342 research outputs found
ΠΠ»ΠΈΡΠ½ΠΈΠ΅ ΠΊΠΎΠΌΠΏΠ»Π΅ΠΊΡΠ½ΡΡ ΡΠΎΡΡΡΠ΅Π³ΡΠ»ΠΈΡΡΡΡΠΈΡ ΠΏΡΠ΅ΠΏΠ°ΡΠ°ΡΠΎΠ² Π½Π° ΡΡΠΎΠΆΠ°ΠΉΠ½ΠΎΡΡΡ ΠΏΡΠ΅Π½ΠΈΡΡ ΠΎΠ·ΠΈΠΌΠΎΠΉ (Triticum aestivum L.), Π²ΡΡΠ°ΡΠΈΠ²Π°Π΅ΠΌΠΎΠΉ ΠΏΠΎΡΠ»Π΅ ΡΠ°Π·Π½ΡΡ ΠΏΡΠ΅Π΄ΡΠ΅ΡΡΠ²Π΅Π½Π½ΠΈΠΊΠΎΠ²
This is the first time in conditions of Semisavanna of Ukraine when mutual effect of winter wheat precursors and three complex growth-regulating preparations on the growth, development and yield of winter wheat grain has been studied. It has been determined that Antistress, Mars-EL and four amino acid complex preparations can be used for winter wheat growing technology with the aim to increase its yield both during the naked fallow sowing, and after a grain precur- Β© ΠΠΎΠ·Π½ΡΠΊ Π. Π., 2019 sor. Greater effect is provided by preparations at winter wheat re-sowing - the yield increase made 0.32-0.81 t/ha. The less significant but stable increase in yield of 0.27-0.59 t/ha is provided by complex growth-regulating preparations during sowing wheat over wheat. Use of the studied complex preparations with a wide range of action throughout the growing season had a positive effect on indicators characterizing growth, development and formation of winter wheat yield. The most effective was the joint use of Antistress and Mars-EL preparations (0.5-0.71 t/ha increase) and all the three drugs together (Antistress + Mars-EL + amino acid complex) when additional 0.59-0.81 t/ha of grain was obtained. Thus, our research has shown that use of new promising growth-regulating agents for winter wheat growing technology makes it possible to implement its genetic potential and increase yield more efficiently, which undoubtedly is of a great importance for agricultural farms specializing in production of this crop.ΠΠΏΠ΅ΡΠ²ΡΠ΅ Π² ΡΡΠ»ΠΎΠ²ΠΈΡΡ
