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"Plant breeding"

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한국 옥수수 품종 개발의 변천과 전망
Changes and Prospects in the Development of Corn Varieties in Korea
Seong-Bum Baek, Beom-Young Son, Jung-Tae Kim, Hwan-Hee Bae, Young-Sam Go, Sun-Lim Kim
Korean. J. Breed. Sci. 2020;52(Special Is):93-102.   Published online April 30, 2020
DOI: https://doi.org/10.9787/KJBS.2020.52.S.93

In Korea, native or open pollinated corn varieties that were not improved before 1960 were cultivated. The 1960s was a step that created the foundation for the development of varieties. In 1962, systematic corn breeding was started when the synthetic type ‘Hwangok 2’ was distributed to farmers. The 1970s was the era of the change from synthetic varieties to hybrid ones, with a focus on the development of single-cross hybrids among the corn hybrids. The single-cross corn hybrid, ‘Suwon 19’, was an epoch-marking variety that had a unit-yield closer to that of advanced countries. The 1980s was a time when the breeding direction was changed from grain corn to silage because the corn cultivation area for silage increased rapidly with the government's livestock promotion policy, and the corn seed supply system of single-cross hybrids was established. In the 1990s, the era of globalization and the launching of imports of agricultural products, the living standards of consumers became more advanced, and the development system of corn varieties was established for various use purposes. As we entered the 2000s, it started the heyday of developing corn varieties, with 29 corn varieties of various use purposes and excellent cultivation stability developed. In the 2010s, the scope of corn variety development expanded from government or universities to private seed companies. Thus, the corn varieties in Korea have changed and developed in response to the situation of the times, and there are currently 110 corn varieties registered with Korea Seed & Variety Service (KSVS). In the future, vegetable corn is expected to be continuously developed, with functional ingredients such as strengthening vitamins, trace elements, and antioxidant components. Specialized grain corn, such as lysine and maltodextrin, will be developed and commercialized in order to improve the value added. In the case of silage corn, there will be varieties of early maturing and late planting adaptability, with no more than 110 days until maturity, suitable for the cropping system, such as second cropping and double cropping, as well as high digestion rate and nutrition varieties with high feed value, and excessive water tolerance corn varieties that adapt well to paddy fields. Furthermore, it is expected that corn varieties that adapt well to Southeast Asia, Latin America, and Africa will continue to be developed and supplied.

Citations

Citations to this article as recorded by  
  • Kernel type-based entries are efficient to develop a core collection of maize (Zea mays L.)
    Jae-Han Son, Seongmin Hong, Ji Won Kim, Jiyun Go, Junyong Choi, Sang-Bum Lee, Jun Young Ha, Young-Sam Go, Hwan-Hee Bae, Tae-Wook Jung, Gibum Yi
    Applied Biological Chemistry.2025;[Epub]     CrossRef
  • ‘Alchanheukchal’, A Black Waxy Corn Variety with Large Ears and Excellent Kernel Setting Rate
    Hwan-Hee Bae, Young-Sam Go, Jae-Han Son, Jun-Young Ha, Jin-Seok Lee, Jung-Tae Kim, Seong-Hyu Shin, Yu-Chan Choi, Tae-Wook Jung
    Korean Journal of Breeding Science.2025; 57(4): 529.     CrossRef
  • Prohexadione-Calcium Mitigates the Overgrowth of Corn Seedlings
    Minh Vuong Duong, Jong-Wook Chung, Van Gioi Ha, Hwi Moon, Ju-Kyung Yu, Yoon-Sup So
    Agronomy.2024; 14(2): 371.     CrossRef
  • Anthocyanin-containing Bicolor Waxy Corn, ‘Mihyeonchal’
    JungHeon Han, SiHwan Ryu, JaeKeun Choi, HeeYeon Kim, Moonjong Kim, Woosik Yong, Min Namgung, Kijin Park
    Korean Journal of Breeding Science.2024; 56(4): 533.     CrossRef
  • Oral, Contact, and Residual Toxicity of Six Insecticides to Asian Corn Borer, Ostrinia furnacalis Larvae
    In-Hong Jeong, Leesun Kim, Eun Young Kim, Si Woo Lee, Jin Kyo Jung
    The Korean Journal of Pesticide Science.2023; 27(2): 85.     CrossRef
  • The Effects of Planting Date and Tillage Practice on Growth and Yield of Maize and Soybean in Rotation with Winter Onion
    Jihyeon Lee, Miri Choi, Nayoung Choi, Gamgon Kim, Yunho Lee, Huisu Bae, Chaein Na
    Agronomy.2022; 12(9): 2125.     CrossRef
  • Construction of risk assessment manual for genetically modified rice (Oryza sativa L.)
    So Young Lee, Eun-Gyeong Kim, Jae-Ryoung Park, Yoon-Hee Jang, Rahmatullah Jan, Taehun Ryu, Kyung-Min Kim
    Journal of Crop Science and Biotechnology.2021; 24(2): 221.     CrossRef
  • UAV, a Farm Map, and Machine Learning Technology Convergence Classification Method of a Corn Cultivation Area
    Dong-Ho Lee, Hyeon-Jin Kim, Jong-Hwa Park
    Agronomy.2021; 11(8): 1554.     CrossRef
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Articles
유전자교정 농작물의 실용화 현황 및 전망
Gene-Edited Crops: Present Status and their Future
Soo-Chul Park, Young-Hee Joung, Kyung-Min Kim, Ju-Kon Kim, Hee-Jong Koh
Korean. J. Breed. Sci. 2019;51(3):175-183.   Published online September 1, 2019
DOI: https://doi.org/10.9787/KJBS.2019.51.3.175

