second generation, a 3 : 1 split was observed: three-quarters with yellow flowers and one with apricot flowers. Line ‘KG13’ was crossed with three lines (‘HA298’, ‘SL2966’, ‘LD72/3’), which had an orange color of flowers. In the first generation, orange flowers were observed; in the second generation, splitting was recorded: three-quarters of offsprings with orange-colored flowers and one-quarter with apricot flowers. The line ‘KG13’ was crossed with ‘KG107’ and ‘ZL678’, which had lemon-colored flowers. The resulting plants of the first generation had a yellow coloration of ray flowers. In the second generation, five classes of plants by coloration of ray flowers were obtained: yellow, orange, apricot, lemon, lemon-apricot in the ratio 6 : 4 : 3 : 2 : 1. According to these data, the genes of lemon and apricot color have a complementary effect, the homozygous state of orange allele is epistatic to the recessive homozygote of the lemon-colored gene. The ‘KG108’ line with a combination of genes responsible for apricot and light yellow color has its own light apricot color and in crossings with a yellow colored line in the second generation gives splitting in the ratio 9 : 3 : 3 : 1. Conclusions. It was revealed that the apricot color of the ray flowers of the sunflower line ‘KG13’ is due to the homozygous state of the allele of the same gene whose second allele causes an orange color in the lines ‘NA298’, ‘SL2966’ and ‘LD72/3’. The complementary action of alleles responsible for apricot and lemon, as well as apricot and light yellow coloration of ray flowers was determined. A case of epistasis of homozygotes along the allele controlling the orange color over the recessive homozygote of the gene, which is controlled by the lemon color in the crossing combination ‘ZL678’ / ‘KG13’, was revealed.
显示更多 [+] 显示较少 [-]Inheritance of a sign of apricot color of ray flowers of sunflower (Helianthus annuus L.) | Наследование признака абрикосовой окраски краевых цветков подсолнечника (Helianthus annuus L.) | Успадкування ознаки абрикосового забарвлення крайових квіток соняшнику (Helianthus annuus L.) 全文
2019
Ведмедєва, К. В.
Цель. Установить характер наследования абрикосовой окраски краевых цветков подсолнечника и типы взаимодействия генов, обусловливающих различные типы окраски. Методы. Полевой опыт, генетический анализ. Статистическую достоверность результатов оценивали с помощью критерия Пирсона. Результаты. Проведено скрещивание линии ‘КГ13’, источника признака абрикосовой окраски, с линиями подсолнечника, которые имеют желтую, оранжевую и лимонную окраску краевых цветков. В первом гибридном поколении от скрещивания ‘КГ13’ с пятью линиями, которые имели желтый цвет, наблюдали только желтую окраску краевых цветков. Во втором гибридном поколении получено расщепление потомков на два класса – с желтой и с абрикосовой окраской цветков, в соотношении 3 : 1. Линия ‘КГ13’ была скрещена с тремя линиями (’НА298’, ‘SL2966’, ‘LD72/3’), которые имели оранжевую окраску цветков. В первом поколении наблюдали оранжевую окраску цветков, во втором – зафиксировано расщепление: три четверти потомков с оранжевой окраской цветков к одной четверти с абрикосовой. Линия ‘КГ13’ была скрещена с ‘КГ107’ и ‘ЗЛ678’, которые имели лимонную окраску цветков. Полученные растения первого поколения имели желтую окраску краевых цветков. Во втором поколении получено пять классов растений по окраске краевых цветков: желтые, оранжевые, абрикосовые, лимонные, лимонно-абрикосовые в соотношении 6 : 4 : 3 : 2 : 1. По этому расщеплению аллели лимонной и абрикосовой окраски имеют комплементарное действие, гомозиготное состояние оранжевого аллеля епистатирует над рецессивной гомозиготой гена лимонной окраски. Линия ‘КГ108’ с сочетанием генов, обусловливающих абрикосовый и светло-желтый цвет, имеет светло-абрикосовую окраску и в скрещиваниях во втором поколении дает расщепление в соотношении 9 : 3 : 3 : 1. Выводы. Абрикосовая окраска краевых цветков линии подсолнечника ‘КГ13’ обусловлена гомозиготным состоянием аллеля того же гена, второй аллель которого вызывает оранжевый цвет у линий ‘НА298’, ‘SL2966’ и ‘LD72/3’. Установлено комплементарное действие аллелей, обусловливающих абрикосовую и лимонную, а также абрикосовую и светло-желтую окраску краевых цветков. Выявлен случай эпистаза гомозиготы по аллелю оранжевого цвета над рецессивным состоянием гена, который вызывает лимонную окраску в комбинации скрещивания ‘ЗЛ678’ / ‘КГ13’. | Мета. Установити характер успадкування абрикосового забарвлення крайових квіток соняшнику та типи взаємодії генів, що зумовлюють різні типи