Π‘ΡΠ΅ΠΏΠΈ Π£ΠΊΡΠ°ΠΈΠ½Ρ ΠΈΠ·ΡΡΠ΅Π½ΠΎ Π²Π·Π°ΠΈΠΌΠΎΠ²Π»ΠΈΡΠ½ΠΈΠ΅ ΠΏΡΠ΅Π΄ΡΠ΅ΡΡΠ²Π΅Π½Π½ΠΈΠΊΠΎΠ² ΠΏΡΠ΅Π½ΠΈΡΡ ΠΎΠ·ΠΈΠΌΠΎΠΉ ΠΈ ΡΡΠ΅Ρ
ΠΊΠΎΠΌΠΏΠ»Π΅ΠΊΡΠ½ΡΡ
ΡΠΎΡΡΡΠ΅Π³ΡΠ»ΠΈΡΡΡΡΠΈΡ
ΠΏΡΠ΅ΠΏΠ°ΡΠ°ΡΠΎΠ² Π½Π° ΡΠΎΡΡ, ΡΠ°Π·Π²ΠΈΡΠΈΠ΅ ΠΈ ΡΠΎΡΠΌΠΈΡΠΎΠ²Π°Π½ΠΈΠ΅ ΡΡΠΎΠΆΠ°ΠΉΠ½ΠΎΡΡΠΈ Π·Π΅ΡΠ½Π° ΠΏΡΠ΅Π½ΠΈΡΡ ΠΎΠ·ΠΈΠΌΠΎΠΉ. Π£ΡΡΠ°Π½ΠΎΠ²Π»Π΅Π½ΠΎ, ΡΡΠΎ ΠΏΡΠ΅ΠΏΠ°ΡΠ°ΡΡ ΠΠ½ΡΠΈΡΡΡΠ΅ΡΡ, ΠΠ°ΡΡ-ΠL ΠΈ ΠΊΠΎΠΌΠΏΠ»Π΅ΠΊΡ ΡΠ΅ΡΡΡΠ΅Ρ
Π°ΠΌΠΈΠ½ΠΎΠΊΠΈΡΠ»ΠΎΡ ΠΌΠΎΠ³ΡΡ ΠΈΡΠΏΠΎΠ»ΡΠ·ΠΎΠ²Π°ΡΡΡΡ Π² ΡΠ΅Ρ
Π½ΠΎΠ»ΠΎΠ³ΠΈΠΈ Π²ΡΡΠ°ΡΠΈΠ²Π°Π½ΠΈΡ ΠΏΡΠ΅Π½ΠΈΡΡ ΠΎΠ·ΠΈΠΌΠΎΠΉ Ρ ΡΠ΅Π»ΡΡ ΠΏΠΎΠ²ΡΡΠ΅Π½ΠΈΡ Π΅Π΅ ΡΡΠΎΠΆΠ°ΠΉΠ½ΠΎΡΡΠΈ ΠΊΠ°ΠΊ ΠΏΡΠΈ ΡΠ°Π·ΠΌΠ΅ΡΠ΅Π½ΠΈΠΈ Π΅Π΅ ΠΏΠΎΡΠ΅Π²ΠΎΠ² ΠΏΠΎ ΡΠΈΡΡΠΎΠΌΡ ΠΏΠ°ΡΡ, ΡΠ°ΠΊ ΠΈ ΠΏΠΎ Π·Π΅ΡΠ½ΠΎΠ²ΠΎΠΌΡ ΠΏΡΠ΅Π΄ΡΠ΅ΡΡΠ²Π΅Π½Π½ΠΈΠΊΡ. ΠΠΎΠ»ΡΡΠΈΠΉ ΡΡΡΠ΅ΠΊΡ ΠΎΠ±Π΅ΡΠΏΠ΅ΡΠΈΠ²Π°ΡΡ ΠΏΡΠ΅ΠΏΠ°ΡΠ°ΡΡ ΠΏΡΠΈ ΠΏΠΎΠ²ΡΠΎΡΠ½ΠΎΠΌ ΠΏΠΎΡΠ΅Π²Π΅ ΠΏΡΠ΅Π½ΠΈΡΡ ΠΎΠ·ΠΈΠΌΠΎΠΉ β ΡΠΎΡΡ ΡΡΠΎΠΆΠ°ΠΉΠ½ΠΎΡΡΠΈ ΡΠΎΡΡΠ°Π²ΠΈΠ» 0,32β0,81 Ρ/Π³Π°. ΠΠ΅Π½Π΅Π΅ Π·Π½Π°ΡΠΈΠΌΡΠΉ, Π½ΠΎ Π΄ΠΎΡΡΠΎΠ²Π΅ΡΠ½ΡΠΉ ΠΏΡΠΈΡΠΎΡΡ ΡΡΠΎΠΆΠ°ΠΉΠ½ΠΎΡΡΠΈ 0,27β0,59 Ρ/Π³Π° ΠΎΠ±Π΅ΡΠΏΠ΅ΡΠΈΠ²Π°ΡΡ ΠΊΠΎΠΌΠΏΠ»Π΅ΠΊΡΠ½ΡΠ΅ ΡΠΎΡΡΡΠ΅Π³ΡΠ»ΠΈΡΡΡΡΠΈΠ΅ ΠΏΡΠ΅ΠΏΠ°ΡΠ°ΡΡ ΠΏΡΠΈ ΠΏΠΎΡΠ΅Π²Π΅ ΠΏΡΠ΅Π½ΠΈΡΡ ΠΏΠΎ ΠΏΡΠ΅Π½ΠΈΡΠ΅. ΠΡΠΈΠΌΠ΅Π½Π΅Π½ΠΈΠ΅ ΠΈΡΡΠ»Π΅Π΄ΡΠ΅ΠΌΡΡ
ΠΊΠΎΠΌΠΏΠ»Π΅ΠΊΡΠ½ΡΡ
ΠΏΡΠ΅ΠΏΠ°ΡΠ°ΡΠΎΠ² Ρ ΡΠΈΡΠΎΠΊΠΈΠΌ ΡΠΏΠ΅ΠΊΡΡΠΎΠΌ Π΄Π΅ΠΉΡΡΠ²ΠΈΡ Π½Π° ΠΏΡΠΎΡΡΠΆΠ΅Π½ΠΈΠΈ Π²ΡΠ΅ΠΉ Π²Π΅Π³Π΅ΡΠ°ΡΠΈΠΈ ΠΏΠΎΠ»ΠΎΠΆΠΈΡΠ΅Π»ΡΠ½ΠΎ Π²Π»ΠΈΡΠ»ΠΎ Π½Π° ΠΏΠΎΠΊΠ°Π·Π°ΡΠ΅Π»ΠΈ, Ρ
Π°ΡΠ°ΠΊΡΠ΅ΡΠΈΠ·ΡΡΡΠΈΠ΅ ΡΠΎΡΡ, ΡΠ°Π·Π²ΠΈΡΠΈΠ΅ ΠΈ ΡΠΎΡΠΌΠΈΡΠΎΠ²Π°Π½ΠΈΠ΅ ΡΡΠΎΠΆΠ°ΠΉΠ½ΠΎΡΡΠΈ ΠΏΡΠ΅Π½ΠΈΡΡ ΠΎΠ·ΠΈΠΌΠΎΠΉ. ΠΠ°ΠΈΠ±ΠΎΠ»Π΅Π΅ ΡΡΡΠ΅ΠΊΡΠΈΠ²Π½ΡΠΌ ΠΎΠΊΠ°Π·Π°Π»ΠΎΡΡ ΡΠΎΠ²ΠΌΠ΅ΡΡΠ½ΠΎΠ΅ ΠΏΡΠΈΠΌΠ΅Π½Π΅Π½ΠΈΠ΅ ΠΏΡΠ΅ΠΏΠ°ΡΠ°ΡΠΎΠ² ΠΠ½ΡΠΈΡΡΡΠ΅ΡΡ ΠΈ ΠΠ°ΡΡ-ΠL (ΠΏΡΠΈΠ±Π°Π²ΠΊΠ° ΡΠΎΡΡΠ°Π²ΠΈΠ»Π° 0,5β0,71 Ρ/Π³Π°) ΠΈ Π²ΡΠ΅Ρ
ΡΡΠ΅Ρ
ΠΏΡΠ΅ΠΏΠ°ΡΠ°ΡΠΎΠ² ΡΠΎΠ²ΠΌΠ΅ΡΡΠ½ΠΎ (ΠΠ½ΡΠΈΡΡΡΠ΅ΡΡ+ΠΠ°ΡΡ-ΠL + ΠΊΠΎΠΌΠΏΠ»Π΅ΠΊΡ Π°ΠΌΠΈΠ½ΠΎΠΊΠΈΡΠ»ΠΎΡ), Π³Π΄Π΅ Π±ΡΠ»ΠΎ ΠΏΠΎΠ»ΡΡΠ΅Π½ΠΎ Π΄ΠΎΠΏΠΎΠ»Π½ΠΈΡΠ΅Π»ΡΠ½ΠΎ 0,59β0,81 Ρ/Π³Π° Π·Π΅ΡΠ½Π°. Π’Π°ΠΊΠΈΠΌ ΠΎΠ±ΡΠ°Π·ΠΎΠΌ, ΠΈΡΡΠ»Π΅Π΄ΠΎΠ²Π°Π½ΠΈΡ ΠΏΠΎΠΊΠ°Π·Π°Π»ΠΈ, ΡΡΠΎ ΠΏΡΠΈΠΌΠ΅Π½Π΅Π½ΠΈΠ΅ Π½ΠΎΠ²ΡΡ
