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布朗氏菌的最佳生长条件:光照强度、添加氮、pH值控制和湿度的影响

Optimal Growth Conditions for R. Brown: Impacts of Light Intensity, Nitrogen Addition, pH Control, and Humidity.

作者信息

da Silva Maria Emelia Jesus, Mathe Lebani Oarabile Joy, van Rooyen Ignatius Leopoldus, Brink Hendrik Gideon, Nicol Willie

机构信息

Department of Chemical Engineering, University of Pretoria, Pretoria 0002, South Africa.

出版信息

Plants (Basel). 2022 Apr 12;11(8):1048. doi: 10.3390/plants11081048.

Abstract

Nitrogen pollution from agriculture is a major challenge facing our society today. Biological nitrogen fixation is key to combat the damage that is caused by synthetic nitrogen. spp. are ideal candidates for fast nitrogen fixation. This study aimed to investigate the optimal growth conditions for R. Brown. The growth conditions that were investigated included the growth medium type and strength, light intensity, the presence/absence of nitrogen in the medium, pH control, and humidity. Higher light intensities increased plant growth by 32%, on average. The highest humidity (90%) yielded higher growth rate values than lower humidity values (60% and 75%). The presence of nitrogen in the medium had no significant effect on the growth rate of the plants. pH control was critical under the fast growth conditions of high light intensity and high humidity, and it reduced algal growth (from visual observation). The optimal growth rate that was achieved was 0.321 day, with a doubling time of 2.16 days. This was achieved by using a 15% strength of the Hoagland solution, high light intensity (20,000 lx), nitrogen present in the medium, and pH control at 90% humidity. These optimised conditions could offer an improvement to the existing phytoremediation systems of and aid in the fight against synthetic nitrogen pollution.

摘要

农业中的氮污染是当今社会面临的一项重大挑战。生物固氮是对抗合成氮造成的损害的关键。某些物种是快速固氮的理想候选者。本研究旨在调查布朗红杆菌的最佳生长条件。所研究的生长条件包括生长培养基的类型和浓度、光照强度、培养基中氮的有无、pH值控制和湿度。较高的光照强度平均使植物生长增加32%。最高湿度(90%)比较低湿度值(60%和75%)产生更高的生长速率值。培养基中氮的存在对植物的生长速率没有显著影响。在高光强度和高湿度的快速生长条件下,pH值控制至关重要,并且从视觉观察来看它会减少藻类生长。所达到的最佳生长速率为0.321天,倍增时间为2.16天。这是通过使用15%浓度的霍格兰溶液、高光强度(20000勒克斯)、培养基中存在氮以及在90%湿度下控制pH值来实现的。这些优化条件可以改进现有的[具体物种]植物修复系统,并有助于对抗合成氮污染。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/797d/9032100/3c01dab77035/plants-11-01048-g001.jpg

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