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A multiplexed gas exchange system for increased throughput of photosynthetic capacity measurements

机译:多路复用的气体交换系统,用于增加光合容量测量的吞吐量

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摘要

Abstract Background Existing methods for directly measuring photosynthetic capacity (A max) have low throughput, which creates a key bottleneck for pre-breeding and ecological research. Currently available commercial leaf gas exchange systems are not designed to maximize throughput, on either a cost or time basis. Results We present a novel multiplexed semi-portable gas exchange system, OCTOflux, that can measure A max with approximately 4–7 times the throughput of commercial devices, despite a lower capital cost. The main time efficiency arises from having eight leaves simultaneously acclimate to saturating CO2 and high light levels; the long acclimation periods for each leaf (13.8 min on average in this study) thus overlap to a large degree, rather than occurring sequentially. The cost efficiency arises partly from custom-building the system and thus avoiding commercial costs like distribution, marketing and profit, and partly from optimizing the system’s design for A max throughput rather than flexibility for other types of measurements. Conclusion Throughput for A max measurements can be increased greatly, on both a cost and time basis, by multiplexing gas streams from several leaf chambers connected to a single gas analyzer. This can help overcome the bottleneck in breeding and ecological research posed by limited phenotyping throughput for A max.
机译:摘要背景技术直接测量光合容量(最大)的方法具有低吞吐量,从而为预育种和生态研究创造了一个关键的瓶颈。目前可用的商业叶片气体交换系统并非设计用于最大限度地提高成本或时间。结果我们提出了一种新型多路复用半便携式气体交换系统,OCTOFLUX,尽管资金成本较低,但仍可测量商业设备吞吐量约4-7倍的最大值。主时间效率产生八叶同时适应饱和二氧化碳和高光水平;因此,每种叶子的长适应时间(在本研究中平均值13.8分钟)重叠到大程度,而不是顺序发生。成本效率部分地由定制建设系统,从而避免了商业成本,如分销,营销和利润,部分原因是优化系统的设计,而不是其他类型的测量的灵活性。结论通过从连接到单个气体分析仪的几片腔室复用气流,可以大大增加最大测量的产量。这有助于克服通过有限的表型吞吐量为MAX构成的繁殖和生态研究中的瓶颈。

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