scholarly journals Effect of Processing, Post-Harvest Irradiation, and Production System on the Cytotoxicity and Mutagenicity of Vitis labrusca L. Juices in HTC Cells

PLoS ONE ◽  
2014 ◽  
Vol 9 (9) ◽  
pp. e107974 ◽  
Author(s):  
Elisângela Düsman ◽  
Igor Vivian de Almeida ◽  
Luciano Lucchetta ◽  
Veronica Elisa Pimenta Vicentini
2013 ◽  
pp. 367-371
Author(s):  
M.A. Lessa ◽  
E.F.A. Almeida ◽  
S.N. Reis ◽  
S.S. Barbosa ◽  
S.G. Resende ◽  
...  

2014 ◽  
Vol 171 ◽  
pp. 54-61 ◽  
Author(s):  
Carlos Eduardo Vasconcelos de Oliveira ◽  
Marciane Magnani ◽  
Camila Veríssimo de Sales ◽  
Alline Lima de Souza Pontes ◽  
Galba Maria Campos-Takaki ◽  
...  

HortScience ◽  
2013 ◽  
Vol 48 (1) ◽  
pp. 92-101 ◽  
Author(s):  
Ibrahim I. Tahir ◽  
Hilde Nybom

A series of pre- and post-harvest experiments were conducted to enhance apple tree productivity and improve fruit quality and storage life by altering production system and post-harvest treatments in an organic orchard. Increasing the light distribution and carbohydrate uptake (summer pruning and covering the orchard ground with reflective textile) improved tree productivity, fruit color, content of anthocyanin, ascorbic acid, and total phenolic compounds and reduced incidence of fungal storage diseases. Optimal harvesting time could be determined from the starch index in some cultivars, whereas the Streif index [firmness (soluble solids concentration × starch hydrolysis score)−1] was more accurate for other cultivars. In yet others, titratable acidity and flesh firmness also produced important information. By contrast, soluble solids concentration and skin color are not useful as a result of their sensitivity to weather conditions and light intensity. Post-harvest fruit treatment with hot water (46 °C for 120 seconds) decreased fungal decay during storage in two cultivars, whereas spraying the fruit with 10% ethanol decreased fungal decay in all investigated cultivars. Optimization of storage conditions [cultivar-specific controlled atmosphere (CA) and ultra-low oxygen (ULO) storage procedures] maintained fruit quality and reduced the amount of fungal decay.


2017 ◽  
Vol 7 (1) ◽  
Author(s):  
Clemens Scheer ◽  
David Rowlings ◽  
Mary Firrell ◽  
Peter Deuter ◽  
Stephen Morris ◽  
...  

Author(s):  
Oleh Tsurkan

The main technical task of agricultural production in the field of seed production is to obtain conditional seeds that meet national and international quality standards. One of the important stages of growing agricultural seeds is their post-harvest processing, which includes the drying process, which is the main and one of the most effective methods for storing and processing agricultural raw materials. It is possible to increase the efficiency of the technology of post-harvest treatment of pumpkin seeds by determining the possibilities of using a systematic approach to solving the problems of implementing measures and means, identifying the mechanism of functioning and developing its effectiveness. Modeling and systems analysis are the main research methods and agricultural technology systems. Systems analysis is widely used in the study of various branches of agricultural production. The article discusses the main features of the components of the technology of post-harvest treatment of pumpkin seeds, forming a certain hierarchical system: technology - technological process - technological operation. The input factors of the pumpkin seed drying system will be such indicators as the supply of the input material, its moisture content, the parameters of the drying agent, and the quality indicators of the input material. A structural diagram of pumpkin seed production has been developed and the target function of the system in matrix form and an algorithm for the implementation of the target function of the pumpkin seed production system have been selected. The matrix of the objective function and the algorithm for its implementation can be used to analyze the pumpkin seed production system as a whole at the level of an individual enterprise, and by individual elements to find bottlenecks in this technology.


2018 ◽  
Vol 34 (2) ◽  
pp. 173-183 ◽  
Author(s):  
Arpit V. Joshi ◽  
◽  
Nilanjana S. Baraiya ◽  
Pinal B. Vyas ◽  
T. V. Ramana Rao ◽  
...  

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