забарвлення. Методи. Польовий дослід, генетичний аналіз. Статистичну достовірність результатів оцінювали за допомогою критерія Пірсона. Результати. Проведено схрещування лінії ‘КГ13’, джерела ознаки абрикосового забарвлення, з лініями соняшнику, які мають жовте, оранжеве та лимонне забарвлення крайових квіток. У першому гібридному поколінні від схрещування ‘КГ13’ із п’ятьма лініями, які мали жовтий колір, спостерігали лише жовте забарвлення крайових квіток. У другому гібридному поколінні отримано розщеплення нащадків на два класи – із жовтим та з абрикосовим забарвленням квіток, у співвідношенні 3 : 1. Лінія ‘КГ13’ була схрещена з трьома лініями (‘НА298’, ‘SL2966’, ‘LD72/3’), які мали оранжеве забарвлення квіток. У першому поколінні спостерігали оранжеве забарвлення квіток, у другому – зафіксовано розщеплення: три чверті нащадків з оранжевим забарвленням квіток до однієї чверті з абрикосовим. Лінія ‘КГ13’ була схрещена з ‘КГ107’ та ‘ЗЛ678’, які мали лимонне забарвлення квіток. Отримані рослини першого покоління мали жовте забарвлення крайових квіток. У другому поколінні отримано п’ять класів рослин за забарвленням крайових квіток: жовті, оранжеві, абрикосові, лимонні, лимонно-абрикосові у співвідношенні 6 : 4 : 3 : 2 : 1. За цим розщепленням алелі лимонного та абрикосового забарвлення мають комплементарну дію, гомозиготний стан оранжевого алеля епістатує над рецесивною гомозиготою гена лимонного забарвлення. Лінія ‘КГ108’ з поєднанням генів, що зумовлюють абрикосовий та світло-жовтий колір, має світло-абрикосове забарвлення і в схрещуваннях у другому поколінні дає розщеплення у співвідношенні 9 : 3 : 3 : 1. Висновки. Абрикосове забарвлення крайових квіток лінії соняшнику ‘КГ13’ зумовлено гомозиготним станом алелю того ж самого гена, другий алель якого спричинює оранжевий колір у ліній ‘НА298’, ‘SL2966’ та ‘LD72/3’. Установлено комплементарну дію алелів, що зумовлюють абрикосове й лимонне, а також абрикосове та світло-жовте забарвлення крайових квіток. Виявлено випадок епістазу гомозиготи за алелем оранжевого забарвлення над рецесивним станом гена, який зумовлює лимонне забарвлення в комбінації схрещування ‘ЗЛ678’ / ‘КГ13’. | Purpose. To reveal the nature of the inheritance of apricot color of the ray flowers of the sunflower and the type of interaction of genes causing different colors. Methods. Field experiment, genetic analysis. The statistical validity of the results was evaluated using Pearson’s criterion. Results. We conducted crosses of the ‘KG13’ line as the source of the sign of apricot color with sunflower lines that had yellow, orange and lemon colors of the ray flowers. In the first generation, from crossing the ‘KG13’ line with five lines, which had a yellow color, only a yellow color of ray flowers was observed. In the second generation, a 3 : 1 split was observed: three-quarters with yellow flowers and one with apricot flowers. Line ‘KG13’ was crossed with three lines (‘HA298’, ‘SL2966’, ‘LD72/3’), which had an orange color of flowers. In the first generation, orange flowers were observed; in the second generation, splitting was recorded: three-quarters of offsprings with orange-colored flowers and one-quarter with apricot flowers. The line ‘KG13’ was crossed with ‘KG107’ and ‘ZL678’, which had lemon-colored flowers. The resulting plants of the first generation had a yellow coloration of ray flowers. In the second generation, five classes of plants by coloration of ray flowers were obtained: yellow, orange, apricot, lemon, lemon-apricot in the ratio 6 : 4 : 3 : 2 : 1. According to these data, the genes of lemon and apricot color have a complementary effect, the homozygous state of orange allele is epistatic to the recessive homozygote of the lemon-colored gene. The ‘KG108’ line with a combination of genes responsible for apricot and light yellow color has its own light apricot color and in crossings with a yellow colored line in the second generation gives splitting in the ratio 9 : 3 : 3 : 1. Conclusions. It was revealed that the apricot color of the ray flowers of the sunflower line ‘KG13’ is due to the homozygous state of the allele of the same gene whose second allele causes an orange color in the lines ‘NA298’, ‘SL2966’ and ‘LD72/3’. The complementary action of alleles responsible for apricot and lemon, as well as apricot and light yellow coloration of ray flowers was determined. A case of epistasis of homozygotes along the allele controlling the orange color over the recessive homozygote of the gene, which is controlled by the lemon color in the crossing combination ‘ZL678’ / ‘KG13’, was revealed.
