[1]

Garsmeur O, Rio S, Pompidor N, Lipzen A, Hervouet C, et al. 2025. The genomic footprints of wild Saccharum species trace domestication, diversification, and modern breeding of sugarcane. Cell 188(25):7252−7266.e15

doi: 10.1016/j.cell.2025.09.017
[2]

Huang Y, Zhang Y, Zhang Q, Zhuang G, Li C, et al. 2026. Multiscale pangenome graphs empower the genomic dissection of mixed-ploidy sugarcane species. Science 391:eadx1616

doi: 10.1126/science.adx1616
[3]

Ivan Jo. 2023. Sugarcane industry: modern innovations and sustainable practices. International Research Journal of Plant Science 14(3):1−2

[4]

Matsuoka S. 2025. Energy cane: a revolutionary clean energy crop for the transition to a sustainable energy system. Academia Environmental Sciences and Sustainability 2(2):1−17

doi: 10.20935/acadenvsci7672
[5]

Flack-Prain S, Shi L, Zhu P, da Rocha HR, Cabral O, et al. 2021. The impact of climate change and climate extremes on sugarcane production. GCB Bioenergy 13(3):408−424

doi: 10.1111/gcbb.12797
[6]

Shang XK, Wei JL, Liu W, Nikpay A, Pan XH, et al. 2025. Integrated pest management of sugarcane insect pests in China: current status and future prospects. Sugar Tech 27:299−317

doi: 10.1007/s12355-024-01510-0
[7]

Verma KK, Song, XP, Kumari A, Jagadesh M, Singh SK, et al. 2025. Climate change adaptation: Challenges for agricultural sustainability. Plant, Cell & Environment 48(4):2522−2533

doi: 10.1111/pce.15078
[8]

Li YR, Zhang BQ, Song XP, Liang Q, Verma KK, et al. 2024. Development of sugar industry in china: R&D priorities for sustainable sugarcane production. Sugar Tech 26:972−981

doi: 10.1007/s12355-024-01427-8
[9]

Lu G, Liu P, Wu Q, Zhang S, Zhao P, et al. 2024. Sugarcane breeding: a fantastic past and promising future driven by technology and methods. Frontiers in Plant Science 15:1375934

doi: 10.3389/fpls.2024.1375934
[10]

Gan Y, Wu Y, Yang B, Cai W, Zeng J, et al. 2021. Breeding of the new high smut-resistant sugarcane variety 'Zhongtang No. 2'. Chinese Journal of Tropical Crops 42(3):816−821 (in Chinese)

doi: 10.3969/j.issn.1000-2561.2021.03.029
[11]

Cao Z, Peng L, Cai W, Gan Y, Wu Y, et al. 2023. The breeding and species evaluation of a new sugarcane variety Zhongtang3. Sugarcane and Canesugar 52(5):1−7 (in Chinese)

doi: 10.3969/j.issn.1005-9695.2023.05.001
[12]

Gan Y, Zhang S, Wu Y, Yang B. 2015. Advance on the mutant characteristics of crops induced by spaceflight. Guangdong Agricultural Sciences 42(1):119−123 (in Chinese)

doi: 10.3969/j.issn.1004-874X.2015.01.027
[13]

Wang W, Wang D, Zhao W, Zhang Y, Zeng Z, et al. 2025. Highly efficient and genotype-independent genetic transformation system in sugarcane. Plant biotechnology journal Published online

doi: 10.1111/pbi.70486
[14]

Wang D, Gou Y, Yi C, Li Z, Wang W, et al. 2025. ScWRKY2: a key regulator for smut resistance in sugarcane. Plant Biotechnology Journal 23(9):3667−3681

doi: 10.1111/pbi.70186
[15]

Wang P, Si H, Li C, Xu Z, Guo H, et al. 2025. Plant genetic transformation: achievements, current status and future prospects. Plant biotechnology journal 23(6):2034−2058

doi: 10.1111/pbi.70028
[16]

Wang X, Wu Q, Zeng H, Yang X, Yang X, et al. 2024. Digital evolution and twin miracle of sugarcane breeding. Field Crops Research 318(1):109588

doi: 10.1016/j.fcr.2024.109588
[17]

Wang X, Wu Q, Zeng H, Yang X, Cui H, et al. 2025. Blockchain-empowered H-CPS architecture for smart agriculture. Advanced Science 12(27):e2503102

doi: 10.1002/advs.202503102
[18]

Wang P, Wu Q, Wang W, Wang D, Wang J, et al. 2026. Three-chain empowered sugarcane bio-breeding in China. The Innovation Life 4:100207

doi: 10.59717/j.xinn-life.2026.100207