Literature DB >> 18178894

Environmental risk assessment of genetically engineered herbicide-tolerant Zoysia japonica.

T W Bae1, E Vanjildorj, S Y Song, S Nishiguchi, S S Yang, I J Song, T Chandrasekhar, T W Kang, J I Kim, Y J Koh, S Y Park, J Lee, Y-E Lee, K H Ryu, K Z Riu, P-S Song, H Y Lee.   

Abstract

Herbicide-tolerant Zoysia grass (Zoysia japonica Steud.) has been generated previously through Agrobacterium tumefaciens-mediated transformation. The genetically modified (GM) Zoysia grass survived Basta spraying and grew to maturity normally while the wild-type (WT) grass stopped growing and died. GM Zoysia grass will permit more efficient weed control for various turf grass plantings such as home lawns, golf courses, and parks. We examined the environmental/biodiversity risks of herbicide-tolerant GM Zoysia before applying to regulatory agencies for approval for commercial release. The GM and WT Zoysia grass' substantial trait equivalence, ability to cross-pollinate, and gene flow in confined and unconfined test fields were selectively analyzed for environmental/biodiversity effects. No difference between GM and WT Zoysia grass in substantial traits was found. To assess the potential for cross-pollination and gene flow, a non-selective herbicide, Basta, was used. Results showed that unintended cross-pollination with and gene flow from GM Zoysia grass were not detected in neighboring weed species examined, but were observed in WT Zoysia grass (on average, 6% at proximity, 1.2% at a distance of 0.5 m and 0.12% at a radius of 3 m, and 0% at distances over 3 m). On the basis of these initial studies, we conclude that the GM Zoysia grass generated in our laboratory and tested in the Nam Jeju County field does not appear to pose a significant risk when cultivated outside of test fields.

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Year:  2008        PMID: 18178894     DOI: 10.2134/jeq2007.0128

Source DB:  PubMed          Journal:  J Environ Qual        ISSN: 0047-2425            Impact factor:   2.751


  6 in total

1.  Overexpression of phytochrome A and its hyperactive mutant improves shade tolerance and turf quality in creeping bentgrass and zoysiagrass.

Authors:  Markkandan Ganesan; Yun-Jeong Han; Tae-Woong Bae; Ok-Jin Hwang; Thummala Chandrasekhar; Thummala Chandrasekkhar; Ah-Young Shin; Chang-Hyo Goh; Satoshi Nishiguchi; In-Ja Song; Hyo-Yeon Lee; Jeong-Il Kim; Pill-Soon Song
Journal:  Planta       Date:  2012-05-29       Impact factor: 4.116

2.  Apomixis and ploidy barrier suppress pollen-mediated gene flow in field grown transgenic turf and forage grass (Paspalum notatum Flüggé).

Authors:  Sukhpreet Sandhu; Ann R Blount; Kenneth H Quesenberry; Fredy Altpeter
Journal:  Theor Appl Genet       Date:  2010-05-30       Impact factor: 5.699

3.  Risk assessment of transgenic apomictic tetraploid bahiagrass, cytogenetics, breeding behavior and performance of intra-specific hybrids.

Authors:  Sukhpreet Sandhu; Victoria A James; Kenneth H Quesenberry; Fredy Altpeter
Journal:  Theor Appl Genet       Date:  2009-08-23       Impact factor: 5.699

Review 4.  Is genetic engineering ever going to take off in forage, turf and bioenergy crop breeding?

Authors:  Zeng-Yu Wang; E Charles Brummer
Journal:  Ann Bot       Date:  2012-02-28       Impact factor: 4.357

5.  In Vivo Assessment of Cold Tolerance through Chlorophyll-a Fluorescence in Transgenic Zoysiagrass Expressing Mutant Phytochrome A.

Authors:  Mayank Anand Gururani; Jelli Venkatesh; Markkandan Ganesan; Reto Jörg Strasser; Yunjeong Han; Jeong-Il Kim; Hyo-Yeon Lee; Pill-Soon Song
Journal:  PLoS One       Date:  2015-05-26       Impact factor: 3.240

6.  A novel basic helix-loop-helix transcription factor, ZjICE2 from Zoysia japonica confers abiotic stress tolerance to transgenic plants via activating the DREB/CBF regulon and enhancing ROS scavenging.

Authors:  Zhi-Fang Zuo; Hong-Gyu Kang; Quan-Chun Hong; Mi-Young Park; Hyeon-Jin Sun; Jeongsik Kim; Pill-Soon Song; Hyo-Yeon Lee
Journal:  Plant Mol Biol       Date:  2020-01-03       Impact factor: 4.076

  6 in total

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