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玻璃珠粒径、涡旋速度和时间对堆形艾美耳球虫卵囊孢子化的影响。

Effects of glass bead size, vortexing speed and duration on Eimeria acervulina oocyst excystation.

机构信息

Biosafety Research Institute and Laboratory of Pathology, College of Veterinary Medicine (BK21 Plus Program), Chonbuk National University, Jeonju, Republic of Korea.

Biosafety Research Institute and Laboratory of Pathology, College of Veterinary Medicine (BK21 Plus Program), Chonbuk National University, Jeonju, Republic of Korea.

出版信息

Exp Parasitol. 2014 Mar;138:18-24. doi: 10.1016/j.exppara.2014.01.001. Epub 2014 Jan 20.

Abstract

Improved methods for efficient excystation of Eimeria should be developed and standardized for future Eimeria-related studies. Here, the effects of different glass bead sizes (0.5, 1, 2, and 2.5 mm), and various vortex speeds (1000, 2000, and 3000 rpm) and durations (30 s, 1, 3, and 5 min) have been examined for Eimeria (E.) acervulina oocyst excystation. At 3000 rpm, all glass beads, regardless of size, efficiently ruptured E. acervulina oocysts at 5 min. At 2000 and 3000 rpm, all four glass bead sizes increasingly ruptured oocysts in a time-dependent manner. In contrast, at 1000 rpm the excystation efficiency was not related with the glass bead size or with vortexing duration. It appeared that the 1mm glass beads are most efficient for E. acervulina DNA extraction at a 3000 rpm vortexing speed for 3 and 5 min. The 2 mm glass beads delicately released the highest number of intact sporocysts at 2000 rpm for 3 min. Therefore, our data can provide valuable information for the efficient mechanical excystation of E. acervulina.

摘要

应当开发和标准化更有效的艾美耳球虫(Eimeria)逸出方法,以用于未来与艾美耳球虫相关的研究。在此,研究了不同玻璃珠粒径(0.5、1、2 和 2.5mm)、不同涡旋速度(1000、2000 和 3000rpm)和不同涡旋时间(30s、1、3 和 5min)对艾美耳属(Eimeria)的柔嫩艾美耳球虫(E. acervulina)卵囊逸出的影响。在 3000rpm 下,所有玻璃珠(无论粒径大小)在 5min 内均能有效地破裂柔嫩艾美耳球虫卵囊。在 2000 和 3000rpm 下,所有 4 种玻璃珠粒径均以时间依赖性方式越来越多地破裂卵囊。相比之下,在 1000rpm 下,卵囊逸出效率与玻璃珠粒径或涡旋时间无关。似乎在 3000rpm 涡旋速度下,1mm 玻璃珠最有利于提取柔嫩艾美耳球虫 DNA,涡旋时间为 3 和 5min。在 2000rpm 下,2mm 玻璃珠在 3min 时可温和释放最多数量的完整孢子囊。因此,我们的数据可为柔嫩艾美耳球虫的高效机械逸出提供有价值的信息。

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