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Efficient microtuber production of potato in modified nutrient spray bioreactor system

机译:改良养分喷雾生物反应器系统可有效生产马铃薯的微型薯

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A laboratory scale bioreactor system has been developed using nutrient spray technology for in vitro mass production of potato microtubers. Its effectiveness on the production of microtubers was investigated and compared with conventional liquid and semi-solid culture systems through bioreactor. Optimal culture conditions such as spray intervals, varying concentrations of 6-benzylaminopurine (BAP) and explants density were determined for the NSB. In order to determine optimal spray intervals, liquid medium was sprayed inside the NSB at different intervals (1/2, 1-4h) of which the 1 h interval resulted in the highest number of shoots (3.47) and length (8.99 cm). Number of microtubers produced (5.13) was highest with 1 h intervals and fresh weight of microtubers (0.90 g) was highest for 1/2 h interval. Different concentrations of BAP (0.5, 1.0 and 1.5 mg/L) were used to evaluate its effect on microtuberization. It was observed that number and diameter of microtubers were increased (5.31 and 0.96 cm) when 0.5 mg/L BAP was supplemented in MS medium. We found fresh weight of microtubers (0.97 g) was increased when 1.0 mg/L BAP were added to the medium. In order to determine suitable explants density, single nodes grouped into five categories e.g 30, 45, 60, 75, and 90 and placed in the NSB system. A density of 60 explants resulted in increases in shoot length (17.5 cm) number of internodes (12.5) and with highest amount of chlorophyll (40.2 mg/g) as well as with highest number and fresh weight of microtubers (4.43 and 0.89 g, respectively). Out of the three culture systems, the NSB performed best where 1.5-2.0 fold increases in shoot growth and microtuberization without hyperhydration. The NSB also produced the highest number (4.67), fresh weight (0.86g) and diameter (0.78 cm) of microtubers. From this study we may conclude that the NSB system has good potential for commercial mass production of potato micro-tuber. (C) 2015 Elsevier B.V. All rights reserved.
机译:已经开发了一种使用营养喷雾技术的实验室规模的生物反应器系统,用于体外大规模生产马铃薯微块茎。研究了其对微块茎生产的有效性,并通过生物反应器将其与常规液体和半固体培养系统进行了比较。确定了NSB的最佳培养条件,如喷雾间隔,6-苄基氨基嘌呤(BAP)浓度变化和外植体密度。为了确定最佳喷雾间隔,将液体介质以不同的间隔(1 / 2、1-4h)喷雾到NSB内,其中1h的间隔导致最高的芽数(3.47)和长度(8.99 cm)。每间隔1 h产生的微型块茎数量(5.13)最高,而间隔1/2 h的新鲜块茎重量(0.90 g)最高。使用不同浓度的BAP(0.5、1.0和1.5 mg / L)评估其对微块茎形成的影响。观察到当在MS培养基中添加0.5 mg / L BAP时,微块茎的数量和直径增加(5.31和0.96 cm)。我们发现当向培养基中添加1.0 mg / L BAP时,微型块茎的新鲜重量(0.97 g)增加。为了确定合适的外植体密度,将单个节点分为五类,例如30、45、60、75和90,并放置在NSB系统中。 60个外植体的密度导致节间长度(12.5)的茎长(17.5 cm)增加,叶绿素含量最高(40.2 mg / g),微块茎的数量和鲜重最高(4.43和0.89 g),分别)。在这三个培养系统中,NSB表现最佳,其中茎生长和微块茎化增加1.5-2.0倍,而没有过度水合作用。国家统计局还生产了数量最多的微型薯(4.67),鲜重(0.86g)和直径(0.78cm)。从这项研究中,我们可以得出结论,NSB系统具有商业规模生产马铃薯微型块茎的良好潜力。 (C)2015 Elsevier B.V.保留所有权利。

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