ΠΏΠ΅ΡΡΠΏΠ΅ΠΊΡΠΈΠ²Π½ΡΡ
ΡΠΎΡΡΡΠ΅Π³ΡΠ»ΠΈΡΡΡΡΠΈΡ
ΠΏΡΠ΅ΠΏΠ°ΡΠ°ΡΠΎΠ² Π² ΡΠ΅Ρ
Π½ΠΎΠ»ΠΎΠ³ΠΈΠΈ Π²ΡΡΠ°ΡΠΈΠ²Π°Π½ΠΈΡ ΠΏΡΠ΅Π½ΠΈΡΡ ΠΎΠ·ΠΈΠΌΠΎΠΉ ΠΏΠΎΠ·Π²ΠΎΠ»ΡΠ΅Ρ Π±ΠΎΠ»Π΅Π΅ ΡΡΡΠ΅ΠΊΡΠΈΠ²Π½ΠΎ ΡΠ΅Π°Π»ΠΈΠ·ΠΎΠ²ΡΠ²Π°ΡΡ Π΅Π΅ Π³Π΅Π½Π΅ΡΠΈΡΠ΅ΡΠΊΠΈΠΉ ΠΏΠΎΡΠ΅Π½ΡΠΈΠ°Π» ΠΈ ΠΏΠΎΠ²ΡΡΠΈΡΡ ΡΡΠΎΠΆΠ°ΠΉΠ½ΠΎΡΡΡ, ΡΡΠΎ, Π½Π΅ΡΠΎΠΌΠ½Π΅Π½Π½ΠΎ, ΠΈΠΌΠ΅Π΅Ρ Π·Π½Π°ΡΠ΅Π½ΠΈΠ΅ Π΄Π»Ρ Π°Π³ΡΠ°ΡΠ½ΡΡ
Ρ
ΠΎΠ·ΡΠΉΡΡΠ², ΡΠΏΠ΅ΡΠΈΠ°Π»ΠΈΠ·ΠΈΡΡΡΡΠΈΡ
ΡΡ Π½Π° ΠΏΡΠΎΠΈΠ·Π²ΠΎΠ΄ΡΡΠ²Π΅ Π·Π΅ΡΠ½Π° ΡΡΠΎΠΉ ΠΊΡΠ»ΡΡΡΡΡ
The politics of alcohol policy in Nigeria: a critical analysis of how and why brewers use strategic ambiguity to supplant policy initiatives
The global call by the World Health Assembly (WHA) to control the rising alcohol-related problems caused by harmful consumption through policy became necessary in 2005 due to the recognition of the fact that many countries did not have alcohol policies. This gave rise to the adoption of a ten-point policy strategy by the World Health Organization (WHO) Member States in 2010. Against this backdrop, many countries adopted alcohol policies to reduce harmful alcohol consumption. Nigeria was one of the WHO Member Countries that adopted the resolution. Nigeria is among the 30 countries with the highest per capita consumption and alcohol-related problems, yet has not formulated alcohol policy to date. This paper draws on Eisenbergβs Strategic Ambiguity Model to explore the role of brewers in supplanting alcohol policy initiatives in Nigeria. It argues that the leading alcohol producers in Nigeria have been the main reason alcohol policies have not been formulated. The article focuses on why their campaigns for responsible drinking, promotions, sponsorships and βstrategic social responsibilitiesβ may have increased since the WHA made the call and the WHO adopted the resolution in 2010. It concludes by arguing that there is an urgent need to formulate policies drawing from the WHO resolution to curtail the activities of these brewers and reduce harmful consumption
