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Qian Qian

Qiannan Normal College For Nationalities · CN
Area of research
Plant Science · Genetics
Research interest
Research interests include Genetic Mapping and Diversity in Plants and Animals, Plant Molecular Biology Research, Rice Cultivation and Yield Improvement, and GABA and Rice Research.
h-index
103
citations
49,291
works
713
NIH funding
primary concept
Biology
email

Recent publications

Coordinating nitrogen-responsive root and shoot growth for enhanced nitrogen-use efficiency.
2026cited by 0position: contributordoi
Population-scale multi-omics analysis reveals diverse phenotypic impacts of lncRNAs in rice.
2026cited by 0position: contributordoi
Harnessing Endogenous Homeobox Genes for Synthetic Apomixis in Hybrid Rice.
2026cited by 0position: contributordoi
Engineering herbicide-resistant sorghum with CRISPR/Cas9-mediated adenine base editing.
2026cited by 0position: contributordoi
Understanding brassinosteroid‐centric phytohormone interactions for crop improvement
Journal of Integrative Plant Biology 2025cited by 32position: middledoi
GWAS meta-analysis using a graph-based pan-genome enhanced gene mining efficiency for agronomic traits in rice.
2025cited by 11position: contributordoi
Understanding brassinosteroid-centric phytohormone interactions for crop improvement.
2025cited by 8position: contributordoi
Engineering Adenine Deaminase TadA for Precise and PAM‐Flexible Point Mutagenesis and Gradient‐Tuning Endogenous Protein Design
Advanced Science 2025cited by 7position: middledoi
The MYB61-STRONG2 module regulates culm diameter and lodging resistance in rice.
2025cited by 5position: contributordoi
Genetic engineering of RuBisCO by multiplex CRISPR editing small subunits in rice.
2025cited by 4position: contributordoi
Metabolic engineering of theanine biosynthesis in rice endosperm to develop biofortified theaRice for benefiting human health
Plant Communications 2025cited by 4position: middledoi
Breeding 5.0: Artificial intelligence (AI)-decoded germplasm for accelerated crop innovation.
2025cited by 3position: contributordoi
9311 allele of OsNAR2.2 enhances nitrate transport to improve rice yield and nitrogen use efficiency.
2025cited by 3position: contributordoi
Genetic diversity and evolution of rice centromeres.
2025cited by 3position: contributordoi
OsBZR4 regulates temperature-dependent embryogenesis in rice.
2025cited by 2position: contributordoi
Genome-wide association study uncovers a novel gene responsible for rice seedling submergence tolerance.
2025cited by 2position: contributordoi
RBB1 negatively regulates rice disease resistance by modulating protein glycosylation.
2025cited by 2position: contributordoi
Florigen-like protein OsFTL1 promotes flowering without essential florigens Hd3a and RFT1 in rice.
2025cited by 1position: contributordoi
OsELS6 regulates rice leaf senescence differently in vitro and in vivo via the jasmonic acid pathway
PLANT PHYSIOLOGY 2025cited by 1position: middledoi
Engineering hormonal crosstalk to enhance serotonin/melatonin levels in rice.
2025cited by 0position: contributordoi
Introducing a win-win strategy for both rice yield and sheath blight resistance.
2025cited by 0position: contributordoi
Hybrid sorghum breeding in China: A historical review and perspectives.
2025cited by 0position: contributordoi
OsELS6 regulates rice leaf senescence differently in vitro and in vivo via the jasmonic acid pathway.
2025cited by 0position: contributordoi
Enhancing rice panicle branching and grain yield through tissue-specific brassinosteroid inhibition.
2024cited by 57position: contributordoi
Uncovering key salt-tolerant regulators through a combined eQTL and GWAS analysis using the super pan-genome in rice.
2024cited by 35position: contributordoi
The phosphatidylethanolamine-binding proteins OsMFT1 and OsMFT2 regulate seed dormancy in rice
The Plant Cell 2024cited by 22position: middledoi
Wild rice: unlocking the future of rice breeding.
2024cited by 19position: contributordoi
Programmable RNA N<sup>6</sup>-methyladenosine editing with CRISPR/dCas13a in plants.
2024cited by 19position: contributordoi
A centromere map based on super pan-genome highlights the structure and function of rice centromeres.
2024cited by 18position: contributordoi
The pan-tandem repeat map highlights multiallelic variants underlying gene expression and agronomic traits in rice
Nature Communications 2024cited by 18position: middledoi

Grants

No grants ingested yet.

Frequent collaborators

· 79 papers (2019–2026)Lianguang Shang · Chinese Academy of Agricultural Engineering21 papers (2020–2025)Zhenyu Gao · Beijing University of Posts and Telecommunications21 papers (2017–2025)Dali Zeng · Zhejiang A & F University14 papers (2019–2024)Deyong Ren · Southwest University10 papers (2019–2026)Chuanlin Shi · Agricultural Genomics Institute at Shenzhen10 papers (2023–2025)Jiang Hu · Nanchang University10 papers (2017–2023)Guangheng Zhang · Chinese Academy of Agricultural Sciences9 papers (2020–2025)Jiang Hu · Nanchang University8 papers (2020–2025)Dali Zeng · Zhejiang A & F University8 papers (2018–2023)Guosheng Xiong · Nanjing Agricultural University8 papers (2020–2023)Li Zhu · Sanya University7 papers (2019–2022) · 7 papers (2020–2025)Li Zhu · Huazhong Agricultural University7 papers (2017–2023)Guojun Dong · Wenzhou Medical University6 papers (2012–2023)Xiaoming Zheng · Chinese Academy of Sciences6 papers (2024–2026)Hong Zhang · South China Agricultural University6 papers (2023–2025)Xiang P. Liu · Agricultural Genomics Institute at Shenzhen6 papers (2024–2025)Hongge Qian · Agricultural Genomics Institute at Shenzhen6 papers (2023–2025)Longbiao Guo · China National Rice Research Institute6 papers (2019–2025)