Recently, several attempts have been undertaken to develop breeding technologies by combining new biotechnologies. Gene-editing technology is currently one of the most interesting areas. The plant breeding methods using this technique have the advantage of greatly improved accuracy and efficiency of the plant genetic correction compared with conventional breeding methods, which has raised expectations for the useful application of this technology as a cutting-edge breeding technology. Although not all countries around the world currently have established appropriate regulation policies on crops developed with gene-editing technology, the number of cases in which GMO regulations are not applied on a case-by-case basis according to the scientific background is growing. However, Korea has not yet established policies on which criteria should be applied to crops generated from the application of gene-editing technology. As the number of cases of crop development and commercialization using gene-editing technology is expected to increase in the near future, it will be necessary to prepare reasonable policies to support developers and seed industries in Korea to ensure harmonization with international regulatory policy trends.

Citations

Citations to this article as recorded by  
  • CRISPR revolution in plant genetics: promises, challenges and future prospects
    Ashwani Kumar, Yuan-Yeu Yau
    Vegetos.2026;[Epub]     CrossRef
  • Latest Research Trends in Reducing the Immunogenicity of Wheat
    Sora Lee, Jong-Yeol Lee, Sichul Lee, Jae-Ryeong Sim, Sewon Kim, Woo-Suk Cho
    Korean Journal of Breeding Science.2025; 57(2): 65.     CrossRef
  • Current Trends in Wheat Breeding Strategies for Developing Domestic Wheat Cultivars in Korea
    Hajeong Kang, Hyoun-Min Park, San-Gu Lee, Eun-Ha Kim, Muhammad Imran, Hanyoung Choi, Myeong-Ji Kim, Seonwoo Oh
    Korean Journal of Breeding Science.2024; 56(4): 491.     CrossRef
  • Development of virus-induced genome editing methods in Solanaceous crops
    Seo-Young Lee, Bomi Kang, Jelli Venkatesh, Joung-Ho Lee, Seyoung Lee, Jung-Min Kim, Seungki Back, Jin-Kyung Kwon, Byoung-Cheorl Kang
    Horticulture Research.2024;[Epub]     CrossRef
  • Functional Characterization of PagMYB148 in Salt Tolerance Response and Gene Expression Analysis under Abiotic Stress Conditions in Hybrid Poplar
    Su Jin Park, Hyun-A Jang, Hyoshin Lee, Hyunmo Choi
    Forests.2024; 15(8): 1344.     CrossRef
  • Enhancing the quality of staple food crops through CRISPR/Cas-mediated site-directed mutagenesis
    Olawale Samuel Adeyinka, Bushra Tabassum, Brice Landry Koloko, Ifedayo Victor Ogungbe
    Planta.2023;[Epub]     CrossRef
  • Processes for regulating genetically modified and gene edited plants
    John R Caradus
    GM Crops & Food.2023; 14(1): 1.     CrossRef
  • Safety management of living modified plants: A review
    Bumkyu Lee
    Journal of Plant Biotechnology.2022; 49(3): 163.     CrossRef
  • Research Advances in Improving Disease Resistance and Abiotic Stress Tolerance Using CRISPR/Cas9 Gene Editing in Rice
    Yurim Kim, Sieun Choi, In Sun Yoon, Song Lim Kim, Youngjun Mo
    Korean Journal of Breeding Science.2022; 54(4): 331.     CrossRef
  • TALEN-mediated bar-knockout Rice Production and Transcriptome Profiling
    Yang Qin, Tae-Sung Park, Youn Sung Cho, Myung-Ho Lim
    Plant Breeding and Biotechnology.2021; 9(1): 32.     CrossRef
  • Global Patent Trends in New Breeding Technology for Crop Improvement
    Serry Koh, Youri Choi, Joo Young Lee, Jiyoung Jang, Kyuwhan Choi
    Korean Journal of Breeding Science.2021; 53(4): 337.     CrossRef
  • Genome editing of hybrid poplar (Populus alba × P. glandulosa) protoplasts using Cas9/gRNA ribonucleoprotein
    Su Jin Park, Young-Im Choi, Hyun A Jang, Sang-Gyu Kim, Hyunmo Choi, Beum-Chang Kang, Hyoshin Lee, Eun-Kyung Bae
    Journal of Plant Biotechnology.2021; 48(1): 34.     CrossRef
  • History and Results of Rice Breeding in Korea
    Young-Chan Cho, Man-Kee Baek, Hyun-Su Park, Jun-Hyun Cho, Eok-Keun Ahn, Jung-Pil Suh, Ji-Ung Jeung, Jong-Hee Lee, Yong-Jae Won, Yoo-Chun Song, Eung-Gi Jeong, Bo-Kyeong Kim, Jeom-Ho Lee
    Korean Journal of Breeding Science.2020; 52(S): 58.     CrossRef
  • Improving Nutritional and Functional Quality by Genome Editing of Crops: Status and Perspectives
    Hyung-Keun Ku, Sun-Hwa Ha
    Frontiers in Plant Science.2020;[Epub]     CrossRef
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신육종 기술 및 작물 개발 동향
Current Status of New Plant Breeding Technologies and Crop Development
Sang-Ryeol Park, Jihee Park, Sun-Hyung Lim, Jong-Yeol Lee, Beom-Gi Kim
Korean. J. Breed. Sci. 2019;51(3):161-174.   Published online September 1, 2019
DOI: https://doi.org/10.9787/KJBS.2019.51.3.161

