Jeamton Wattana, Dulsawat Sudarat, Tanticharoen Morakot, Vonshak Avigad, Cheevadhanarak Supapon
Pilot Plant Development and Training Institute, King Mongkut's University of Technology Thonburi (Bang Khun Thian), Bangkok, Thailand.
The Jacob Blaustein Institutes for Desert Research, Ben-Gurion University of the Negev, Sede Boqer campus, Israel.
Plant Cell Physiol. 2017 Apr 1;58(4):822-830. doi: 10.1093/pcp/pcx016.
The development of a reliable genetic transformation system for Arthrospira platensis has been a long-term goal, mainly for those trying either to improve its performance in large-scale cultivation systems or to enhance its value as food and feed additives. However, so far, most of the attempts to develop such a transformation system have had limited success. In this study, an efficient and stable transformation system for A. platensis C1 was successfully developed. Based on electroporation and transposon techniques, exogenous DNA could be transferred to and stably maintained in the A. platensis C1 genome. Most strains of Arthrospira possess strong restriction barriers, hampering the development of a gene transfer system for this group of cyanobacteria. By using a type I restriction inhibitor and liposomes to protect the DNA from nuclease digestion, the transformation efficiency was significantly improved. The transformants were able to grow on a selective medium for more than eight passages, and the transformed DNA could be detected from the stable transformants. We propose that the intrinsic endonuclease enzymes, particularly the type I restriction enzyme, in A. platensis C1 play an important role in the transformation efficiency of this industrial important cyanobacterium.
开发一种可靠的钝顶螺旋藻遗传转化系统一直是一个长期目标,主要针对那些试图提高其在大规模培养系统中的性能或提升其作为食品和饲料添加剂价值的人。然而,到目前为止,大多数开发这种转化系统的尝试都取得了有限的成功。在本研究中,成功开发了一种高效且稳定的钝顶螺旋藻C1转化系统。基于电穿孔和转座子技术,外源DNA可以转移到钝顶螺旋藻C1基因组中并稳定维持。大多数螺旋藻菌株具有强大的限制屏障,阻碍了这组蓝细菌基因转移系统的开发。通过使用I型限制抑制剂和脂质体保护DNA免受核酸酶消化,转化效率得到了显著提高。转化体能够在选择培养基上生长超过八代,并且可以从稳定的转化体中检测到转化的DNA。我们认为,钝顶螺旋藻C1中的内在内切酶,特别是I型限制酶,在这种具有重要工业价值的蓝细菌的转化效率中起着重要作用。