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Soybean2035: A decadal vision for soybean functional genomics and breeding
Zhixi Tian1, Alexandre Lima Nepomuceno2, Qingxin Song3
1Yazhouwan National Laboratory, Sanya, Hainan, China.
Molecular Plant
|January 8, 2025
Summary
Global soybean production must increase to meet rising demand. This review covers advances in soybean genomics and breeding, identifying challenges and future directions to develop elite soybean varieties by 2035.
Area of Science:
- Agricultural Science
- Plant Genomics
- Crop Breeding
Background:
- Soybean is a vital global crop, crucial for plant oil and protein in food and animal feed.
- Despite a 13-fold production increase in 60 years, growing demand requires further advancements.
- Significant progress in functional genomics and molecular breeding has been achieved, yet challenges remain.
Purpose of the Study:
- To summarize achievements in soybean omics, functional genomics, and molecular breeding.
- To analyze current trends, identify shortages, and outline challenges in soybean research.
- To propose future directions and potential outputs for elite soybean variety development by 2035.
Main Methods:
- Review of past achievements in soybean omics, functional genomics, and molecular breeding.
- Analysis of current trends, challenges, and limitations in the field.
- Identification of future research directions and potential approaches.
Main Results:
- Significant progress has been made in soybean functional genomics and molecular breeding over the past decade.
- Existing research highlights several challenges that need to be addressed to meet future demand.
- The study outlines a roadmap for soybean research and development towards 2035.
Conclusions:
- Accelerating the development of elite soybean varieties is critical to meet increasing global demand.
- Future research should focus on overcoming current challenges in omics, functional genomics, and molecular breeding.
- Strategic advancements are necessary to ensure sustainable soybean production for global food security.
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