显示更多 [+] 显示较少 [-]Inheritance of a sign of apricot color of ray flowers of sunflower (Helianthus annuus L.) 全文
2019
К. В. Ведмедєва
Purpose. To reveal the nature of the inheritance of apricot color of the ray flowers of the sunflower and the type of interaction of genes causing different colors. Methods. Field experiment, genetic analysis. The statistical validity of the results was evaluated using Pearson’s criterion. Results. We conducted crosses of the ‘KG13’ line as the source of the sign of apricot color with sunflower lines that had yellow, orange and lemon colors of the ray flowers. In the first generation, from crossing the ‘KG13’ line with five lines, which had a yellow color, only a yellow color of ray flowers was observed. In the second generation, a 3 : 1 split was observed: three-quarters with yellow flowers and one with apricot flowers. Line ‘KG13’ was crossed with three lines (‘HA298’, ‘SL2966’, ‘LD72/3’), which had an orange color of flowers. In the first generation, orange flowers were observed; in the second generation, splitting was recorded: three-quarters of offsprings with orange-colored flowers and one-quarter with apricot flowers. The line ‘KG13’ was crossed with ‘KG107’ and ‘ZL678’, which had lemon-colored flowers. The resulting plants of the first generation had a yellow coloration of ray flowers. In the second generation, five classes of plants by coloration of ray flowers were obtained: yellow, orange, apricot, lemon, lemon-apricot in the ratio 6 : 4 : 3 : 2 : 1. According to these data, the genes of lemon and apricot color have a complementary effect, the homozygous state of orange allele is epistatic to the recessive homozygote of the lemon-colored gene. The ‘KG108’ line with a combination of genes responsible for apricot and light yellow color has its own light apricot color and in crossings with a yellow colored line in the second generation gives splitting in the ratio 9 : 3 : 3 : 1. Conclusions. It was revealed that the apricot color of the ray flowers of the sunflower line ‘KG13’ is due to the homozygous state of the allele of the same gene whose second allele causes an orange color in the lines ‘NA298’, ‘SL2966’ and ‘LD72/3’. The complementary action of alleles responsible for apricot and lemon, as well as apricot and light yellow coloration of ray flowers was determined. A case of epistasis of homozygotes along the allele controlling the orange color over the recessive homozygote of the gene, which is controlled by the lemon color in the crossing combination ‘ZL678’ / ‘KG13’, was revealed.
显示更多 [+] 显示较少 [-]Productivity of apricot (Prunus armeniaka L.) and cherry-plum (Prunus cerasifera Ehrh) in untypical weather conditions 全文
2007
Антюфєєв, В. В | Фалькова, Т. В | Горіна, В. М
Productivity of apricot (Prunus armeniaka L.) and cherry-plum (Prunus cerasifera Ehrh) in untypical weather conditions 全文
2007
Антюфєєв, В. В | Фалькова, Т. В | Горіна, В. М
The untypical weather conditions during the extrema drought in 1993- 1994 have been described. Regularities of the accumulation and spending of the dry substance in leaves of varieties, signi ficantly different in productivity, weke considered depending on weather conditions.
显示更多 [+] 显示较少 [-]New varieties of annual aster (Callistephus chinensis (L.) Nees) by Ukrainian breeding 全文
2013
Л. О. Шевель
The article highlights the state of breeding and variety studying for Callistephus chinensis in Ukraine and, in particular, in the Horticulture Institute of NAA, and offers the summary of studying the growth and development aspects for Callistephus, various varieties productivity level, their response to specific set of weather and climatic conditions. The research objectives and methods for their achieving are disclosed, as well the requirements a variety shall comply with, namely: reaching homozygote state, distinctness and ornamentality, fusariose and weather conditions resistance. 11 descriptions for new varieties of annual aster (Anastasia, Angelina, Litnia Nich, Lybid, Oksamyt, Samanta, Sofia, Snizhana, Flamingo , Shokoladka, Tsarivna) as bred by the Horticulture Institute of NAAS were provided, namely by identification and economic and biologic characteristics, these varieties are listed in the State Register of Plant Varieties Suitable for Dissemination in Ukraine.
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