In recent years, new plant breeding technologies (NPBT) have had enormous effects on breeding and the agricultural industry. In particular, genome editing technology, including site-directed nuclease technologies, has progressed dramatically since the first-generation Zinc finger nucleases to the third-generation clustered regularly interspaced short palindromic repeats/CRISPR-associated protein 9 (CRISPR/Cas9). CRISPR/Cas9 technology has yielded a revolutionary breakthrough in the accurate, efficient, and user-friendly genome editing of eukaryotes. Several methods for basic research and applications, such as knock-out, base editing, gene targeting, and transcriptional activation or repression have been derived from CRISPR/Cas9 technology. Herein, we will describe the current progress in NPBTs and also summarize the crops developed by NPBTs. After analyzing the current status of NPBTs and crop development, we have proposed potential strategies for crop development using NPBTs.

Citations

Citations to this article as recorded by  
  • Genomics, phenomics, and machine learning in transforming plant research: Advancements and challenges
    Sheikh Mansoor, Ekanayaka M.B.M. Karunathilake, Thai Thanh Tuan, Yong Suk Chung
    Horticultural Plant Journal.2025; 11(2): 486.     CrossRef
  • Current Trends in Wheat Breeding Strategies for Developing Domestic Wheat Cultivars in Korea
    Hajeong Kang, Hyoun-Min Park, San-Gu Lee, Eun-Ha Kim, Muhammad Imran, Hanyoung Choi, Myeong-Ji Kim, Seonwoo Oh
    Korean Journal of Breeding Science.2024; 56(4): 491.     CrossRef
  • Development of virus-induced genome editing methods in Solanaceous crops
    Seo-Young Lee, Bomi Kang, Jelli Venkatesh, Joung-Ho Lee, Seyoung Lee, Jung-Min Kim, Seungki Back, Jin-Kyung Kwon, Byoung-Cheorl Kang
    Horticulture Research.2024;[Epub]     CrossRef
  • Genome editing provides a valuable biological toolkit for soybean improvement
    Dongwon Baek, Hyun Jin Chun, Min Chul Kim
    Plant Biotechnology Reports.2022; 16(4): 357.     CrossRef
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식물육종신기술(NPBTs)의 발전에 따른 신규식물(Novel Plant)의 위해성평가 동향
Novel Plant Breeding Techniques and Risk Assessment
Myung-Ho Lim, Hee-Jong Woo, Kong-Sik Shin, Tae-Hoon Ryu, Yunsoo Yeo, Soon-Jong Kweon, Soon Ki Park
Korean. J. Breed. Sci. 2014;46(4):333-341.   Published online December 31, 2014
DOI: https://doi.org/10.9787/KJBS.2014.46.4.333

In recent years, novel plant breeding techniques (NPBTs) have emerged, and safety assessment of the novel plant(s) generated using the NPBTs has drawn the attention of many stakeholders. The notable characteristics of the novel plants are as follows: firstly, it is almost impossible to distinguish from the natural mutations in the conventional counterparts, because site-directed nuclease (SDN) and oligonucleotide-directed mutagenesis (ODM) could introduce short indel(s) in the targeted region(s) of the chromosomes. Secondly, the genome constitution of novel plants is almost identical to that of their conventional counterparts, eventually becoming indistinguishable by the introduction of only unmodified gene(s) from sexually compatible species to the target host plant. Thirdly, it is possible to generate new plants that have the desired traits, but without introducing genes. These plants will have some modified bases in their genome by selecting null-segregant(s) from heterozygous transgenic plants or by other epigenetic methods. The Organisation for Economic Co-operation and Development (OECD) and many countries developing genetically modified organisms (GMOs) have concluded that novel plants developed using SDN, ODM, cisgenesis, intragenesis, or null-segregant techniques are treated in the same manner as non-genetically modified (GM) plants or may even have less strict risk assessments depending on the case. Additionally, grafting and agro-infiltration are methods that can be used to avoid or reduce the burden of current strict GMO risk assessment. The risk assessments of some of the novel plants have already been performed and those of commercially important plants are expected to be performed in the near future. Hence, it is necessary to develop a competitive and practical NPBT that can mitigate the concern and revulsion toward GMOs in Korea.

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