Ace2 is an adjacent element of atherosclerosis and covid-19 pathogenesis
COVID-19 is a highly contagious new infection caused by the single-stranded RNA SarsCoV-2 virus. For the first time, this infection was recorded in December 2019 in the Chinese province of Wuhan. The virus presumably crossed the interspecies barrier and passed to humans from a bat. Initially, the disease was considered exclusively in the context of damage to the respiratory system, but it quickly became clear that the disease also entails serious consequences from various systems, including the cardiovascular system. Among these consequences are myocarditis, myocardial damage, subsequent heart failure, myocardial infarction, and Takotsubo syndrome. On the other hand, clinical data indicate that the presence of chronic diseases in a patient aggravates the course and outcome of coronavirus infection. In this context, the relationship between COVID-19 and atherosclerosis, a condition preceding cardiovascular disease and other disorders of the heart and blood vessels, is particularly interesting. The renin-angiotensin system is essential for the pathogenesis of both coronavirus disease and atherosclerosis. In particular, it has been shown that ACE2, an angiotensin-converting enzyme 2, plays a key role in Sars-CoV-2 infection due to its receptor activity. It is noteworthy that this enzyme is important for the normal functioning of the cardiovascular system. Disruptions in its production and functioning can lead to various disorders, including atherosclerosis.Funding: This work was supported by the Russian Science Foundation (grant number 18-15-00254).Scopu
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